Ceramic cation exchange materials
Silica-based ceramic coatings for cation exchange membranes address swelling issues in polymer-based membranes and brittleness in ceramics by providing high performance with low swelling, enabling effective use in electrochemical and purification processes.
Patent Information
- Application Number
- JP2021572274
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-06-04
- Filing Date
- 2020-06-03
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2040-06-03
AI Technical Summary
Existing cation exchange membranes made from hydrocarbon- or perfluorocarbon-based polymers suffer from significant swelling in the presence of water, leading to membrane tearing and device failure, while ceramic-based membranes are too brittle to be used freestanding, and existing attempts to incorporate ceramics into membranes require nanoparticle-polymer matrices.
Development of silica-based ceramic coatings for cation exchange membranes that are functionalized with sulfonate and/or sulfonic acid groups, formed without a polymer matrix, providing a rigid and ordered nanoporous structure with high cation exchange capacity, conductivity, and permselectivity, while minimizing swelling.
The silica-based ceramic membranes exhibit high cation exchange capacity, conductivity, and permselectivity with low dimensional swelling, suitable for applications in electrochemical processes and purification, overcoming the limitations of polymer-based membranes and brittle ceramics.
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Abstract
Description
[Technical Field]
[0001] Related Applications This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 62 / 857,224, filed June 4, 2019, and entitled "CERAMIC CATION EXCHANGE MATERIALS," which is incorporated herein by reference in its entirety for all purposes.
[0002] government support This invention was made with government support under Contract No. DE-SC0019554 awarded by the USDepartment of Energy. The US Government has certain rights in this invention.
[0003] Ion exchange membranes and materials, and related methods, are generally described. [Background technology]
[0004] Cation exchange membranes and materials are used in a variety of industrial applications where the selective transport of positively charged ions is desirable. In the case of cation exchange membranes, positively charged ions can be selectively transported across the membrane. One type of cation exchange membrane is a proton exchange membrane, although cation exchange membranes exist that allow the selective transport of other types of positively charged ions. Certain embodiments of the present disclosure relate to compositions, membranes, and materials according to the present invention, and related methods, for improving the performance and / or properties of cation exchange membranes and materials. Summary of the Invention [Means for solving the problem]
[0005] Cation exchange membranes and materials, including silica-based ceramics, and related methods are generally described. The inventive subject matter, in some cases, includes interrelated products, alternative solutions to a particular problem, and / or a plurality of different uses of one or more systems and / or articles.
[0006] In one aspect, a cation exchange membrane is provided. In one embodiment, the cation exchange membrane comprises a porous support membrane and a silica-based ceramic coating formed on and / or within the porous support membrane. The silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. The cation exchange membrane has a sodium ion (Na ) conductivity of 0.00001 S / cm or greater. + ) Conductive.
[0007] In one embodiment, the cation exchange membrane comprises a silica-based ceramic, and the cation exchange membrane has a water absorption of 10% by weight or more and a linear expansion of 10% or less.
[0008] In one embodiment, the cation exchange membrane comprises a porous support membrane and a silica-based ceramic coating at least a portion of the porous support membrane. The silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. The silica-based ceramic has an average pore size of 10 nm or less.
[0009] In some embodiments, the cation exchange membrane includes a porous support membrane and a silica-based ceramic forming a coating on and / or within the porous support membrane. The silica-based ceramic includes sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. The sulfonate and / or sulfonic acid groups are substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating.
[0010] In some embodiments, the cation exchange membrane includes a porous support membrane and a silica-based ceramic forming a coating on and / or within the porous support membrane. The silica-based ceramic includes sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. The sulfonate and / or sulfonic acid groups are directly adjacent to the surface of the porous support membrane. The cation exchange membrane includes a border material including a polymeric material along at least a portion of the edge of the cation exchange membrane.
[0011] In one embodiment, the cation exchange membrane comprises a porous support membrane and a silica-based ceramic coating at least a portion of the porous support membrane. The silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. At least 50% of the pore volume of the porous support membrane is filled with the silica-based ceramic. The cation exchange membrane comprises a edging material comprising a polymeric material along at least a portion of the edge of the cation exchange membrane.
[0012] In some embodiments, the cation exchange membrane comprises a porous support membrane and a silica-based ceramic coating on and / or within the porous support membrane. The silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. The cation exchange membrane has a cation exchange capacity of 0.01 meq / g or greater.
[0013] In some embodiments, a cation exchange membrane includes a porous support membrane and a silica-based ceramic coating at least a portion of the porous support membrane. The silica-based ceramic includes sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. The sulfonate and / or sulfonic acid groups are present in the cation exchange membrane in an amount of 0.01 mmol or more per gram of the cation exchange membrane.
[0014] In one embodiment, a cation exchange material is provided. The cation exchange material comprises a silica-based ceramic containing sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. The silica-based ceramic contains Si in an amount of 6% or more by weight of the silica-based ceramic. The cation exchange material has a cation exchange capacity of 0.01 meq / g or more. The silica-based ceramic has an average pore size of less than 10 nm.
[0015] In one embodiment, a cation exchange membrane is provided. The cation exchange membrane comprises a silica-based ceramic containing Si in an amount of 6% or more by weight of the silica-based ceramic. The cation exchange membrane has a cation exchange capacity of 0.01 meq / g or more.
[0016] In one embodiment, the cation exchange membrane comprises a silica-based ceramic, and has a cation exchange capacity of 0.01 meq / g or more and a linear expansion of 10% or less.
[0017] In one embodiment, a cation exchange membrane is provided, the cation exchange membrane comprising a silica-based ceramic containing Si in an amount of 6% or more by weight of the silica-based ceramic, the cation exchange membrane having a cation permselectivity of 65% or more.
[0018] In one embodiment, a cation exchange membrane is provided. The cation exchange membrane comprises a silica-based ceramic containing Si in an amount of 6% or more by weight of the silica-based ceramic. The cation exchange membrane has a sodium ion (Na ) concentration of 0.00001 S / cm or more. + ) Conductive.
[0019] In one embodiment, the cation exchange membrane is a silica-based ceramic and has a Na ion concentration of 0.00001 S / cm or more. + It has good conductivity and linear expansion of less than 10%.
[0020] In one embodiment, a cation exchange membrane is provided. The cation exchange membrane comprises a silica-based ceramic containing Si in an amount of 6% or more by weight of the silica-based ceramic. The cation exchange membrane has a solubility of 100 mL / (hr·bar·m 2 ) has the following permeability and water permeability.
[0021] In one embodiment, the cation exchange membrane comprises a silica-based ceramic containing Si in an amount of 6% or more by weight of the silica-based ceramic, the silica-based ceramic comprising pores, the average diameter of the pores of the silica-based ceramic being 1.1 times or more larger when the cation exchange membrane is in a hydrated state than when the cation exchange membrane is in a dry state.
[0022] In one embodiment, the cation exchange membrane comprises a silica-based ceramic containing Si in an amount equal to or greater than 6% by weight of the silica-based ceramic. When the cation exchange membrane is in a dry state, the pores of the silica-based ceramic fit a model of a small-angle scattering spectrum having intensity (I) as a function of scattering vector, q, as follows:
number
number
[0023] In one aspect, a method for forming a cation exchange membrane is provided. In one embodiment, the method includes exposing a porous support membrane coated with a silica-based ceramic containing oxidizable functional groups to an oxidizing agent. The silica-based ceramic contains Si in an amount of 6% or more by weight of the silica-based ceramic. The method includes oxidizing the oxidizable functional groups to form sulfonate or sulfonic acid groups.
[0024] In one aspect, a method for forming a cation exchange material is provided. In one embodiment, the method includes exposing a resin containing a silica-based ceramic containing oxidizable functional groups to an oxidizing agent. The silica-based ceramic contains Si in an amount of 6% or more by weight of the silica-based ceramic. The method includes oxidizing the oxidizable functional groups to form sulfonate or sulfonic acid groups.
[0025] In certain embodiments, a method is provided for using the cation exchange membranes described herein in electrochemical applications. The method includes contacting the cation exchange membrane with an electrolyte. The method includes passing an electric current through electrodes in electrical communication with the electrolyte.
[0026] In certain embodiments, a method is provided for using the cation exchange material described herein in an electrochemical application. The method includes contacting the cation exchange material with an electrolyte. The method includes passing an electric current through electrodes in electrical communication with the electrolyte.
[0027] In certain embodiments, a method is provided for using the cation exchange membranes described herein as adsorbent materials. The method includes flowing a fluid through the cation exchange membrane. The method includes adsorbing a component of the fluid.
[0028] In certain embodiments, a method is provided for using the cation exchange material described herein as an adsorbent material. The method includes flowing a fluid through the cation exchange material. The method includes adsorbing a component of the fluid.
[0029] In certain embodiments, there is provided a method for using the cation exchange membranes described herein in separation applications, the method comprising applying a transmembrane pressure to the cation exchange membrane.
[0030] Other advantages and novel features of the present invention will become apparent from the following detailed description of various non-limiting embodiments of the invention when considered in conjunction with the accompanying figures. In cases where the specification and any document incorporated by reference includes conflicting and / or inconsistent disclosure, the specification shall control.
[0031] Non-limiting embodiments of the present invention are described by way of example with reference to the accompanying drawings, which are schematic and are not intended to be drawn to scale. In the drawings, each identical or nearly identical component shown is typically represented by a single numeral. For clarity, not every component is labeled in every drawing, and not every component of each embodiment of the present invention is shown unless illustration is necessary to enable those skilled in the art to understand the invention. [Brief explanation of the drawings]
[0032] [Figure 1A] 1 is a schematic cross-sectional view of an exemplary cation exchange membrane comprising a silica-based ceramic according to an embodiment. [Figure 1B] FIG. 1 is a schematic cross-sectional view of an exemplary cation exchange membrane comprising a silica-based ceramic according to an embodiment, with an inset showing a close-up of the pores of the silica-based ceramic. [Figure 2A] FIG. 1 is a schematic top-down view of an exemplary cation exchange membrane comprising a silica-based ceramic and a porous support membrane, according to an embodiment. [Figure 2B] 1 is a schematic cross-sectional view of an exemplary silica-based ceramic coating on a portion of a porous support membrane element, according to an embodiment. [Figure 3] FIG. 1 is a schematic diagram of sulfonate and sulfonic acid groups covalently bonded to a silica-based ceramic according to some embodiments. [Figure 4A]FIG. 1 is a schematic cross-sectional view of an exemplary silica-based ceramic coating on a portion of a porous support membrane element, according to an embodiment, wherein the coating comprises sulfonate and sulfonic acid groups substantially uniformly distributed within the silica-based ceramic across the thickness of the coating. [Figure 4B] FIG. 1 is a schematic cross-sectional view of an exemplary silica-based ceramic coating on a portion of a porous support membrane element, according to an embodiment, wherein the coating comprises sulfonic acid groups that are not substantially uniformly distributed within the silica-based ceramic across the thickness of the coating. [Figure 5] FIG. 1 is a schematic top-down view of an exemplary cation exchange membrane comprising a silica-based ceramic and a compressible edging material, according to an embodiment. [Figure 6] 1 is a flow chart illustrating steps of an exemplary procedure for making a ceramic cation exchange membrane, according to an embodiment. [Figure 7] 1 is a schematic cross-sectional view of a cation exchange material comprising a silica-based ceramic according to an embodiment, wherein the cation exchange material comprises sulfonate and sulfonic acid groups covalently bonded to the silica-based ceramic. [Figures 8A-8D] 1 shows mechanical burst test results for an exemplary cation exchange membrane, according to certain embodiments. [Figures 9A-9C] 1 shows cation permselectivity, osmotic water permeability, and small-angle X-ray scattering data and fitting results for an exemplary cation exchange membrane, according to certain embodiments. [Figures 10A-10C] 1 shows proton conductivity, intrinsic vanadium(IV) ion permeability, and proton:vanadium selectivity for exemplary cation exchange membranes, according to certain embodiments. [Figures 11A-11B] 1 shows cation exchange capacity and density data for exemplary cation exchange membranes as a function of water:silicon ratio and acid strength, according to certain embodiments. [Figures 12A-12C] 1 shows cation exchange capacity and density data for exemplary cation exchange membranes as a function of precursor component ratio and water:silicon ratio, according to certain embodiments. [Figures 13A-13E]1 is a scanning electron microscopy (SEM) image of an exemplary cation exchange membrane, according to certain embodiments. [Figure 14] 1 shows mechanical burst test results for an exemplary cation exchange membrane, according to certain embodiments. [Figures 15A-15B] 1 shows pore radius and volume porosity data for exemplary cation exchange membranes as a function of TEOS:MPTES mass ratio, according to certain embodiments. [Figure 15C] 1 shows sodium ion conductivity data for exemplary cation exchange membranes including polymeric porous support membranes with various mass ratios of TEOS to MPTES fabricated using three sol-gel coatings, according to certain embodiments. [Figure 15D] 1 shows permselectivity data for exemplary cation exchange membranes comprising polymeric porous support membranes made from sols with various mass ratios of TEOS to MPTES made using three sol-gel coatings, according to an embodiment. [Figure 16A] 1 shows small angle neutron scattering (SANS) data for dried exemplary cation exchange membranes made from sols with various mole percentages of MPTES, according to certain embodiments. [Figure 16B] 1 shows pore size and inter-pore distance measurements from small angle neutron scattering (SANS) data of dried exemplary cation exchange membranes made from sols with various mole percentages of MPTES, according to an embodiment. [Figures 16C-16F] 1 shows small angle neutron scattering (SANS) data for dried and hydrated exemplary cation exchange membranes made from sols with various mole percentages of MPTES, according to certain embodiments. [Figures 16G-16H] 1 shows small angle neutron scattering (SANS) data for hydrated exemplary cation exchange membranes made from sols with various molar percentages of MPTES as a function of the percentage of heavy water present, according to certain embodiments. DETAILED DESCRIPTION OF THE INVENTION
[0033] Cation exchange membranes and materials, including silica-based ceramics, and related methods are provided. In certain aspects, cation exchange membranes including silica-based ceramics that form a coating on and / or within a porous support membrane are described. Cation exchange membranes and materials can have several structural or chemical attributes (e.g., pore size / distribution, chemical functionalization) that, alone or in combination, can provide advantageous performance characteristics in any of a variety of applications in which selective transport of positively charged ions through the membrane / material is desirable. For example, the cation exchange membranes or materials described herein can exhibit relatively high cation exchange capacity, cation conductivity, cation permselectivity, and / or mechanical burst strength, while in some cases also experiencing relatively low dimensional swelling (e.g., upon contact with water). In certain embodiments, the silica-based ceramics contain relatively small pores (e.g., roughly spherical nanopores) that can contribute to some of these advantageous properties.
[0034] In certain embodiments, the cation exchange membrane or material comprises sulfonate and / or sulfonic acid groups covalently bonded to a silica-based ceramic. In some such cases, the sulfonate and / or sulfonic acid groups are present at a relatively high loading compared to certain existing cation exchange materials. In certain embodiments, the sulfonate and / or sulfonic acid groups are substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating formed by the silica-based ceramic, which may, in some cases, provide an advantage over certain existing membranes that may be functionalized only at or near the surface.
[0035] In certain embodiments, the cation exchange membranes and materials described herein can be made by sol-gel techniques, such as by co-condensation of certain silanes in a porous support membrane. The cation exchange membranes and materials can be useful in several applications, such as electrochemical (e.g., redox flow batteries) and purification (e.g., desalination, gas-liquid separation) processes.
[0036] Certain commercially available cation exchange membranes are made from hydrocarbon- or perfluorocarbon-based polymers containing covalently bonded sulfonate and / or sulfonic acid moieties. As a result, these cation exchange membranes have a nanostructure characterized by a mixture of interconnected, string-like hydrophilic domains in a hydrophobic matrix. In the presence of water (e.g., when certain existing cation exchange membranes are used), these hydrophilic domains tend to swell (e.g., undergo dimensional swelling, such as linear expansion). Swelling of cation exchange membranes can be problematic in certain applications because it can cause tension that can lead to membrane tearing and device failure. While certain techniques, such as chemical cross-linking and / or mechanical reinforcement of the membrane, can sometimes reduce swelling, improved compositions and structures are needed that can more effectively reduce swelling while maintaining or even enhancing the performance of cation exchange membranes and materials.
[0037] It has been observed that cation exchange membranes comprising rigid structures, such as ceramics, can experience less swelling than hydrocarbon- or perfluorocarbon-based membranes. However, certain existing ceramics are believed to be too brittle to be used in freestanding ceramic-based membranes. Thus, previous attempts to incorporate ceramics into cation exchange membranes have typically involved the incorporation of ceramic nanoparticles, for example, into a polymer matrix. In connection with the present disclosure, it has been unexpectedly observed that cation exchange membranes and materials comprising silica-based ceramics can be realized without the need for nanoparticles incorporated into a polymer matrix. For example, it has been observed that cation exchange membranes containing silica-based ceramics comprising functional groups, such as sulfonate and / or sulfonic acid groups, covalently bonded to the silica-based ceramic are possible. In certain embodiments, such functionalized silica-based ceramic compositions can have an ordered nanoporous structure. In certain embodiments, the resulting cation exchange membranes exhibit unexpectedly beneficial performance characteristics (e.g., relatively high cation exchange capacity, relatively high sodium ion conductivity, relatively high permselectivity, high mechanical burst strength) while exhibiting relatively low dimensional swelling. Such cation exchange membranes and materials, and methods for making and using them, are described herein.
[0038] In one aspect, cation exchange membranes are generally described. FIG. 1A is a schematic cross-sectional view of an exemplary cation exchange membrane 100. In certain embodiments, the cation exchange membrane can achieve any of the various advantageous properties and performance characteristics reported in this disclosure. For example, the cation exchange membrane 100 can exhibit a relatively high cation exchange capacity, a relatively high cation permselectivity, a relatively high sodium ion conductivity, a relatively low osmotic water permeability, and / or a relatively low dimensional swelling (e.g., a relatively low linear expansion), the details of which are provided in more detail below. As described above, the cation exchange membrane can be suitable for use in any of a variety of applications described in more detail below.
[0039] Referring again to FIG. 1A, the exemplary cation exchange membrane 100 includes a silica-based ceramic 150. In certain embodiments, a silica-based ceramic is a ceramic that includes or is formed from a network of silica (SiO), although the silica-based ceramic may include groups (e.g., terminal moieties) not encompassed by the SiO formula. In certain embodiments, the silica-based ceramic is porous (e.g., nanoporous). FIG. 1B is a schematic cross-sectional view of an exemplary cation exchange membrane 100 including an exemplary porous (e.g., nanoporous) silica-based ceramic 150, according to certain embodiments. FIG. 1B shows an inset illustrating a magnified view of the silica-based ceramic 150 showing exemplary pores, including exemplary pore 152. The porosity (e.g., nanoporosity) of the silica-based ceramic can contribute, at least in part, to the performance characteristics of the cation exchange membrane. Silica-based ceramics are described in more detail below. It should be understood that the figures depicted herein are for illustrative purposes and may not necessarily be drawn to scale.
[0040] In some embodiments, the cation exchange membrane includes a porous support membrane. For example, in some embodiments, the cation exchange membrane 100 includes a porous support membrane. The porous support membrane can provide mechanical support for the entire cation exchange membrane. FIG. 2A shows a schematic top-down view of an exemplary cation exchange membrane 100 including a silica-based ceramic 150 and a porous support membrane 130 obscured by the silica-based ceramic 150, according to some embodiments. For illustrative purposes, FIG. 2A shows the porous support membrane 130 without the silica-based ceramic 150 present to the left of the arrow, while the cation exchange membrane 100 to the right of the arrow includes the silica-based ceramic 150 present, thereby obscuring the porous support membrane. It should be understood that FIG. 2A is illustrative of non-limiting embodiments, and in some embodiments, the coating formed by the silica-based ceramic does not completely cover the porous support membrane. For example, in some such embodiments, portions of the porous support membrane 130 may not be obscured by the silica-based ceramic 150.
[0041] In some embodiments, the cation exchange membrane includes a silica-based ceramic coating at least a portion of the porous support membrane. Referring again to FIG. 2A , the cation exchange membrane 100 includes a silica-based ceramic 150 coating the porous support membrane 130 (hidden from the view in the cation exchange membrane 100 to the right of the arrow). In some such embodiments, the silica-based ceramic forms a coating on and / or within the porous support membrane. For example, the porous support membrane may be impregnated or encapsulated in the silica-based ceramic. In such embodiments, the porous support membrane may be substantially coated with the silica-based ceramic. In some embodiments, the silica-based ceramic coats some, but not all, of the porous support membrane.
[0042] 2B shows a schematic cross-sectional view of an exemplary coating 140 formed by a silica-based ceramic 150, according to certain embodiments. As exemplarily shown in this figure, the coating 140 of silica-based ceramic 150 is on the surface of a porous support membrane component 135 (e.g., a single fiber on or within a porous support membrane), according to certain embodiments, the cross-section of which is shown in FIG. 2B. This exemplary embodiment (e.g., a coated fiber) can be part of a cation exchange membrane in which the silica-based ceramic completely coats the porous support membrane or partially coats the porous support membrane.
[0043] When a part (e.g., a layer, a coating) is said to be "on," "adjacent," "in contact with," or "supported by" another part, it should be understood that it can be directly on that part, or that intervening parts (e.g., layers, coatings) may also be present. A part "directly on," "directly adjacent," "in direct contact with," or "directly supported by" another part means that there are no intervening parts. When a part is said to be "on," "adjacent," "in contact with," or "supported by" another part, it should also be understood that this can include the entire part or a portion of a part.
[0044] In some embodiments, a silica-based ceramic coating (e.g., coating 140) is present on (e.g., directly on) the surface of the porous support membrane. In some embodiments, the coating is present on the surface of the porous support membrane, while the interior of the porous support membrane is substantially uncoated. However, in other embodiments, the silica-based ceramic coating is present within at least a portion of the interior of the porous support membrane (i.e., throughout the thickness of the porous support membrane). As an example, the silica-based ceramic coating is formed on components of the interior of the porous support membrane that are accessible, for example, through pores or voids. In some such cases, the coating fills at least some or all of the pores of the porous support membrane. In some embodiments, at least a portion of the interior of the porous support membrane is coated, while the surface of the porous support membrane is substantially uncoated.
[0045] As described in more detail below, the porous support membrane may include a support component, such as fibers, that provides structural support to the membrane. In some embodiments, substantially all of the support component of the porous support membrane is coated with the silica-based ceramic. As an example, in some embodiments, the porous support membrane includes a nonwoven fabric of fibers. In some such cases, substantially all of the fibers, including the fibers within the porous support membrane, are coated with the silica-based ceramic. However, in other embodiments, not all of the support component of the porous support membrane is coated with the silica-based ceramic. For example, in some embodiments where the porous support membrane includes fibers as support components, not all of the fibers are coated with the silica-based ceramic. The extent of coating can vary. In some cases, the silica-based ceramic coating covers the entire porous support membrane (e.g., as shown for cation exchange membrane 100 to the right of the arrow in FIG. 2A ), while in other cases, the silica-based ceramic coating covers only a portion of the porous support membrane (e.g., only a subset of the area of the porous support membrane is coated, or only a portion of the support component is coated).
[0046] In some embodiments in which the silica-based ceramic forms a coating on and / or within the porous support membrane, the silica-based ceramic fills substantially all of the pores of the porous support membrane. For example, referring again to FIG. 2A , in some embodiments, when the silica-based ceramic coats the porous support membrane 130, all of the pores of the porous support membrane 130, including pore 132, are completely filled with the silica-based ceramic. In such embodiments, the porosity of the resulting overall cation exchange membrane will correspond to the porosity of the silica-based ceramic material. In other embodiments in which the silica-based ceramic forms a coating on and / or within the porous support membrane, the silica-based ceramic does not completely fill the pores of the porous support membrane, but reduces the pore size (e.g., average pore size) of the porous support membrane. In such embodiments, the overall porosity of the resulting overall cation exchange membrane will differ from the porosity of the silica-based ceramic material itself. The resulting total cation exchange membrane in this case will have a porosity different from that of the silica-based ceramic coating due to the presence of both reduced-size pores in the porous support membrane and pores corresponding to the silica-based ceramic. In such embodiments, the silica-based ceramic coating can have a porosity in one or more of the ranges described herein, and the total cation exchange membrane can have a porosity in one or more of the ranges described herein.
[0047] In some, but not necessarily all, embodiments, the cation exchange membrane comprises one or more additional layers or coatings on the coating comprising the silica-based ceramic (e.g., on top of the silica-based ceramic coating). However, in some embodiments, no other layers or coatings are present on the coating comprising the silica-based ceramic (e.g., the silica-based coating forms the outermost surface of the cation exchange membrane). In some embodiments, the silica-based ceramic forms a single layer on the porous support membrane.
[0048] Formation of a coating on and / or within at least a portion of a silica-based ceramic porous support membrane can be carried out using any of a variety of suitable techniques. In some embodiments, the silica-based ceramic coating (e.g., coating 140) is formed using a sol-gel technique. For example, referring again to FIG. 2A , in some embodiments, the porous support membrane 130 (shown to the left of the arrow) is coated using a sol-gel technique, thereby resulting in a cation exchange membrane 100 comprising a silica-based ceramic 150 coated on and / or within at least a portion of the porous support membrane 130 (shown to the right of the arrow). In some such cases, sol-gel techniques such as those described herein can provide relatively rapid and low-cost formation of cation exchange membranes comprising silica-based ceramic. In some such cases, relatively mild conditions can be used to form a silica-based ceramic coating using a sol-gel technique, and the resulting silica-based ceramic can have particular structural characteristics (e.g., ordered nanopores) that can provide advantageous performance in some cases. Exemplary sol-gel techniques are described in more detail below.
[0049] In some embodiments, the silica-based ceramic includes one or more functional groups covalently bonded to the silica-based ceramic. The presence of functional groups covalently bonded to the silica-based ceramic may contribute, at least in part, to the performance of the cation exchange membrane. For example, in some embodiments, the silica-based ceramic includes functional groups capable of binding and dissociating cations. In some embodiments, the functional groups covalently bonded to the silica-based ceramic are acid-base functional groups. For example, in some embodiments, the functional groups covalently bonded to the silica-based ceramic are sulfonate (-SO3 -) and / or sulfonic acid (—SO3H) groups. In some embodiments, the functional groups covalently bonded to the silica-based ceramic are carboxylate and / or carboxylic acid groups. In some embodiments, the functional groups covalently bonded to the silica-based ceramic are phosphonate and / or phosphonic acid groups. The functional groups can be bonded to Si in the silica-based ceramic via a linking group (e.g., an organic linking group). For example, the sulfur of the sulfonate and / or sulfonic acid groups can be bonded to Si in the silica-based ceramic via an optionally substituted C 1~18 Alkylene and arylene (or C 1~8 Alkylene and arylene, or C 1~4 The silica-based ceramic may be covalently bonded to Si in the silica-based ceramic via an organic linker, such as a linker selected from the group consisting of alkylene and arylene. It should be understood that in this disclosure, any description of an item "selected from" a list of items may be replaced with a description of an item selected from the group consisting of those items. For example, in certain embodiments, the sulfur of the sulfonate and / or sulfonic acid group may be replaced with an optionally substituted C 1~18 It can be covalently bonded to the Si in the silica-based ceramic via an organic linker, such as a linker selected from the group consisting of alkylene and arylene.
[0050] The functional groups may be capable of binding and dissociating cations, such as protons or certain metal ions. For example, sulfonate and / or sulfonic acid groups attached to silica-based ceramics may be capable of binding and dissociating cations, such as protons or certain metal cations. Exemplary metal cations that may be capable of binding and dissociating with functional groups (e.g., sulfonate / sulfonic acid groups) include alkali cations (e.g., Li + , Na + , K. + ), alkaline earth metal cations (e.g., Mg 2+ , Ca 2+ , Sr 2+ ), and transition metal cations (e.g., Fe 3+ , Fe 2+ , Cu 2+ , Cr 2+ , Cr 3+) and other metal or metalloid cations (e.g., Pb 2+ , Hg 2+ , As 3+ ) are listed.
[0051] FIG. 3 is a schematic diagram of sulfonate and sulfonic acid groups covalently bonded to a silica-based ceramic 150, according to some embodiments. As exemplarily shown in this figure, the sulfonate and sulfonic acid groups are covalently bonded to the interior of the silica-based ceramic material. In some embodiments, the functional groups (e.g., sulfonate and / or sulfonic acid groups) are exposed at the exterior surface of the silica-based ceramic (e.g., the exterior of a coating on the silica-based ceramic). In some cases, the functional groups covalently bonded to the silica-based ceramic groups (e.g., sulfonate and / or sulfonic acid groups) are exposed at the surfaces of the pores of the silica-based ceramic. For example, in FIG. 3, the sulfonate and sulfonic acid groups covalently bonded to the silica-based ceramic 150 are shown exposed at the surfaces of the pores 152 of the silica-based ceramic. Having functional groups such as sulfonate and / or sulfonic acid groups present at the surfaces of the pores of the silica-based ceramic can, in some embodiments, enable relatively efficient transport of cations through the cation exchange membrane and / or a relatively high cation exchange capacity for the cation exchange membrane.
[0052] While both sulfonate and sulfonic acid groups are shown in the figures of this disclosure, it should be understood that one skilled in the art will understand that the relative amounts of sulfonate to sulfonic acid groups present at any given time will depend on the conditions and environment of the cation exchange membrane or material. For example, the relative number of sulfonate to sulfonic acid groups will depend, at least in part, on the pH of any solution with which the membrane or material is in contact, the pK of other functional groups, if any, a , and / or the concentration of cations in any solution with which the membrane or material is in contact.
[0053] In some embodiments, the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the sulfonate and / or sulfonic acid groups are substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating. The thickness of the coating refers to the thickness in a direction from the surface of the porous support membrane component covered by the coating (e.g., the surface of a single fiber of the porous support membrane) to the nearest exposed surface of the silica-based ceramic coating. The exposed surface of the silica-based ceramic coating refers to the exterior of the cation exchange membrane, another layer or region of material, or any surface of the silica-based ceramic that is aligned with the unfilled pores or voids of the porous support membrane. For example, in one embodiment, the exposed surface can be exposed to air or another environment different from the silica-based ceramic coating itself. Figure 4A is a schematic cross-sectional view of an exemplary coating 140 of silica-based ceramic 150 on a portion of a porous support membrane component 135 (e.g., a fiber on or within a porous support membrane), according to some embodiments. In some embodiments, the coating 140 in FIG. 4A includes sulfonate and sulfonic acid groups that are substantially uniformly distributed within the silica-based ceramic 150 throughout the thickness 160 of the coating 140. Having functional groups such as sulfonate and / or sulfonic acid groups substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating can, in some cases, provide a number of advantages. One advantage may be that a substantially uniform distribution of functional groups within the silica-based ceramic may allow for a relatively high loading of functional groups for a given amount of silica-based ceramic, which may lead to a high cation exchange capacity per unit mass and beneficial performance characteristics. Another possible advantage is that a substantially uniform distribution of functional groups within the silica-based ceramic may result in regions of the membrane having a relatively low amount of functional groups, resulting in a relatively small distance between functional groups within the membrane, in contrast to certain existing membranes in which the functional groups (e.g., sulfonate and / or sulfonic acid groups) are relatively localized (e.g., near the surface), which may limit cation conductivity. A substantially uniform distribution of functional groups (eg, sulfonate and / or sulfonic acid groups) can be achieved, for example, using certain sol-gel techniques, as described in more detail below.
[0054] 4B is a schematic cross-sectional view of an exemplary coating 240 including a silica-based ceramic 250 on a portion of a porous support membrane component 135 (e.g., fibers on or within a porous support membrane), according to some embodiments. In FIG. 4B, the coating 240 includes sulfonic acid groups that are not substantially uniformly distributed within the silica-based ceramic 250 across a thickness 260 of the coating 240. Rather, in FIG. 4B, the sulfonate and sulfonic acid groups are localized at or near the surface of the coating 240, rendering regions 245 of the coating free of sulfonate and / or sulfonic acid groups.
[0055] Such a distribution of sulfonate and sulfonic acid groups that is not substantially uniformly distributed can be obtained from a coating technique that uses surface functionalization, rather than the specific sol-gel technique described herein. For example, a coating containing a silica-based ceramic containing sulfonate and / or sulfonic acid groups that is not substantially uniformly distributed can be obtained from a fabrication technique in which a support (e.g., a porous support membrane) is first coated with a material (e.g., a ceramic such as a silica-based ceramic) that does not contain sulfonate and / or sulfonic acid groups (or contains a relatively low amount of sulfonate and / or sulfonic acid groups). Then, after the first coating step, a second coating step is performed in which a material containing sulfonate and / or sulfonic acid groups (or contains a relatively high amount of sulfonate and / or sulfonic acid groups) is coated on the first coating. Having a silica-based ceramic coating that does not have a substantially uniform distribution of sulfonate and / or sulfonic acid groups can result in relatively poor performance of the resulting cation exchange membrane. For example, in some embodiments, a cation exchange membrane may have a relatively low loading of sulfonate and / or sulfonic acid groups compared to a cation exchange membrane having a coating with a substantially uniform distribution of sulfonate and / or sulfonic acid groups. Furthermore, in some cases, such a coating may not have a substantially uniform distribution of sulfonate and / or sulfonic acid groups, and thus regions (e.g., region 245) having a relatively low abundance of sulfonate and / or sulfonic acid groups may have a relatively low cation conductivity due to such regions.
[0056] In certain embodiments in which the sulfonate and / or sulfonic acid groups are substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating, the amount of sulfonate and sulfonic acid groups does not vary by more than 50% at any given point within a cross-section of the coating thickness compared to the average amount of sulfonate and sulfonic acid groups in the silica-based ceramic. For example, referring again to FIG. 4A , the amount of sulfonate and sulfonic acid groups at any point A or any point B of cross-section 143 of coating 140 does not vary by more than 50% compared to the average amount of sulfonate and sulfonic acid groups in coating 140. In some embodiments in which the sulfonate and / or sulfonic acid groups are substantially uniformly distributed within the silica-based ceramic across the thickness of the coating, the amount of sulfonate and sulfonic acid groups is distributed within the silica-based ceramic such that any given point within a cross-section of the coating thickness is within a range of 50% or more, 60% or more, 70% or more, 75% or more, 80% or more, 90% or more, 95% or more, or 99% or more of the average amount of sulfonate and sulfonic acid groups in the coating. In some embodiments, the amount of sulfonate and sulfonic acid groups is distributed within the silica-based ceramic such that any given point within a cross-section of the coating thickness is within a range of 100% or less, 99% or less, 95% or less, 90% or less, 75% or less, 70% or less, 60% or less of the average amount of sulfonate and sulfonic acid groups in the coating. Combinations of these ranges are possible. For example, in some embodiments, the amount of sulfonate and sulfonic acid groups is distributed within the silica-based ceramic such that any given point within a cross-section of the thickness of the coating is within a range of 50% or more and 100% or less of the total average amount of sulfonate and sulfonic acid groups within the coating.As an exemplary calculation, if a silica-based ceramic is measured to have a typical amount of sulfonate and sulfonic acid groups of 5 weight percent (wt%) (as measured by scanning electron microscopy / energy dispersive X-ray techniques (SEM / EDX)), and all points within at least five cross sections across the thickness of the silica-based ceramic (e.g., point A in FIG. 4A) are measured to have an amount of sulfonate and sulfonic acid groups greater than or equal to 2.5 wt% and less than or equal to 7.5 wt%, the silica-based ceramic would be considered to have sulfonate and / or sulfonic acid groups substantially uniformly distributed across the coating thickness, based on the average amount of sulfonate and / or sulfonic acid groups measured.
[0057] In contrast, the sulfonate and / or sulfonic acid groups are not substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating; in some cases, the amount of sulfonate and sulfonic acid groups is within less than 50% of the average amount of sulfonate and sulfonic acid groups within the coating (in other words, the amount of sulfonate and sulfonic acid groups varies by more than 50% at any given point within the cross-section of the thickness of the coating, compared to the average total amount of sulfonate and sulfonic acid groups in the silica-based ceramic). For example, referring again to FIG. 4B , the amount of sulfonate and sulfonic acid groups at any point C or any point D of cross-section 243 of coating 240 varies by more than 50% compared to the average amount of sulfonate and sulfonic acid groups in coating 240. As an exemplary calculation, if a silica-based ceramic is measured to have a standard amount of sulfonate and sulfonic acid groups of 5% by weight, and any point in a cross section through the thickness of the silica-based ceramic (e.g., point D in FIG. 4B) is measured to have an amount of sulfonate and sulfonic acid groups less than 2.5% by weight or more than 7.5% by weight, the silica-based ceramic would not be considered to have sulfonate and / or sulfonic acid groups substantially uniformly distributed through the thickness of the coating, based on the average amount of sulfonate and / or sulfonic acid groups measured.
[0058] In some embodiments in which the sulfonate and / or sulfonic acid groups are substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating, the amount of sulfonate and sulfonic acid groups at any given point within the cross-section of the thickness of the coating does not vary by more than 75% compared to the maximum amount of sulfonate and sulfonic acid groups in the silica-based ceramic. For example, referring again to FIG. 4A , the amount of sulfonate and sulfonic acid groups at any point A or any point B of cross-section 143 of coating 140 does not vary by more than 75% compared to the maximum amount of sulfonate and sulfonic acid groups in coating 140. In some embodiments in which the sulfonate and / or sulfonic acid groups are substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating, the amount of sulfonate and sulfonic acid groups is distributed within the silica-based ceramic such that any given point within a cross-section of the coating thickness is 25% or more, 30% or more, 40% or more, 50% or more, 60% or more, 70% or more, 75% or more, 80% or more, 90% or more, 95% or more, or 99% or more of the maximum amount of sulfonate and sulfonic acid groups in the coating. In some embodiments, the amount of sulfonate and sulfonic acid groups is distributed within the silica-based ceramic such that any given point within a cross-section of the coating thickness is 100% or less, 99% or less, 95% or less, 90% or less, 75% or less, 70% or less, 60% or less of the maximum amount of sulfonate and sulfonic acid groups in the coating. Combinations of these ranges are possible. For example, in some embodiments, the amount of sulfonate and sulfonic acid groups is distributed within the silica-based ceramic such that any given point within a cross-section of the coating thickness is greater than or equal to 25% and less than or equal to 100% of the total maximum amount of sulfonate and sulfonic acid groups within the coating.As an exemplary calculation, if a silica-based ceramic is measured to have a maximum amount of sulfonate and sulfonic acid groups of 10 wt. % (as measured by scanning electron microscopy / energy dispersive X-ray techniques (SEM / EDX)), and all points (e.g., point A in FIG. 4A ) within at least five cross sections across the thickness of the silica-based ceramic are measured to have an amount of sulfonate and sulfonic acid groups of 2.5 wt. % or greater, the silica-based ceramic would be considered to have sulfonate and / or sulfonic acid groups substantially uniformly distributed across the coating thickness, based on the maximum amount of sulfonate and / or sulfonic acid groups measured. It should be understood that it is the relative amount of sulfonate and sulfonic acid groups that is important in the above calculation, and the units used to express the amount measured from the SEM / EDX technique are not particularly important. While weight percent is used in the above exemplary calculation, other units for expressing the amount of sulfonic acid and sulfonate groups can be readily obtained from the SEM / EDX technique or similarly derived from weight percentages.
[0059] In contrast, the sulfonate and / or sulfonic acid groups are not substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating; in some cases, the amount of sulfonate and sulfonic acid groups at a point is less than 25% of the maximum amount of sulfonate and sulfonic acid groups in the coating (in other words, the amount of sulfonate and sulfonic acid groups varies by more than 75% at any given point within the cross-section of the thickness of the coating, compared to the maximum total amount of sulfonate and sulfonic acid groups in the silica-based ceramic). For example, referring again to FIG. 4B , the amount of sulfonate and sulfonic acid groups at any point C or any point D of cross-section 243 of coating 240 varies by more than 75% compared to the maximum amount of sulfonate and sulfonic acid groups in coating 240. As an exemplary calculation, if a silica-based ceramic is measured to have a maximum amount of sulfonate and sulfonic acid groups of 10 wt. %, and any point in a cross-section through the thickness of the silica-based ceramic (e.g., point D in FIG. 4B) is measured to have an amount of sulfonate and sulfonic acid groups of less than 2.5 wt. %, the silica-based ceramic would not be considered to have sulfonate and / or sulfonic acid groups substantially uniformly distributed through the thickness of the coating, based on the maximum amount of sulfonate and sulfonic acid groups measured.
[0060] The amount of sulfonate and sulfonic acid groups within a coating and within any cross-section of the coating can be determined using a combination of scanning electron microscopy (SEM) and energy dispersive X-ray (EDX) techniques. For example, the following procedure can be performed: The cation exchange membrane is dried and a cross-sectional sample is mounted on an SEM stub. The sample is first imaged using secondary electron and / or backscatter detection, and then imaged by EDX. The EDX data can be acquired as a linear profile across the cross-sectional sample or as a map of the entire sample. The EDX data can then be interpreted to determine the average or maximum amount (e.g., in weight percent) of sulfonate and sulfonic acid groups present in the coating, as well as the amount of sulfonate and sulfonic acid groups at any point along the cross-section, using the linear profile from the SEM / EDX data. Three or more linear profiles can be acquired to determine a statistically representative set of data.
[0061] In some embodiments, the sulfonate and / or sulfonic acid groups are directly adjacent to the surface of the porous support membrane. For example, referring again to FIG. 4A , according to some embodiments, coating 140 including silica-based ceramic 150 includes sulfonate and sulfonic acid groups, and the sulfonate and sulfonic acid groups are directly adjacent to porous support membrane component 135, thereby making it directly adjacent to the porous support membrane to which porous support membrane component 135 belongs. In some embodiments, there is no intervening layer between the silica-based ceramic including sulfonate and / or sulfonic acid groups in the porous support membrane. For example, in some embodiments, there is no intervening layer between silica-based ceramic 150 and porous support membrane component 135 in FIG. 4A .
[0062] In some embodiments, the sulfonate and / or sulfonic acid groups are relatively close to the surface of the porous support membrane (e.g., the surface of a support component that makes up the porous support membrane). For example, in some embodiments, at least a portion of the sulfonate and / or sulfonic acid groups are within 1 μm, 500 nm, 100 nm, 50 nm, 10 nm, 5 nm, 1 nm, or less of the surface of the porous support membrane. In some embodiments, at least a portion of the sulfonate and / or sulfonic acid groups are within 1 to 10 μm of the surface of the porous support membrane. In some embodiments, the sulfonate and / or sulfonic acid groups are in contact (e.g., direct contact) with the surface of the porous support membrane. The distance between the porous support membrane and the sulfonate and / or sulfonic acid groups can be determined, for example, using an analytical electron microscope equipped with a transmission electron microscope (TEM) and an X-ray spectrometer.
[0063] As described above, in certain embodiments, the cation exchange membrane or material has a relatively high loading of functional groups. For example, in certain embodiments, the cation exchange membrane or material has a relatively high loading of sulfonate and / or sulfonic acid groups. Having a relatively high loading of functional groups such as sulfonate and / or sulfonic acid groups can, at least in part, result in beneficial performance characteristics of the cation exchange membrane or material. For example, a high loading of sulfonate and / or sulfonic acid groups can contribute to relatively high cation exchange capacity, cation permselectivity, and / or cation conductivity (e.g., sodium ion conductivity, proton conductivity). Certain methods described herein, such as certain sol-gel techniques involving co-condensation of functionalized and non-functionalized silanes, can provide loadings of sulfonate and / or sulfonic acid groups that are otherwise difficult to achieve using certain existing techniques.
[0064] In some embodiments, the sulfonate and / or sulfonic acid groups are present in the cation exchange membrane or material in an amount of 0.01 mmol or more, 0.05 mmol or more, 0.1 mmol or more, 0.3 mmol or more, 0.5 mmol or more, 0.7 mmol or more, 1 mmol or more, 2 mmol or more, 3 mmol or more, or more per gram of cation exchange membrane or material. In some embodiments, the sulfonate and / or sulfonic acid groups are present in the cation exchange membrane or material in an amount of 10 mmol or less, 5 mmol or less, or less per gram of cation exchange membrane or material. Combinations of these ranges are possible. For example, in some embodiments, the sulfonate and / or sulfonic acid groups are present in the cation exchange membrane or material in an amount of 0.01 mmol or more and 10 mmol or less, or 0.1 mmol or more and 10 mmol or less per gram of cation exchange membrane or material. It should be understood that the loading described herein refers to the total amount of sulfonate and sulfonic acid groups. For example, if a cation exchange membrane or material contains 0.1 mmol of sulfonate groups and 0.3 mmol of sulfonic acid groups per gram of cation exchange membrane or material, the sulfonate and / or sulfonic acid groups will be present in the cation exchange membrane or material in an amount of 0.4 mmol per gram of cation exchange membrane or material. The loading of sulfonate and / or sulfonic acid groups in a cation exchange membrane or material can be determined by measuring the cation exchange capacity of the cation exchange membrane, as described below, and equating the number of sodium ions measured in solution (as determined by titration) with the number of sulfonate and sulfonic acid groups in the cation exchange membrane. The loading can then be determined by using the number of sulfonate and sulfonic acid groups (in mmol) and dividing by the weight (in g) of the dried cation exchange membrane. It should be understood that the above amounts and measurements of sulfonate and sulfonic acid group loading refer to accessible sulfonate and / or sulfonic acid groups, and not to sulfonate and / or sulfonic acid groups that are inaccessible in solvents and cations (e.g., sulfonate or sulfonic acid groups trapped within enclosed pores that cannot be accessed by solvents or cations).
[0065] As described above, a silica-based ceramic (e.g., silica-based ceramic 150) can be a ceramic that includes a network of primarily silica (SiO), although the silica-based ceramic can include groups (e.g., terminal moieties) not represented by the formula of SiO. For example, in some embodiments, the silica-based ceramic includes a network of silica that includes terminal hydroxy groups, terminal organic groups, and / or terminal functional groups (e.g., sulfonate and / or sulfonic acid groups). In some embodiments, a relatively high percentage of the Si atoms in the silica-based ceramic are in a tetrahedral environment and are bonded to either oxygen, hydroxy groups, or functional groups (e.g., sulfonate and / or sulfonic acid groups). For example, in some embodiments, a relatively high percentage of the silica-based ceramic includes the following structure (I): [ka] where each R group can independently be hydroxy, -OSiR3, or a moiety containing a functional group such as a sulfonate or sulfonic acid group. For example, in some cases, R can be an alkylsulfonic acid group, such as 1-propanylsulfonic acid. As can be seen from this structure, the silica-based ceramic can contain an extended (although not necessarily single-crystalline) ceramic structure containing functional groups such as sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic. For example, in some embodiments, the silica-based ceramic can have the following structure (II): [ka] where each R group can independently be a hydroxy, —OSiR, or a moiety containing a functional group such as a sulfonate or sulfonic acid group.
[0066] In one embodiment, the silica-based ceramic has the following structure (III): [ka] where each R group can independently be hydroxy, —OSiR 3 , or a moiety containing a functional group such as a sulfonate or sulfonic acid group.
[0067] The silica-based ceramic of the cation exchange membrane can have one or more properties of ceramics known in the art. For example, the silica-based ceramic can be relatively brittle, have a relatively high density, have a relatively high hardness, and / or have a relatively high melting point. In some embodiments, the silica-based ceramic is polycrystalline. The silica-based ceramics described herein are in contrast to cation exchange membranes that include particles (e.g., nanoparticles) of silica (e.g., functionalized silica nanoparticles) suspended in a non-silica-based matrix (e.g., a polymer matrix, such as a carbon-based polymer matrix).
[0068] In some embodiments, Si is present in a relatively high amount in the silica-based ceramic. Si can be present in a relatively high amount in the silica-based ceramic because the silica-based ceramic is primarily silica-based, without a relatively high percentage of other components, such as a polymer matrix. In some embodiments, the silica-based ceramic comprises 6 weight percent (wt%) or more, 10 wt% or more, 12 wt% or more, 15 wt% or more, 17 wt% or more, 20 wt% or more, 24 wt% or more, 30 wt% or more, 40 wt% or more, or more. In some embodiments, the silica-based ceramic comprises 60 wt% or less, 50 wt% or less, 47 wt% or less, 40 wt% or less, 30 wt% or less, 28 wt% or less, 26 wt% or less, 24 wt% or less, 22 wt% or less, 20 wt% or less, 17 wt% or less, or less. Combinations of these ranges are possible. For example, in certain embodiments, the silica-based ceramic comprises an amount of Si in the silica-based ceramic of ≧6 wt % and ≦60 wt %, or ≧11 wt % and ≦26 wt %.
[0069] In some embodiments, the silica-based ceramic comprises 1.5 mole percent (mol%) or more, 3 mol% or more, 5 mol% or more, 8 mol% or more, 10 mol% or more, 12 mol% or more, 15 mol% or more, 18 mol% or more, 20 mol% or more, or more. In some embodiments, the silica-based ceramic comprises 33.4 mol% or less, 30 mol% or less, 28 mol% or less, 26 mol% or less, 24 mol% or less, 22 mol% or less, 20 mol% or less, 18 mol% or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the silica-based ceramic comprises 1.5 mol% or more and 33.4 mol% or less, 8 mol% or more and 20 mol% or less, 2.8 mol% or more and 18 mol% or less, or 12 mol% or more and 18 mol% or less, of Si in the silica-based ceramic.
[0070] In some embodiments in which the silica-based ceramic contains sulfur-containing functional groups, such as sulfonate and / or sulfonic acid groups, the molar ratio of silicon to sulfur in the silica-based ceramic depends on the loading of sulfur-containing functional groups in the silica-based ceramic. In some embodiments, the silica-based ceramic has a molar ratio of silicon to sulfur of 1:1 or greater, 1.5:1 or greater, 2:1 or greater, 3:1 or greater, 4:1 or greater, 5:1 or greater, 10:1 or greater, 25:1 or greater, or greater. In some embodiments, the silica-based ceramic has a molar ratio of silicon to sulfur of 120:1 or less, 75:1 or less, 50:1 or less, 25:1 or less, 10:1 or less, 4:1 or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the silica-based ceramic has a molar ratio of silicon to sulfur of 1:1 or greater and 120:1 or less, 1:1 or greater and 10:1 or less, or 1:1 or greater and 4:1 or less.
[0071] In some embodiments, the molar ratio of Si to carbon in the silica-based ceramic depends on the loading of carbon-containing groups in the silica-based ceramic, such as organic moieties (e.g., organic functional groups). In some embodiments, the silica-based ceramic has a molar ratio of silicon to carbon (Si:C) of 1:100 or more, 1:75 or more, 1:50 or more, 1:40 or more, 1:25 or more, 1:16 or more, 1:10 or more, 1:5 or more, 1:3 or more, 1:1 or more, or more. In some embodiments, the silica-based ceramic has a molar ratio of silicon to carbon of 3,000:1 or less, 2,000:1 or less, 1,000:1 or less, 500:1 or less, 200:1 or less, 100:1 or less, 75:1 or less, 50:1 or less, 25:1 or less, 10:1 or less, 2:1 or less, 1:1 or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the silica-based ceramic has a silicon to carbon molar ratio of 1:100 or greater and 3:00:1 or less, 1:100 or greater and 100:1 or less, 1:40 or greater and 10:1 or less, or 1:3 or greater and 2:1 or less.
[0072] The weight percentages and mole percentages and mole ratios of the silica-based ceramics described above can be determined by removing the silica-based ceramic from the rest of the cation exchange membrane or material (e.g., porous support membrane, compressible edging material, etc.) and performing elemental analysis such as inductively coupled plasma mass spectrometry (ICP-MS) or nuclear magnetic resonance (NMR).
[0073] As described above, in some embodiments, sol-gel techniques can be used to form silica-based ceramics. Accordingly, in some cases, the silica-based ceramic is derived from a sol-gel. In some embodiments, the sol used in the sol-gel technique is a silicon-containing precursor sol (i.e., the silica-based ceramic is derived from a silicon-containing precursor sol). During the fabrication of a cation exchange membrane, one or more components of the cation exchange membrane, such as the porous support membrane described herein, can be coated with a silicon-containing precursor sol during at least one step of the fabrication process. The silicon-containing precursor sol can include any of a variety of suitable silicon-containing precursor components, such as colloidal silica particles, siloxanes, silicate esters, silanols, silanes, alkoxysilanes, tetraalkyl orthosilicates, halosilanes, or combinations thereof. In some such embodiments, the silica-based ceramic is derived from a silicon-containing precursor sol containing two or more different silicon-containing precursor components. In some such cases, the silica-based ceramic is formed by co-condensation of two or more silicon-containing precursor components (e.g., two or more different silanes or substituted silanes).
[0074] In some embodiments, the silicon-containing precursor sol from which the silica-based ceramic is derived comprises a silicon-containing precursor comprising a sulfonate group, a sulfonic acid group, or a functional group (e.g., thiol, aryl group) that can be oxidized to a sulfonate or sulfonic acid group. In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) comprising a silane (e.g., a substituted alkoxysilane) containing sulfur (e.g., thiol). In some embodiments, the silica-based ceramic has a structure (IV): [ka] wherein R 1 , R 2 , and R 3 each independently represents an optionally substituted C 1~18L is selected from optionally substituted C 1~18 In some embodiments, R is selected from alkylene and arylene. 1 , R 2 , and R 3 each independently represents an optionally substituted C 1~8 L is selected from optionally substituted C 1~8 In some embodiments, R is selected from alkylene and arylene. 1 , R 2 , and R 3 each independently represents an optionally substituted C 1~4 L is selected from optionally substituted C 1~4 It is selected from alkylene and arylene.
[0075] In some embodiments, the silica-based ceramic has the structure (V): [ka] wherein each A 1 is independently selected from hydrogen, methyl, ethyl, propyl, or butyl; and n is 1 or greater and 18 or less.
[0076] As an example, in some embodiments, a silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) containing (3-mercaptopropyl)triethoxysilane. As described in more detail below, the resulting silica-based ceramic derived from the above thiol-containing compound can, in some cases, be further oxidized to form sulfonate and / or sulfonic acid groups.
[0077] In some embodiments, the silica-based ceramic has the structure (VI): [ka] and / or its conjugate base (e.g., a silicon-containing precursor sol), 4 , R 5 , and R 6 each independently represents an optionally substituted C 1~18 L is selected from optionally substituted C 1~18 In some embodiments, R is selected from alkylene and arylene. 4 , R 5 , and R 6 each independently represents an optionally substituted C 1~8 L is selected from optionally substituted C 1~8 In some embodiments, R is selected from alkylene and arylene. 4 , R 5 , and R 6 each independently represents an optionally substituted C 1~4 L is selected from optionally substituted C 1~4 It is selected from alkylene and arylene.
[0078] In some embodiments, the silica-based ceramic has the structure (VII): [ka] and / or its conjugate base (e.g., a silicon-containing precursor sol), wherein each A 2 is independently selected from hydrogen, methyl, ethyl, propyl, or butyl; and n is 1 or greater and 18 or less.
[0079] As an example, in some embodiments, the silica-based ceramic is derived from a mixture (eg, a silicon-containing precursor sol) that includes 3-(trihydroxysilyl)-1-alkanesulfonic acid.
[0080] In some embodiments, the silica-based ceramic has the structure (VIII): [ka] wherein each R 7 are independently hydrogen or optionally substituted C 1~18 In one embodiment, R 7 are independently hydrogen or optionally substituted C 1~8 In one embodiment, R 7 are independently hydrogen or optionally substituted C 1~4 In one embodiment, R 7 is independently selected from methyl, ethyl, propyl, and butyl.
[0081] In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) containing tetraethyl orthosilicate (TEOS) and / or tetraethylorthosiloxane. In some embodiments, the silica-based ceramic is derived from a single-phase mixture (e.g., a single-phase silicon-containing precursor sol) containing both a compound having structure (VIII) (e.g., TEOS) and a compound having structure (IV) (e.g., (3-mercaptopropyl)triethoxysilane). In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) containing a compound having structure (VIII), a compound having structure (IV), and water in a molar ratio of structure (VIII):structure (IV):water of 1:0.01-20:1-30, a molar ratio of 1:0.1-10:16, or a molar ratio of 1:0.25-1:2-4. In some embodiments, the silica-based ceramic is derived from a single-phase mixture (e.g., a single-phase silicon-containing precursor sol) containing both a compound having structure (VIII) (e.g., TEOS) and a compound having structure (VI) (e.g., 3-(trihydroxysilyl)-1-propanesulfonic acid). In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) containing a compound having structure (VIII), a compound having structure (VI), and water in a molar ratio of structure (VIII):structure (VI):water of 1:0.01-20:1-30, a molar ratio of 1:0.1-10:2-26, or a molar ratio of 1:0.25-1:16-26.
[0082] In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) containing two or more precursors. For example, in some embodiments, the silica-based ceramic is derived from a mixture containing a compound having structure (VIII) (e.g., TEOS) and a compound having structure (IV) (e.g., 3-mercaptopropyl)triethoxysilane) in a structure (VIII):structure (IV) weight ratio of 99:1 or less, 95:5 or less, 90:10 or less, 85:15 or less, 80:20 or less, 75:25 or less, 70:30 or less, 65:35 or less, 60:40 or less, or less. In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) containing a compound having structure (VIII) (e.g., TEOS) and a compound having structure (IV) (e.g., 3-mercaptopropyl)triethoxysilane) in a structure (VIII):structure (IV) weight ratio of 50:50 or more, 55:45 or more, 60:40 or more, 65:35 or more, 70:30 or more, or even more. Combinations of these ranges are possible (e.g., 50:50 or more and 99:1 or less, 60:40 or more and 90:10 or less, or 70:30 or more and 80:20 or less).
[0083] In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) comprising a compound having structure (VIII) (e.g., TEOS) and a compound having structure (VI) (e.g., 3-(trihydroxysilyl)-1-propanesulfonic acid) in a structure (VIII):structure (VI) weight ratio of 99:1 or less, 95:5 or less, 90:10 or less, 85:15 or less, 80:20 or less, 75:25 or less, 70:30 or less, 65:35 or less, 60:40 or less, or less. In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) containing a compound having structure (VIII) (e.g., TEOS) and a compound having structure (VI) (e.g., 3-(trihydroxysilyl)-1-propanesulfonic acid) in a structure (VIII):structure (VI) weight ratio of 40:60 or more, 45:55 or more, 50:50 or more, 55:45 or more, 60:40 or more, 65:35 or more, 70:30 or more, or even more. Combinations of these ranges are possible (e.g., 40:60 or more and 99:1 or less, 60:40 or more and 90:10 or less, or 70:30 or more and 80:20 or less).
[0084] In some embodiments, silica-based ceramics are derived from a mixture (e.g., a silicon-containing precursor sol) containing an aqueous solution with a specific pH, depending on the desired chemistry to be used. In some embodiments, the aqueous solution can have a pH of -1 or greater, 0 or greater, 1 or greater, 2 or greater, 3 or greater, 4 or greater, 5 or greater, greater than 6, 7 or greater, 8 or greater, 9 or greater, or greater. In some embodiments, the aqueous solution can have a pH of 14 or less, 13 or less, 12 or less, 11 or less, 10 or less, 9 or less, 8 or less, 7 or less, 6 or less, 5 or less, 4 or less, 3 or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the aqueous solution has a pH of -1 or greater and 14 or less, 0 or greater and 7 or less, or 1 or greater and 3 or less. In some cases, having a relatively acidic pH (e.g., a pH of 1 to 3) can allow certain condensation and hydrolysis reactions to occur during the fabrication of cation exchange membranes, including the conversion of a sol-gel to a silica-based ceramic. In certain embodiments, the silica-based ceramic is derived from the above mixture (eg, silicon-containing precursor sol) containing one or more acids, such as, but not limited to, HCl, H3PO4, H2SO4, or HNO3.
[0085] In some, but not necessarily all, embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) that includes one or more other solvents in addition to water. For example, in some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) that includes an alcohol. In some such cases, the presence of the alcohol in the mixture can promote miscibility of the components of the mixture. Exemplary alcohols that may be present include, but are not limited to, methanol, ethanol, isopropanol, butanol, or combinations thereof. In some embodiments, the silica-based ceramic is derived from a mixture (e.g., a silicon-containing precursor sol) that includes one or more solvents that may be able to alleviate problems (e.g., cracking) that may occur during drying of a coating that includes the mixture to form the silica-based ceramic. In some embodiments, exemplary solvents that may alleviate such problems include, but are not limited to, formamide and aromatic compounds (e.g., toluene, xylene).
[0086] As described above, in some embodiments, the silica-based ceramic is porous. In some such embodiments, the silica-based ceramic is nanoporous (having pores with an average (mean) diameter of 10 nm or less). The presence of relatively small pores in the silica-based ceramic can be advantageous in some cases in some applications, such as electrochemical and separation applications. In some embodiments, the presence of relatively small pores in the silica-based membrane ceramic can contribute to relatively high selectivity (e.g., due to size exclusion) of the cation exchange membrane. The relatively small pores can also contribute to relatively high permselectivity and a useful balance between cation conductivity (e.g., sodium ion conductivity) and water transport. In some embodiments, the silica-based ceramic has an average pore size of 1 μm or less (e.g., 500 nm or less, 100 nm or less, or 50 nm or less). In some cases, the silica-based ceramic has an average pore size of 10 nm or less, 8 nm or less, 6 nm or less, 5 nm or less, 3 nm or less, 2 nm or less, or less. In some embodiments, the silica-based ceramic has an average pore size of 0.25 nm or more, 0.4 nm or more, 0.6 nm or more, or 1 nm or more. Combinations of these ranges are possible. For example, in some embodiments, the silica-based ceramic has an average pore size of 0.25 nm or more and 1 μm or less, 0.25 nm or more and 10 nm or less, 0.4 nanometers or more and 10 nm or less, 0.6 nm or more and 5 nm or less, or 0.6 nm or more and 2.5 nm or less.
[0087] The average pore size of silica-based ceramics can be determined using small-angle X-ray scattering (SAXS) techniques. In a suitable SAXS technique, a collimated X-ray beam is focused on a film comprising a silica-based ceramic for at least 15 minutes, and the scattered intensity as a function of scattering angle is collected on an image plate. The scattered intensity is integrated to generate a one-dimensional scattering profile that plots the scattered intensity as a function of the q-vector. The scattering of the film can be fitted with a sphere-based shape factor (e.g., solid or core-shell). In some cases, the sphere-based shape factor can include structure factors (e.g., fractal or hard-sphere interactions). The fit can be performed in the freely available SASView software. A log-normal distribution in pore size polydispersity is assumed. The model and data set (Chi 2 ) is less than or equal to 10, less than or equal to 1, less than or equal to 0.5, or less than or equal to 10. The 1-D SAXS profile is assumed to be well-fit. solvent =18.8×10 -6 Å -2 and SLD sphere =0Å -2Certain parameters are held constant during the fit, including: where SLD is the scattering length density. The SAXS fit can be used to determine the void volume fraction, pore size (e.g., average pore size), and the polydispersity index of the pore size distribution. Suitable SAXS procedures are described in detail, for example, in Pedersen, J.S., Analysis of small-angle scattering data from colloids and polymer solutions: modeling and least-squares fitting. Advances in Colloid and Interface Science 1997, 70, 171-210, and Zemb., T.; Lindner, P., Neutron, X-Rays and Light. Scattering Methods Applies to Soft Condensed Matter. North Holland: 2002, which are incorporated herein by reference in their entirety. The average pore size can also be determined using other small-angle scattering techniques, such as small-angle neutron scattering (SANS).
[0088] In some embodiments, the cation exchange membrane or material has a relatively high volume porosity. The volume porosity may depend on the porosity of the silica-based ceramic. Having a relatively high volume porosity may contribute to certain beneficial performance characteristics of the cation exchange membrane, such as cation exchange capacity and water absorption. In some embodiments, the cation exchange membrane or material has a volume porosity of 1% or more, 3% or more, 5% or more, 10% or more, 20% or more, 30% or more, 40% or more, or more. In some embodiments, the cation exchange membrane or material has a volume porosity of 70% or less, 60% or less, 50% or less, 45% or less, 40% or less, 35% or less, 30% or less, 25% or less, 15% or less, or less. Combinations of these ranges are possible. For example, in certain embodiments, the cation exchange membrane or material has a volume porosity of 1% or more and 70% or less, 5% or more and 50% or less, 10% or more and 50% or less, or 30% or more and 50% or less. As described above, these volume porosities of the cation exchange membrane or material are determined by fitting SAXS data of the cation exchange membrane or material.
[0089] In some embodiments, the pores in the silica-based ceramic have a relatively small aspect ratio (length:width). The aspect ratio of the pores in the silica-based film can be determined by fitting the SAXS data to an ellipsoidal model and taking the ratio of the average first and average second radii to determine the average first and average second radii of the pores in the silica-based film. In some embodiments, the pores in the silica-based film have an aspect ratio of 40:1 or less, 20:1 or less, 10:1 or less, 5:1 or less, or less.
[0090] In certain embodiments, the pores of the silica-based ceramic have an ordered structure. Such an ordered structure may, in some cases, be in contrast to the pores of certain existing cation exchange membranes, such as those made from hydrocarbon- or perfluorocarbon-based polymers, which may have string-like, irregular pores (e.g., with high polydispersity). Having a silica-based ceramic with regular, ordered pores over a relatively large size scale may, in some cases, correspond to improved performance characteristics in cation exchange applications. The pores of the silica-based ceramic may be characterized by scattering data from SAXS experiments on membranes or materials containing the silica-based ceramic having a Chi of 10 or less, 5 or less, 1 or less, 0.5 or less, or even less. 2 / N value, and can be fitted to a mathematical model such as a fractal aggregate model, where Chi 2 is the sum of squares of the intensity differences between the mathematical model and the small-angle scattering spectral data, and N is the number of small-angle scattering data points over the model fit range. An exemplary fractal aggregate model using SAXS data of intensity (I) as a function of the scattering vector, q, is as follows: I(q)=P(q)S(q)+bck S(q) is a network or fractal structure that defines the organization or organization of the building blocks of the pore network of the silica-based ceramic. In other words, in some embodiments, the building blocks are the pores of the silica-based ceramic. Bck defines the background scattering, e.g., from the scattering particle source and / or the inelastic scattering of the scattering particles from the silica-based ceramic. In some embodiments, S(q) is expressed by the following formula:
number
[0091] P(q) is the shape factor that defines the structure of the building blocks of the pore network of silica-based ceramics as a function of q. Such shape factors can take on a variety of shapes, including simple geometric shapes such as spheres, ellipsoids, cubes, and ovals.
[0092] In some embodiments, the building blocks (pores) are defined as uniform building blocks, such as uniform spheres. In that regard, in some embodiments, P(q) is defined as follows: P(q) = scale × V(ρ block -ρ solvent ) 2 F(qR0) 2 is defined by:
number
[0093] In some embodiments, the shape factor defines a spherical core-shell building block (pore). In some such embodiments, P(q) is expressed as:
number
[0094] In some embodiments, one or more surfaces of the silica-based ceramic are coated with an additional coating. A core-shell model, such as a core-shell fractal aggregate model, may be suitable for characterizing the core-shell particle building blocks. In some cases, the core-shell model is suitable even in the absence of an additional coating process. For example, in some embodiments, the method used to form the silica-based ceramic (e.g., a sol-gel-based method) produces phase-separated regions that can be modeled using the core-shell model.
[0095] As noted above, various embodiments of the shape factor, P(q), of the fractal aggregate model used to characterize small-angle scattering spectra can include factors that account for differences between scattering length densities.
[0096] In some embodiments, the scattering length density in the above formula is defined by the materials that make up the components of the silica-based ceramic film. Generally, the greater the difference between the scattering length densities of scattering sources such as pores, the greater the scattering contrast provided by the surrounding ceramic material. Thus, in some embodiments, small-angle scattering data is generated from a silica-based ceramic that has been dried to remove solvent or other liquid from the pores, thus resulting in a greater difference in scattering length density compared to a silica-based ceramic with pores filled with a liquid solvent.
[0097] In certain embodiments, the scattering length density is -2 The scattering length density is defined as the sum of the bond coherent scattering lengths of each atom normalized by the molecular volume. For example, the X-ray scattering length density of air is approximately 0 Å. -2 On the other hand, the X-ray scattering length density of amorphous silica is about 18.8 × 10 -6 Å -2 is.
[0098] In one embodiment, small-angle scattering data is generated from a silica-based ceramic that has been rinsed to remove residual ions, chemical reactants, and the like.
[0099] In certain embodiments, fitting the small-angle scattering spectrum to the fractal aggregate model includes fitting the small-angle scattering spectrum over a range of q values of more than one order of magnitude, e.g., over one order of magnitude, where q is Å -1 In addition to providing sufficient data to fit the fractal aggregate model, such a relatively wide fit range can ensure that the data fit the fractal aggregate model over a size range commensurate with the size scale of pores in, for example, silica-based ceramics. In certain embodiments, the fit of the small-angle scattering spectrum to the fractal aggregate model is within a range of about 0.01 Å. -1 ~approximately 1 Å -1 In one embodiment, the fitting of the small-angle scattering spectrum to the fractal aggregate model includes fitting the small-angle scattering spectrum over a range of q values in the range of about 0.02 Å. -1 ~approx. 0.8Å -1 This involves fitting small-angle scattering spectra over a range of q values in the range
[0100] As noted above, the scale corresponds to the volume fraction of pores in the silica-based ceramic. In some embodiments, the scale corresponds to the film porosity when the small-angle scattering spectrum has intensity units of 1 / cm, and the scale is less than 0.7. In this context, the scale corresponds to the number of pores normalized by the size of the sample. In some embodiments, the silica-based ceramic has a pore volume fraction in the range of about 0.01 to about 0.7. In some embodiments, the silica-based ceramic has a pore volume fraction in the range of about 0.15 to about 0.35. It should be understood that the above ranges correspond to the scattering length density of air at ambient conditions for the pores of the silica-based ceramic and amorphous silica, respectively.
[0101] In one embodiment, D f is the fractal dimension of the fractal aggregate model described herein. In some embodiments, D fcorresponds to the shape and / or configuration of the pores within the silica-based ceramic. f is in the range of about 1 to about 3. f is close to or equal to 1, the pore can generally be characterized as a one-dimensional tunnel. f is close to or equal to 3, the pore may generally be characterized as an open sphere.
[0102] In certain embodiments, it is advantageous to have a silica-based ceramic that defines pores that have a tortuous or tortuous path through the silica-based ceramic. For ions or other particles in fluid communication with the tortuous pores, the ions or other particles are less likely to traverse the membrane as the size of the ions or other particles approaches that of the tortuous pores compared to less tortuous pores. In this regard, such silica-based ceramics that define tortuous pores may, in some cases, be suitable for, e.g., providing more selective cation exchange than silica-based ceramics that define pores of the same size but that provide a more direct path through the silica-based ceramic. In this regard, in some, but not necessarily all, embodiments, D f is in the range of 2.0 to 4.0. f The range describes or characterizes silica-based ceramics with relatively intricate pores having a shape factor somewhere between a straight line and an open sphere.
[0103] In some embodiments, the fractal aggregate model is constrained to have pore sizes within a particular range. As described above, the porous support defines pores having an average pore size within the range. Similarly, the methods described in the present disclosure are suitable for producing such silica-based ceramics that define pores within this size range. Therefore, by constraining the fractal aggregate model used to fit the small-angle scattering data, a good fit between the fractal silica-based ceramic and the fractal aggregate model can be obtained.
[0104] As noted above, the correlation length, ξ, is the length at which the fractal pattern of a silica-based ceramic repeats itself. In some cases, the silica-based ceramic repeats the fractal pattern over relatively large size scales. In this regard, such silica-based ceramics define regular, ordered pores over relatively large size scales, which may, in some cases, correspond to improved functional properties such as filtration, ion exchange, and the like. Similarly, fractal patterns generally cannot be extended to size scales smaller than the size scale of the constituent units of the silica-based ceramic, e.g., submolecular or atomic size scales. Thus, in some embodiments, the correlation length, ξ, is constrained to a value greater than 1 nm. In some embodiments, the correlation length, ξ, is constrained to a value greater than 50 nm. In some embodiments, the correlation length, ξ, is constrained to a value greater than 100 nm. In some embodiments, the correlation length, ξ, is constrained to a value approximately equal to the thickness of the silica-based ceramic. In some embodiments, the silica-based ceramic has a correlation length, ξ, greater than 1 nm, e.g., greater than 50 nm or greater than 100 nm.
[0105] The fractal aggregate model used to characterize silica-based ceramics may include a term to account for the variability in the size of scattering sources, such as pores, in silica-based ceramics. In this regard, in some embodiments, the fractal aggregate model includes a polydispersity index in the radius parameter. Thus, in some embodiments, the radius of the constituent units, R o is a weighted average rather than a constant. The weighted average can follow several mathematical functions, such as a Gaussian function, a log-normal function, a rectangular distribution, etc. In certain embodiments, the polydispersity index is a Gaussian function, as follows:
number
[0106] In certain embodiments, the polydispersity ratio is a lognormal function, as follows:
number
[0107] In one embodiment, the lognormal distribution is generally x med In this regard, as the polydispersity ratio increases, the lower tail, e.g., atoms that physically define the pore, which may define a smaller pore diameter, may not fall within the aphysical range.
[0108] In some embodiments, the pores of the silica-based ceramic have a relatively low log-normal polydispersity index of pore radius. A relatively low log-normal polydispersity index of pore radius generally corresponds to pores having relatively similar radii, which may indicate a regular ordered structure of the pores of the silica-based ceramic. In some embodiments, the pores of the silica-based ceramic have a log-normal polydispersity index of pore radius of 0.8 or less, 0.7 or less, 0.5 or less, 0.3 or less, or less. In some embodiments, the pores of the silica-based ceramic have a log-normal polydispersity index of pore radius of 0 or more and 0.8 or less, 0 or more and 0.7 or less, 0 or more and 0.5 or less, or 0 or more and 0.3 or less.
[0109] In certain embodiments, the pores of silica-based ceramics conform to the Teubner-Strey model. The Teubner-Strey model was originally developed to describe the scattering patterns and microstructure of microemulsions (e.g., mixtures of water, oil, and amphiphiles). Small-angle scattering experiments, such as small-angle neutron scattering (SANS) experiments, have unexpectedly revealed herein that, in certain embodiments, cation exchange membranes or materials have silica-based ceramic pore structures that conform to such a Teubner-Strey model. Teubner-Strey ordering is more commonly associated with packed micellar structures, where micelles reinforce distinct pore structures and interpore distances, rather than in the ceramic-based structures observed herein.
[0110] When the pores of a silica-based ceramic fit the Teubner-Strey model for small-angle scattering spectra, the intensity (I) as a function of the scattering vector, q, is given by the following equation:
number
[0111] The Teubner-Strey fit of small angle scattering from pores in silica-based ceramics is also given by:
number
[0112] In some, but not necessarily all, embodiments, the pore structure of a silica-based ceramic depends on the state of the cation exchange membrane or material. For example, in connection with the present disclosure, it has been unexpectedly observed that whether the cation exchange membrane is in a dry or hydrated state can, in some cases, affect the pore structure of a silica-based ceramic. The pores of the silica-based ceramic can fit a first mathematical model of small-angle scattering spectra when the cation exchange membrane or material is in a first state (e.g., a dry state), and the pores of the silica-based ceramic can fit a second, different mathematical model of small-angle scattering spectra when the cation exchange membrane or material is in a second, different state (e.g., a hydrated state). In this regard, a cation exchange membrane or material is considered to be in a dry state when heated in an oven at 100°C and 0% relative humidity for 2 hours, and a cation exchange membrane or material is considered to be in a hydrated state when it is immersed in HO or DO at room temperature for 24 hours in a vacuum environment that has a reduced pressure to draw air out of the pores, but is not so low as to boil the HO or DO.
[0113] As another example, in some, but not necessarily all, embodiments, the average pore size of a silica-based ceramic is larger when the cation exchange membrane or material is in a hydrated state compared to when the cation exchange membrane or material is in a dry state. It has been observed that having an average pore size in the hydrated state that is larger than the average pore size in the dry state can result in percolation of hydrated domains in the silica-based ceramic. Such percolation can result in improved cation transport properties (e.g., sodium ion conductivity). In some embodiments, the silica-based ceramic has an average pore size that is 1.1 times or more, 1.2 times or more, 1.3 times or more, 1.4 times or more, 1.5 times or more, 1.6 times or more, 1.8 times or more, 2 times or more, or more larger when the cation exchange membrane is in a hydrated state than when the cation exchange membrane is in a dry state. In some embodiments, the silica-based ceramic has an average pore size that is at most 5 times, at most 4.5 times, at most 4 times, at most 3.5 times, at most 3 times, at most 2.8 times, at most 2.6 times, at most 2.5 times, at most 2.4 times, at most 2.3 times, at most 2.2 times, at most 2.1 times, at most 2 times, or at most not more than ...
[0114] As another example, in some, but not necessarily all, embodiments, the pores of a silica-based ceramic conform to the Teubner-Strey model of the above-described small-angle scattering spectrum when the cation exchange membrane or material is in a dry state, and the pores of a silica-based ceramic conform to the core-shell model of the above-described small-angle scattering spectrum when the cation exchange membrane or material is in a hydrated state. In certain embodiments, it has been observed that having Teubner-Strey ordering in the dry state and a core-shell structure in the hydrated state is associated with structural changes upon water absorption that confer beneficial performance properties (e.g., cation exchange capacity, cation conductivity, permselectivity, etc.).
[0115] In connection with the present disclosure, it has been unexpectedly observed that the pore structure of a silica-based membrane, depending on the state of the cation exchange membrane or material, may depend on the composition of the silica-based membrane or material and / or the conditions under which the cation exchange membrane or material is fabricated. For example, the dependence of the pore structure on the state of the cation exchange membrane or material (e.g., dry vs. hydrated) may depend on the amount of functional groups (e.g., sulfonic acid and / or sulfonate groups) present in the silica-based ceramic. The amount of functional groups present may, in turn, depend on the ratio of silicon-containing precursors, for example, in a silicon-containing precursor sol, during fabrication of the cation exchange membrane or material. In some embodiments, it has been unexpectedly observed herein that cation exchange membranes derived from silicon-containing precursor sols with a relatively small amount (for example, 10 mol% or less, 8 mol% or less, 5 mol% or less, 1 mol% or less, or less) of silicon-containing precursors containing functional groups (for example, having structure IV or VI) have relatively similar pore structures (for example, average pore size, small-angle scattering model fit) regardless of whether the cation exchange membrane or material is in a dry state or a hydrated state.For example, in some such cases, the average pore size in the hydrated state is within 10%, within 5%, or within 2% of the average pore size in the dry state. However, in certain embodiments, cation exchange membranes derived from silicon-containing precursor sols having a relatively high amount (e.g., 15 mol % or more, 20 mol % or more, 25 mol % or more, 30 mol % or more, 35 mol % or more, 40 mol % or more) of silicon-containing precursors containing functional groups (e.g., having structure IV or VI) have been observed to have pore structures (e.g., average pore size, small-angle scattering model fit) that are substantially different when the cation exchange membrane or material is in a dry state compared to when it is in a hydrated state (e.g., pore size in the hydrated state that is 1.1 times or more, 1.2 times or more, 1.3 times or more, 1.4 times or more, 2 times or more larger than the pore size in the dry state).
[0116] As described above, in certain embodiments, the cation exchange membrane comprises a porous support membrane. The porous membrane (e.g., porous support membrane 130) can comprise any of a variety of suitable materials and can be in any of a variety of forms.
[0117] In some embodiments, the porous support membrane comprises relatively large pores in the absence of the silica-based ceramic, e.g., before being coated with the silica-based ceramic. For example, referring again to FIG. 2A, porous support membrane 130 comprises pores, including relatively large pores 132. Having relatively large pores can, in some embodiments, allow sufficient overall permeability across the membrane as well as sufficient space for the silica-based ceramic to reside when the coating formed by the silica-based ceramic is at least partially located within the porous membrane support. In some embodiments, the porous support membrane comprises pores having an average (mean) pore size in the absence of the silica-based ceramic, e.g., 50 nm or more, 75 nm or more, 100 nm or more, 200 nm or more, 500 nm or more, 1 μm or more, 2 μm or more, 5 μm or more, 10 μm or more, 15 μm or more, 20 μm or more, 30 μm or more, 40 μm or more, or more, before being coated with the silica-based ceramic. However, in some embodiments, the porous support membrane does not contain pores so large that they adversely affect the performance or properties of the cation exchange membrane (e.g., low mechanical burst strength, low coating retention, etc.). In some embodiments, the porous support membrane contains pores having an average pore size, prior to coating with the silica-based ceramic and in the absence of the silica-based ceramic, of, for example, 50 μm or less, 25 μm or less, 10 μm or less, 5 μm or less, 2 μm or less, 1 μm or less, 500 nm or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the porous support membrane contains pores having an average diameter, prior to coating with the silica-based ceramic, of, for example, 50 nm or more and 50 μm or less, 500 nm or more and 10 μm or more, or 1 μm or more and 5 μm or less. The average pore size of the porous support membrane in the cation exchange membrane can be determined by Brunauer-Emmett-Teller (BET) gas sorption technique or mercury intrusion porosimetry.
[0118] It should be understood that in some embodiments, the silica-based ceramic, if present, fills at least some (or all) of the pores of the porous support membrane. In such cases, the average pore size of the porous support membrane in the final cation exchange membrane is smaller than the average pore size of the porous support membrane before being coated with the silica-based ceramic. Furthermore, as described above, in some embodiments, the silica-based ceramic itself is porous (e.g., nanoporous). Thus, in some embodiments, the cation exchange membrane has a bimodal distribution of pores. For example, in some embodiments, the cation exchange membrane has a bimodal distribution of pores, including relatively small pores corresponding to the pores of the silica-based ceramic and relatively large pores corresponding to the partially filled (e.g., 70% filled) pores of the porous support membrane. In these embodiments, the bimodal distribution can be determined by measuring the relatively small pores using the SAXS techniques described above (e.g., to measure the pores corresponding to the silica-based ceramic) and measuring the relatively large pores using the BET gas sorption or mercury intrusion porosimetry techniques described above (e.g., to measure the pores corresponding to the partially filled pores of the porous support membrane).
[0119] In some embodiments, the bimodal distribution of relatively small pores (e.g., corresponding to the pores of the silica-based ceramic) has an average pore size of 1 μm or less (e.g., 500 nm or less, 100 nm or less, or 50 nm or less). In some cases, the bimodal distribution of relatively small pores (e.g., corresponding to the pores of the silica-based ceramic) has an average pore size of 10 nm or less, 8 nm or less, 6 nm or less, 5 nm or less, 3 nm or less, 2 nm or less, or less. In some embodiments, the bimodal distribution of relatively small pores (e.g., corresponding to the pores of the silica-based ceramic) has an average pore size of 0.25 nm or more, 0.4 nm or more, 0.6 nm or more, or 1 nm or more. Combinations of these ranges are possible. For example, in some embodiments, the bimodal distribution of relatively small pores (e.g., corresponding to the pores of a silica-based ceramic) has an average pore size of 0.25 nm or more and 1 μm or less, 0.25 nm or more and 10 nm or less, 0.4 nanometers or more and 10 nm or less, 0.6 nm or more and 5 nm or less, or 0.6 nm or more and 2.5 nm or less.
[0120] In some embodiments, the bimodal distribution of larger pores (e.g., corresponding to partially filled pores in the porous support membrane) has an average pore size of 50 nm or more, 75 nm or more, 100 nm or more, 200 nm or more, 500 nm or more, 1 μm or more, 2 μm or more, 5 μm or more, 10 μm or more, 15 μm or more, 20 μm or more, 30 μm or more, 40 μm or more, or more. In some embodiments, the bimodal distribution of larger pores (e.g., corresponding to partially filled pores in the porous support membrane) has an average pore size of 50 μm or less, 25 μm or less, 10 μm or less, 5 μm or less, 2 μm or less, 1 μm or less, 500 nm or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the bimodal distribution of larger pores (e.g., corresponding to the partially filled pores of the porous support membrane) has an average pore size of 50 nm or more and 50 μm or less, 500 nm or more and 10 μm or less, or 1 μm or more and 5 μm or less.
[0121] In some embodiments, the porous support membrane has a relatively high volume porosity in the absence of the silica-based ceramic, for example, before being coated with the silica-based ceramic. Having a relatively high volume porosity can, in some cases, allow sufficient overall permeability and sufficient space for the silica-based ceramic to reside when the coating formed by the silica-based ceramic is at least partially located within the porous membrane support. In some embodiments, for example, the porous support membrane in the absence of the silica-based ceramic, before being coated with the silica-based ceramic, has a volume porosity of 10% or more, 15% or more, 20% or more, 30% or more, 40% or more, 50% or more, 60% or more, 70% or more, 80% or more, 90% or more, or more. In some embodiments, the porous support membrane has a volume porosity in the absence of the silica-based ceramic of, for example, 99% or less, 95% or less, 90% or less, 80% or less, 70% or less, 60% or less, 50% or less, 40% or less, 30% or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the porous support membrane in the absence of the silica-based ceramic, e.g., before being coated with the silica-based ceramic, has a volume porosity of 10% or more and 99% or less, 50% or more and 99% or less, 80% or more and 99% or less, or 60% or more and 80% or less. It should be understood that in some embodiments, the silica-based ceramic fills at least a portion of the pores of the porous support membrane. Thus, in some embodiments, the entire cation exchange membrane can have a volume porosity that is different from the volume porosity of the porous support membrane in the absence of the silica-based ceramic. The volume porosity of the porous support membrane in the cation exchange membrane can be determined by BET gas sorption techniques or mercury intrusion porosimetry.
[0122] The porous support membrane can have any suitable cross-sectional thickness. Having a suitable cross-sectional thickness can, in some cases, enable the porous support membrane, and ultimately the cation exchange membrane, to have suitable mechanical properties (e.g., mechanical burst strength) and performance characteristics (e.g., by having appropriate permeability and ion transport rate). In certain embodiments, the porous support membrane has a cross-sectional thickness of 3 μm or more, 5 μm or more, 10 μm or more, 25 μm or more, 50 μm or more, 75 μm or more, 100 μm or more, 150 μm or more, 200 μm or more, 300 μm or more, 400 μm or more, 500 μm or more, or more. In certain embodiments, the porous support membrane has a cross-sectional thickness of 1,000 μm or less, 500 μm or less, 300 μm or less, 100 μm or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the porous support membrane has a cross-sectional thickness of 3 μm or more and 1,000 μm or less, or 25 μm or more and 300 μm or less. The cross-sectional thickness of the porous support membrane in a cation exchange membrane can be determined using SEM / EDX techniques on the cation exchange membrane. In some embodiments, the EDX component of the technique can be used to distinguish the porous support membrane from other components of the cation exchange membrane, such as silica-based ceramics.
[0123] The porous support membrane can be in any of a variety of suitable forms. Accordingly, it should be understood that the representation of the porous support membrane 130 in FIG. 2A is non-limiting and exemplary, and that the porous support membrane 130 can be in the form of any suitable structure. In certain embodiments, the porous support membrane can be in the form of a macroporous structure. For example, in certain embodiments, the porous support membrane is in the form of a nonwoven fabric or nonwoven mesh. In certain embodiments, the porous support membrane is in the form of a veil. In certain embodiments, the porous support membrane is in the form of a knitted fabric. In some cases, the porous support membrane is in the form of a woven fabric or mesh. In certain embodiments, the porous support membrane is in the form of an open-cell structure, such as an open-cell foam. In certain embodiments, the porous support membrane is in the form of a fibril and node structure. In some cases, the porous support membrane comprises a combination of multiple types of microporous structures. For example, in certain embodiments, the porous support membrane comprises a combination of the exemplary structures described above (e.g., a nonwoven fabric, an open-cell foam, etc.).
[0124] The porous support membrane can be formed by any suitable method, hi some embodiments, the porous support membrane is a wet-laid or non-wet-laid structure (e.g., airlaid, carded, meltblown, meltspun (e.g., spunbond), centrifugally spun, solvent spun, electroblown, or gel-spun web).
[0125] As described above, in some embodiments, the porous support membrane includes a support component. The support component of a porous support membrane generally refers to a component of the porous support membrane that contributes to the overall structure and mechanical properties of the porous support membrane. For example, in some embodiments where the porous support membrane is in the form of a nonwoven fabric, the support component of the nonwoven fabric may include the fibers and / or filaments from which the nonwoven fabric is formed. As another example, in some embodiments where the porous support membrane is in the form of a mesh, the support component of the mesh may include the yarns from which the mesh is formed. Examples of support components include, but are not limited to, fibers, yarns, and wires. Referring again to FIG. 2A , the porous support membrane 130 includes an exemplary porous support component 135, according to some embodiments.
[0126] In some embodiments, the support elements have a relatively large number-average diameter. In some cases, having a support element with a relatively large diameter can contribute to a porous support membrane having relatively beneficial mechanical properties (e.g., relatively high mechanical burst strength). In some embodiments, the porous support membrane has a number-average support element diameter (e.g., fiber diameter, cell diameter) of 10 nm or more, 25 nm or more, 50 nm or more, 100 nm or more, 200 nm or more, 500 nm or more, 1 μm or more, 2 μm or more, 5 μm or more, 10 μm or more, 20 μm or more, or more. In some embodiments, the support elements of the porous support membrane are not so large as to contribute to adverse effects in the overall cation exchange membrane, such as insufficient porosity or permeability. In some embodiments, the porous support membrane has a number-average support element diameter (e.g., fiber diameter, cell diameter) of 50 μm or less, 20 μm or less, 10 μm or less, 5 μm or less, 2 μm or less, 1 μm or less, 500 nm or less, 100 nm or less, or less. Combinations of these ranges are possible. For example, in certain embodiments, the porous support membrane has a number average support element diameter of ≧10 nm and ≦50 μm, ≧10 nm and ≦20 μm, ≧100 nm and ≦1 μm, or ≧100 nm and ≦500 nm.
[0127] The porous support membrane can comprise any of a variety of suitable materials (e.g., organic materials, inorganic materials, or combinations thereof). In some embodiments, the porous support membrane comprises a polymeric material. In some such cases, 20% or more, 30% or more, 40% or more, 50% or more, 60% or more, 70% or more, 75% or more, 80% or more, 90% or more, 95% or more, or more by weight of the porous support membrane is composed of one or more polymers. In some embodiments, 100% or less, 99% or less, 95% or less, 90% or less, 80% or less, 50% or less, 30% or less, or less by weight of the porous support membrane is composed of one or more polymers. Combinations of these ranges are possible. For example, in some embodiments, 20% or more and 100% or less, or 50% or more and 99% or less by weight of the porous support membrane is composed of one or more polymers. Exemplary polymers that the porous support membrane may comprise include, but are not limited to, polyethylene, polyvinyl chloride, polypropylene, polystyrene, polyamide, polyimide, polyacetonitrile, polyvinyl acetate, polyethylene glycol, polyetheretherketone, polysulfone, polyacrylamide, polydimethylsiloxane, polyvinylidene fluoride, polyacrylic acid, polyvinyl alcohol, polyphenylene sulfide, polytetrafluoroethylene, cellulose, microfibrillated cellulose, nanofibrillated cellulose, or combinations or derivatives thereof.
[0128] In some embodiments, the porous support membrane comprises a ceramic or glass material. In some such cases, 20% by weight or more, 30% by weight or more, 40% by weight or more, 50% by weight or more, 60% by weight or more, 70% by weight or more, 75% by weight or more, 80% by weight or more, 90% by weight or more, 95% by weight or more, or more by weight of the porous support membrane is composed of one or more ceramic or glass materials. In some embodiments, 100% by weight or less, 99% by weight or less, 95% by weight or less, 90% by weight or less, 80% by weight or less, 50% by weight or less, 30% by weight or less, or less by weight of the porous support membrane is composed of one or more ceramic or glass materials. Combinations of these ranges are possible. For example, in some embodiments, 20% by weight or more and 100% by weight or more, or 50% by weight or more and 99% by weight or more, of the porous support membrane is composed of one or more ceramic or glass materials. Exemplary ceramics that the porous support membrane may comprise include, but are not limited to, borosilicate glass, silica, titania, zirconia, alumina, silicon carbide, silicon nitride, boron nitride, lithium silicate, potassium silicate, tin oxide, iron oxide, or combinations thereof.
[0129] In some embodiments, the porous support membrane comprises a metal and / or metal alloy. In some such cases, 20% or more, 30% or more, 40% or more, 50% or more, 60% or more, 70% or more, 75% or more, 80% or more, 90% or more, 95% or more, or more by weight of the porous support membrane is composed of one or more metals and / or metal alloys. In some embodiments, 100% or less, 99% or less, 95% or less, 90% or less, 80% or less, 50% or less, 30% or less, or less by weight of the porous support membrane is composed of one or more metals and / or metal alloys. Combinations of these ranges are possible. For example, in some embodiments, 20% or more and 100% or less, or 50% or more and 99% or less by weight of the porous support membrane is composed of one or more metals and / or metal alloys. Exemplary metals that the porous support membrane may comprise include, but are not limited to, iron, nickel, copper, titanium, aluminum, or combinations thereof. One non-limiting example of a metal alloy that the porous support membrane may comprise is steel.
[0130] In some embodiments, the porous support membrane comprises a combination of the above materials. For example, in some embodiments, the porous support membrane comprises a combination of a polymeric material and a ceramic or glass material (or a polymeric material and a metal and / or metal alloy, or a ceramic material and a metal and / or metal alloy). One non-limiting example is an embodiment in which the porous support membrane comprises a glass material (e.g., borosilicate glass) containing one or more polymeric materials (e.g., one or more polymeric binders that can enhance the mechanical properties of the porous support membrane).
[0131] In some, but not all, embodiments, the porous support membrane includes one or more amphiphilic molecules on its surface. Including one or more amphiphilic molecules on the surface of the porous support membrane can, in some cases, promote increased wetting of solutions used during fabrication of the cation exchange membrane. For example, in some cases, the cation exchange membrane is fabricated by applying a sol-gel solution to the porous support membrane. In some cases, such increased wetting can contribute to reduced cracking during certain fabrication processes, such as when a drying step is performed. In some such cases, having one or more amphiphilic molecules present on the surface of the porous support membrane can promote wetting of the sol-gel ceramic material in the porous support membrane. In some cases, the amphiphilic molecules are covalently bonded to at least a portion of the porous support membrane (e.g., as surface functional groups). In some embodiments, the amphiphilic molecules are coated on or within the porous support membrane (e.g., prior to coating the porous support membrane with the sol-gel). Exemplary amphiphilic molecules include, but are not limited to, sodium alkyl sulfates (e.g., sodium dodecyl sulfate), dialkyl sulfosuccinates, and alkyltrimethylammonium bromides.
[0132] In certain embodiments, the porous support membrane has a relatively high surface area (e.g., before being coated with a silica-based ceramic). Having a relatively high surface area of the porous support membrane can, in some cases, promote adhesion between the porous support membrane and the silica-based ceramic. One exemplary way in which a relatively high surface area of the porous support membrane can be achieved is by etching the porous support membrane before coating it with a silica-based ceramic. The porous support membrane can, in some cases, be etched with a suitable solvent, acid, caustic, or oxidizing agent. In certain embodiments, the porous support membrane has a surface area of 0.0001 m before being coated with a silica-based ceramic. 2 / g or more, 0.0002m 2 / g or more, 0.0005m 2 / g or more, 0.001m 2 / g or more, 0.002m 2 / g or more, 0.005m 2 / g or more, 0.01m 2 / g or more, 0.02m 2 / g or more, 0.05m 2 / g or more, 0.1m 2 / g or more, 0.2m 2 / g or more, 0.5m 2 In some embodiments, the porous support membrane has a specific surface area of 100 m / g or more before being coated with the silica-based ceramic. 2 / g or less, 50m 2 / g or less, 20m 2 / g or less, 10m 2 / g or less, 5m 2 / g or less, 2m 2 / g or less, 1m 2 / g or less, or even less. Combinations of these ranges are possible. For example, in one embodiment, the porous support membrane has a specific surface area of 0.0001 m / g or less before being coated with the silica-based ceramic. 2 / g or more and 100m 2 / g or less, 0.001m 2 / g or more and 10m 2 / g or less, or 0.01m 2 / g or more and 1m 2 The specific surface area of the porous support membrane before being coated with the silica-based ceramic can be determined using BET gas sorption techniques (either before the silica-based ceramic coating is formed or by removing the silica-based ceramic from the cation exchange membrane).
[0133] In some embodiments, a relatively high percentage of the pore volume of the porous support membrane is filled with a silica-based ceramic that coats at least a portion of the porous support membrane. The percentage of the pore volume of the porous support membrane that is filled with the silica-based ceramic can be determined, for example, using an SEM. Typically, several images are taken from both the top and cross-section of the cation exchange membrane at various magnifications, ranging from 200x for the top to 2000x for the cross-section. These images can be compared with images of the porous support membrane at the same magnification. A cross-section of the cation exchange membrane is examined to determine the extent to which the pore volume of the porous support membrane is filled with the silica-based ceramic. A cation exchange membrane in which the pore volume of the porous support membrane is sufficiently filled with the silica-based ceramic appears dense and has few to no apparent macropores or openings. In some cases, it can be beneficial if there are areas of low density (e.g., cracks, smaller pores, etc.) that are not structured to create clear paths for liquid to move from one side of the cation exchange membrane to the other. Similarly, in some embodiments, it may be beneficial for the cation exchange membrane to have an image of the top of the membrane that appears smooth and uniform. In some embodiments, it may be beneficial for the membrane to have a relatively small surface area of silica-based ceramic. The surface area of the silica-based ceramic in the cation exchange membrane may be determined by examining an SEM of an area of silica-based ceramic on the top or bottom surface of the porous support membrane. In some embodiments, the surface area of the silica-based ceramic on top of the porous support membrane is 200 μm or less, 20 μm or less, 2 μm or less, or less, as determined by SEM.
[0134] In some embodiments, the pore volume of the porous support membrane is filled with at least 50%, at least 60%, at least 70%, at least 75%, at least 80%, at least 90%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, at least 99.9%, and / or up to 100% of the pore volume. In some embodiments, the pore volume of the porous support membrane is filled with at most 100%, at most 99.9%, at most 99%, at most 98%, at most 97%, at most 96%, at most 95%, at most 90%, at most 80%, at most 75%, at most 70%, or at most 60% of the pore volume. Combinations of these ranges are possible. For example, in some embodiments, 50% to 100%, 75% to 100%, 90% to 100%, or 97% to 100% of the pore volume of the porous support membrane is filled with silica-based ceramic as determined by SEM. For example, SEM images can be acquired for a representative number of cross sections (e.g., at least three cross sections) of different regions of the membrane sample. Image processing software (e.g., ImageJ) can then be used to enhance the contrast between the void regions (which typically appear black in the image) and the filled regions (which typically appear gray in the image), and the area of the void regions can be divided by the total area probed. A sufficiently large sample size (approximately 0.5 cm in the image) can be used to enhance the contrast between the void regions and the filled regions (which typically appear gray in the image) and divide the area of the void regions by the total area probed. 2 ), one can determine the total "gap area" relative to the total area of the cross section. It may be important to take cross sections from multiple regions of the membrane to obtain a somewhat representative sample.
[0135] The cation exchange membrane can have any suitable thickness. For example, referring to FIG. 1A , cation exchange membrane 100 has thickness 154. The thickness of the cation exchange membrane can be selected based on, for example, the intended use of the cation exchange membrane or the geometry of the device (e.g., electrochemical device, filtration device, etc.) into which the cation exchange membrane will be incorporated. In certain embodiments, the cation exchange membrane has a thickness of 1 μm or more, 3 μm or more, 5 μm or more, 10 μm or more, 25 μm or more, 50 μm or more, 100 μm or more, 200 μm or more, 300 μm or more, 400 μm or more, 500 μm or more, 700 μm or more, 1,000 μm or more, 1,200 μm or more, or more. In some embodiments, the cation exchange membrane has a thickness of 1,500 μm or less, 1,000 μm or less, 500 μm or less, 300 μm or less, 100 μm or less, 75 μm or less, 50 μm or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the porous support membrane has a cross-sectional thickness of 1 μm or more and 1,500 μm or less, or 25 μm or more and 300 μm or less. The thickness of the porous support membrane in the cation exchange membrane can be determined by photographing an SEM cross-section of the cation exchange membrane or by using calipers.
[0136] In some embodiments, the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 1:10 or more, 1:5 or more, 1:2 or more, 1:1 or more, 2:1 or more, 5:1 or more, 10:1 or more, 20:1 or more, 35:1 or more, 50:1 or more, 75:1 or more, 100:1 or more, or more. In some embodiments, the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 300:1 or less, 250:1 or less, 220:1 or less, 200:1 or less, 150:1 or less, 120:1 or less, 100:1 or less, 75:1 or less, 50:1 or less, 35:1 or less, 20:1 or less, 10:1 or less, 5:1 or less, 2:1 or less, 1:1 or less, 1:2 or less, 1:5 or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the weight ratio of silica-based ceramic to porous support membrane in the cation exchange membrane is 1:10 or more and 300:1 or less, or 1:2 or more and 220:1 or less.
[0137] In one embodiment, the cation exchange membrane has a density of 0.8 g / cm 3 More than 0.9g / cm 3 More than 1.0g / cm 3 More than 1.2g / cm 3 More than 1.5g / cm 3 More than 1.8g / cm 3 In some embodiments, the cation exchange membrane has a density of 2.2 g / cm or greater. 3 Below, 2.1g / cm 3 Below 2.0g / cm 3 Below, 1.9g / cm 3 Below 1.8g / cm 3 Below, 1.7g / cm 3 Below, 1.6g / cm 3 Below 1.5g / cm 3 Below, 1.2g / cm 3 Combinations of these ranges are possible. For example, in one embodiment, the cation exchange membrane has a density of 0.8 g / cm 3 or more and 2.2 g / cm 3 or less, or 1.0 or more and 2.0 g / cm 3 It has the following density:
[0138] In one embodiment, the cation exchange membrane has a thickness of 320 g / m 2 More than 350g / m 2 More than 400g / m 2 More than 450g / m 2 More than 500g / m 2 More than 550g / m 2 More than 600g / m 2 In some embodiments, the cation exchange membrane has a basis weight of 880 g / m or more. 2 Below 850g / m 2 Below 800g / m 2 Below 750g / m 2 Below 700g / m 2 Below 650g / m 2 Below 600g / m 2 Below, 550g / m 2 Below 500g / m2 Combinations of these ranges are possible. For example, in one embodiment, the cation exchange membrane has a basis weight of 320 g / m or less. 2 or more and 800g / m 2 The basis weight is, for example, 0.1 m of the cation exchange membrane. 2 The weight of each sample can be measured by cutting a portion of the cellulose acetate sheet into 10 samples and drying at 80° C. in a 0% humidity chamber for 24 hours.
[0139] In one embodiment, the cation exchange membrane is 50 m 2 / g or more, 75m 2 / g or more, 100m 2 / g or more, 150m 2 / g or more, 200m 2 / g or more, 300m 2 / g or more, 400m 2 / g or more, 500m 2 / g or more. In some embodiments, the cation exchange membrane has a specific surface area of 1,000 m 2 / g or less, 900m 2 / g or less, 800m 2 / g or less, 750m 2 / g or less, 700m 2 / g or less, 650m 2 / g or less, 600m 2 / g or less, 550m 2 / g or less, 500m 2 / g or less, or even less. Combinations of these ranges are possible. For example, in one embodiment, the cation exchange membrane has a specific surface area of 500 g / m 2 or more and 1,000g / m 2 It has the following specific surface area:
[0140] In certain embodiments, the cation exchange membrane includes a compressible edging material. Such a compressible edging material can, in some cases, act as a gasket that can seal the membrane. Having a compressible edging material that can act as a gasket can be useful in some cases where the cation exchange membrane is incorporated into an electrochemical device (e.g., a battery, a fuel cell, etc.). In some cases, the compressible edging material is mechanically compressible. In certain embodiments, the compressible edging material is resistant to heat and / or harsh chemical environments. FIG. 5 shows an exemplary diagram of a non-limiting embodiment in which the cation exchange membrane 100 includes an optional compressible edging material 180.
[0141] In some embodiments, the cation exchange membrane includes a compressible edging material along at least a portion of the edge of the cation exchange membrane. In some embodiments, the compressible edging material penetrates the porous support membrane by at least 1 μm. For example, referring again to FIG. 5 , in some embodiments, the cation exchange membrane 100 includes a silica-containing ceramic 150, a compressible edging material 180, and a porous support membrane 130 and compressible edging material 180 hidden behind the silica-based ceramic 130, according to some embodiments. In some such cases, the compressible edging material 180 penetrates the porous support membrane 130 by at least 1 μm. In some embodiments, the compressible edging material is located along all edges of the cation exchange membrane to define a gasket (e.g., as shown in FIG. 5 ). In some embodiments, the compressible edging material covers no more than about 50%, no more than 25%, no more than 10%, or no more than 5% of the surface of the cation exchange membrane. In some embodiments, the percentage of the external geometric surface area of the cation exchange membrane that is not covered by the compressible edging material is 50% or more, 90% or more, 95% or more, or more. In some embodiments, the percentage of the external geometric surface area of the cation exchange membrane that is not covered by the compressible edging material is 1 cm or more. 2 More than 10cm 2 More than 100cm 2 Over 1,000cm 2 More than and / or up to 1m 2 , up to 2m 2 , up to 5m2 , up to 10m 2 , or greater. The compressible edging material can have a width. For example, compressible edging material 180 in FIG. 5 has width 182. In some embodiments, the compressible edging material is 1 mm or greater in width. In some embodiments, the compressible edging material is 5 mm or greater in width. In some embodiments, the edging portion is 1 cm or greater in width.
[0142] The compressible edging material can be formed on the cation exchange membrane using any suitable method. For example, in some embodiments, the compressible edging material is formed on the porous support membrane before forming the silica-based ceramic coating on and / or within the porous support membrane. In some cases, the compressible edging material is formed on the porous support membrane after forming the silica-based ceramic coating on and / or within the porous support membrane.
[0143] In some embodiments, forming the compressible border material includes impregnating the edge portion of the porous support membrane with a polymeric material, e.g., impregnating one or more or all of the edges or areas near the edges of the porous support membrane with a compressible polymer sufficiently to form a gasket separating the porous support membrane (and ultimately the cation exchange membrane). In some embodiments, the compressible border material is formed using ultrasonic welding, hot pressing, or UV curing. In some embodiments, impregnating the edge portion of the porous support membrane with the compressible polymer includes one or more techniques selected from melting, solution deposition, or in situ reaction.
[0144] In some embodiments, the compressible edging material comprises a polymeric material. In some embodiments, the polymeric material comprises an elastic polymer, such as a thermoplastic elastomeric polymer. Any suitable elastic polymer may be used to form the compressible edging material of the cation exchange membranes disclosed herein. Exemplary polymeric materials that may comprise the compressible edging material include, but are not limited to, silicone, epoxy, polyurethane, acrylic, silicone rubber, poly(styrene-isoprene-styrene), poly(styrene-isobutylene-styrene), polypropylene, polyethylene, polyvinyl chloride, polystyrene, polyamide, polyimide, polyacetonitrile, polyvinyl acetate, polyethylene glycol, polyetheretherketone, polysulfone, polyacrylamide, polydimethylsiloxane, polyvinylidene fluoride, polyacrylic acid, polyvinyl alcohol, polyphenylene sulfide, polytetrafluoroethylene, cellulose, or a combination or derivative thereof.
[0145] As noted above, in some cases, the inventive features associated with the cation exchange membranes and materials described herein can contribute to a number of potentially advantageous performance characteristics.
[0146] In certain embodiments, a cation exchange membrane or material (e.g., cation exchange membrane 100) has a relatively high cation exchange capacity. A relatively high cation exchange capacity is generally associated with good performance characteristics of a cation exchange material. The cation exchange capacity of a material, such as a membrane, can be measured using the following procedure: The cation exchange membrane is immersed in sulfuric acid (1.0 M) for at least 20 minutes, and the sulfuric acid solution is exchanged twice with fresh sulfuric acid solution during this 20-minute period. After immersion in the sulfuric acid solution, the membrane is immersed in deionized water for at least 15 minutes, and the deionized water is exchanged twice with fresh deionized water during this 15-minute period. After immersion in deionized water, the membrane is immersed in an aqueous solution containing 0.50 M sodium sulfate for at least 20 minutes, and the 0.50 M sodium sulfate solution is exchanged twice with fresh 0.50 M sodium sulfate solution (or 0.50 M sodium sulfate in deionized water) during this 20-minute period. The cation exchange membrane is removed from the sodium sulfate solution and rinsed with deionized water. The sodium sulfate solution as well as all of the washings are then combined and titrated with an aqueous solution containing 0.010 M sodium hydroxide using phenolphthalein as an indicator. The titration is complete when the solution turns purple. An automatic titrator can be used to perform the titration. A series of "blank" sodium sulfate solutions that are not exposed to the cation exchange membrane are used and titrated to determine the baseline pH background for the aqueous solution. The membrane is rinsed with deionized water and dried in an oven overnight. The weight of the membrane is recorded after the drying process. The cation exchange capacity (CEC) is calculated as:
number
[0147] In certain embodiments, it has been observed that the cation exchange membranes described herein having a relatively high loading of certain functional groups (e.g., sulfonate and / or sulfonic acid groups, carboxylate and / or carboxylic acid groups, etc.) contribute, at least in part, to a relatively high cation exchange capacity compared to certain existing cation exchange membranes. Furthermore, it has been observed that the cation exchange capacity of the cation exchange membranes and materials described herein can also depend, at least in part, on the composition of the silicon-containing precursor sol from which the silica-based ceramic of the cation exchange membrane is derived (e.g., water-to-silicon ratio, acid strength, ratio of silicon-containing precursors such as TEOS and MPTES).
[0148] In some embodiments, the cation exchange membrane or material has a cation exchange capacity of 0.01 milliequivalents per gram (meq / g) or greater. In some embodiments, the cation exchange membrane or material has a cation exchange capacity of 0.1 meq / g or greater, 0.2 meq / g or greater, 0.3 meq / g or greater, 0.5 meq / g or greater, 0.7 meq / g or greater, 1 meq / g or greater, 1.2 meq / g or greater, 1.5 meq / g or greater, 1.7 meq / g or greater, or greater. In some embodiments, the cation exchange membrane or material has a cation exchange capacity of 2.5 meq / g or less, 2.2 meq / g or less, 2 meq / g, 1.8 meq / g or less, 1.5 meq / g or less, 1.2 meq / g or less, 1 meq / g or less, 0.7 meq / g or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the cation exchange membrane or material has a cation exchange capacity of 0.01 meq / g or more and 2.5 meq / g or less, 0.1 meq / g or more and 2.5 meq / g or less, 0.5 meq / g or more and 2.5 meq / g or less, or 1 meq / g or more and 2.5 meq / g or less. In some embodiments, the cation exchange membrane or material has a relatively high cation exchange capacity while having a relatively high amount of Si present in the silica-based ceramic of the cation exchange membrane. For example, in certain embodiments, the cation exchange membrane has a cation exchange capacity of 0.01 meq / g or more, 0.1 meq / g or more, 0.2 meq / g or more, 0.3 meq / g or more, 0.5 meq / g or more, 0.7 meq / g or more, 1 meq / g or more, and / or up to 1.2 meq / g, up to 1.5 meq / g, up to 1.8 meq / g, or up to 2 meq / g, while having Si present in the silica-based ceramic in an amount of at least 6 wt%, at least 10 wt%, at least 12 wt%, at least 15 wt%, at least 17 wt%, at least 20 wt%, and / or up to 24 wt%, up to 26 wt%, up to 28 wt%, up to 30 wt%, up to 40 wt%, up to 47 wt%, up to 60 wt%, or more.
[0149] In certain embodiments, the cation exchange membrane or material undergoes a relatively small amount of dimensional swelling (in the form of linear expansion) according to the dimensional swelling test described herein. As discussed above, having a relatively small amount of dimensional swelling can be advantageous for a cation exchange membrane or material in some cases. It has been observed that the cation exchange membranes and materials described herein (some of which include silica-based ceramics) can undergo relatively less dimensional swelling (e.g., linear expansion) than certain existing cation exchange membranes or materials, such as those primarily containing polymeric components such as hydrocarbon or fluorocarbon polymers. Without wishing to be bound by any particular theory, it is believed that linear expansion can occur when the pore size or structure of the membrane changes (e.g., swelling, deswelling) based on the environment of the cation exchange membrane (e.g., temperature, humidity, salinity). When the cation exchange membrane is incorporated into a device, such as an electrochemical device (e.g., an electrochemical stack), where the edges of the membrane are fixed in place, swelling / deswelling can result in mechanical stresses that can cause membrane failure. Having a relatively low linear expansion can also facilitate positioning the membrane (e.g., by creating alignment holes in the membrane) when positioning the membrane in a device (e.g., a stack) during assembly. However, in some embodiments, it is beneficial to have a certain amount of linear expansion (e.g., due to swelling) to allow for percolation of hydrated regions and beneficial performance characteristics (e.g., cation exchange capacity, sodium ion conductivity). The linear expansion of a cation exchange membrane can be measured using the following dimensional swelling test. The dimensional swelling test is performed using a modified version of ASTM D756 and ASTM D570. Membrane samples are cut into 50 mm x 50 mm squares and conditioned in a room maintained at 23°C and 50% relative humidity for 48 hours. After conditioning, the length and width of the membrane sample are measured. The samples are then immersed in either 23°C water or 100°C water for 1 hour. After immersion, the membrane is removed from the water and wiped with a dry cloth. Immediately after the membrane is wiped with a cloth, the length of each side is recorded.The linear expansion of a given dimension (e.g., length or width) is determined by dividing the measured length of that dimension by the original 50 mm length after wiping the membrane with a dry cloth, and is reported as a percentage change from the original 50 mm length. For example, a membrane 55 mm long measured after immersion and wiping with a cloth has a linear expansion of 10%, while a membrane 60 mm long measured after immersion and wiping with a cloth has a linear expansion of 20%. The linear expansion of a cation exchange membrane is determined by performing the above dimensional swelling test on three identical samples and determining the number average of the three tests.
[0150] In some embodiments, the cation exchange membrane has a relatively low linear expansion, as described above. In some embodiments, the cation exchange membrane has a linear expansion along at least one dimension of 10% or less, 8% or less, 6% or less, 5% or less, 2% or less, 1% or less, 0.5% or less, or less. In some embodiments, the cation exchange membrane has a linear expansion along at least one dimension of about 0%. In some embodiments, the cation exchange membrane has a linear expansion along at least one dimension of 0% or more, 0.01% or more, or 0.1% or more. Combinations of these ranges are possible. For example, in some embodiments, the cation exchange membrane has a linear expansion along at least one dimension of 0% or more and 5% or less, 0% or more and 2% or less, 0% or more and 1% or less, or 0% or more and 0.5% or less.
[0151] In some embodiments, the cation exchange membrane has a relatively low linear expansion while having a relatively high cation exchange capacity. For example, in some embodiments, the cation exchange membrane has a linear expansion along at least one dimension of 20% or less, 15% or less, 10% or less, 8% or less, 6% or less, 5% or less, 2% or less, 1% or less, 0.5% or less, or less, while having a cation exchange capacity of 0.01 meq / g or more, 0.01 meq / g or more, 0.2 meq / g or more, 0.3 meq / g or more, 0.5 meq / g or more, 0.7 meq / g or more, 1 meq / g or more, and / or up to 1.2 meq / g, up to 1.5 meq / g, up to 1.8 meq / g, up to 2 meq / g, or up to 2.5 meq / g or more. Obtaining such a high cation exchange capacity while experiencing such a low amount of dimensional swelling (e.g., linear expansion) upon exposure to water may not be possible with certain existing cation exchange membranes or materials.
[0152] In certain embodiments, a cation exchange membrane or material has a relatively high cation permselectivity. Cation permselectivity generally refers to a quantitative determination of the degree to which a membrane or material is more permeable to cations than to anions. Selectivity for cations relative to anions can be an important property of a cation exchange membrane in certain applications. Herein, cation permselectivity is measured by comparing the permeability of a membrane or material to sodium cations with chloride anions. Permselectivity, in this case, is measured using the open circuit voltage method. The open circuit voltage method is well known in the literature and is described, for example, in Galama, AH; Hoog, NA; Yntema, DR, Method for determining ion exchange membrane resistance for electrodialysis systems. Desalination 2016, 380, 1-11, and Kingsbury, RS; Flotron, S.; Zhu, S.; Call, DF; Coronell, O., Junction Potentials Bias Measurements of Ion Exchange Membrane Permselectivity. Environmental Science & Technology 2018, 52(8), 4929-4936, both of which are incorporated herein by reference in their entirety. In the performance of the open circuit voltage method test, the membrane is equilibrated in 0.5M aqueous NaCl solution before testing. The membrane is then installed in a two-compartment cell. One compartment of the cell is filled with 100 mL of a 0.5 M NaCl solution, while the other compartment is filled with 100 mL of a 0.1 M NaCl solution. Each compartment of the two-compartment cell is stirred, and fresh solution is injected through each compartment at a rate of approximately 5 mL / min. AgCl wire electrodes and a multimeter (e.g., Fluke 116 True RMS) are used to make voltage measurements. The AgCl wire electrodes are immersed in each compartment, and the multimeter is set to a dc voltage setting. A multimeter probe is connected to each AgCl wire, and a voltage reading is taken from the multimeter.The wire is allowed to equilibrate for 30 minutes before the final membrane potential is recorded. The cation permselectivity is then calculated using the Nernst equation. The offset potential of the AgCl wire is measured in 0.5 M NaCl and 0.1 M NaCl solutions and averaged to represent the reference potential in the final calculation.
[0153] In some embodiments, the cation exchange membrane or material has a cation permselectivity of 65% or greater. In some embodiments, the cation exchange membrane has a cation permselectivity of 70% or greater, 75% or greater, 80% or greater, 85% or greater, 90% or greater, 95% or greater, 97% or greater, 98% or greater, or greater. In some embodiments, the cation exchange membrane has a cation permselectivity of 100% or less, 99% or less, 98% or less, 97% or less, 95% or less, 90% or less, 85% or less, 80% or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the cation exchange membrane has a cation permselectivity of 65% or greater and 100% or less, 85% or greater and 100% or less, 90% or greater and 100% or less, 95% or greater and 100% or less, or 98% or greater and 100% or less.
[0154] In one embodiment, the cation exchange membrane has a relatively high sodium ion (Na + ) Conductivity (C Na). Sodium ion conductivity can be a useful metric for evaluating the conductivity of a cation exchange membrane with respect to cations, such as sodium ions. Having a relatively high sodium ion conductivity can be important in certain applications, such as certain electrochemical applications (e.g., electrodialysis applications). For example, a relatively high sodium ion conductivity can promote energy efficiency in electrochemical systems in certain embodiments. It has been observed that the cation exchange membranes described herein can have a relatively high sodium ion conductivity, at least in part, due to the inventive properties of the cation exchange membrane, e.g., a relatively high loading of functional groups (e.g., sulfonate and / or sulfonic acid groups, carboxylate and / or carboxylic acid groups, etc.). Sodium ion conductivity can also be affected by the pore structure of the silica-based ceramic (e.g., pore size, interpore distance, pore ordering, e.g., fractal aggregates versus others). It has been observed herein that sodium ion conductivity does not necessarily correlate with other properties of the cation exchange membrane or material (e.g., cation exchange capacity), and that the structural and compositional factors that result in a relatively high sodium conductivity can differ from those that affect other properties. For example, if a cation exchange membrane contains functional groups (e.g., sulfonic acid and / or sulfonate groups) localized near the outer surface of the cation exchange membrane, the membrane may have a relatively high cation exchange capacity but low sodium ion conductivity because the functional groups are not distributed throughout the thickness of the membrane. In contrast, a cation exchange membrane with an effective distribution (e.g., a substantially uniform distribution) of functional groups may have both a relatively high cation exchange capacity and a relatively high sodium ion conductivity. Factors that affect such distribution may include the selection of precursor materials (e.g., silicon-containing precursor materials), the ratio of precursor materials (e.g., in a silicon-containing precursor sol), and the selection of a porous support membrane (if present).
[0155] As another example, certain existing cation exchange compositions having a higher amount of functional groups (e.g., sulfonic acid and / or sulfonate groups) generally tend to produce a larger linear expansion because the functional groups tend to adsorb water, resulting in swelling. It has been realized herein that it is possible to achieve a cation exchange membrane with a relatively high sodium ion conductivity and a relatively low linear expansion. One way to achieve such a result is by engineering the pore structure of the silica-based ceramic so that the membrane swells upon hydration sufficiently to achieve percolated pores, but not so much that the pores become too large or cause significant linear expansion while lacking permselectivity. In certain embodiments, the percolated pores resulting from some swelling of the membrane can promote both a relatively high sodium ion conductivity and a relatively high cation exchange capacity.
[0156] The sodium ion conductivity of a cation exchange membrane can be measured using a four-electrode electrical impedance spectroscopy (EIS) procedure. The four-electrode electrical impedance spectroscopy procedure is described in detail in Galama, AH; Hoog, NA; Yntema, DR, Method for determining ion exchange membrane resistance for electrodialysis systems. Desalination 2016, 380, 1-11, which is incorporated herein by reference in its entirety. The membrane is equilibrated in a 0.5 M NaCl solution before testing. The membrane is then incorporated into a two-compartment cell. Before incorporating the membrane into the two-compartment cell, the two-compartment cell is first assembled and filled with a 0.5 M NaCl solution to measure the background resistance of the cell. The cell is then emptied, reassembled with the membrane, and filled with a 0.5 M NaCl solution, at which point another resistance measurement is taken. Constant current EIS measurements are used. A constant current of 5 mA is applied to the working platinum electrode and swept from 10,000 Hz to 10 Hz, with 15 points measured every decade. An Ag / AgCl reference electrode is used to measure the resulting voltage across the membrane. The resistances of the blank cell and the cell incorporating the membrane are taken from the x-axis intercept of the resulting Nyquist plot, which represents the real component of the impedance; the difference corresponds to the resistance of the membrane. The conductivity is determined by taking the reciprocal of the resistance and normalized to the membrane surface area and thickness to determine sodium ion conductivity.
[0157] In some embodiments, the cation exchange membrane or material has a sodium ion conductivity of 0.00001 S / cm or greater. In some embodiments, the cation exchange membrane or material has a sodium ion conductivity of 0.00005 S / cm or greater, 0.0001 S / cm or greater, 0.0005 S / cm or greater, 0.001 S / cm or greater, 0.005 S / cm or greater, 0.01 S / cm or greater, or greater. In some embodiments, the cation exchange membrane or material has a sodium ion conductivity of 0.3 S / cm or less, 0.2 S / cm or less, 0.1 S / cm or less, 0.05 S / cm or less, 0.02 S / cm or less, 0.01 S / cm or less, 0.005 S / cm or less, 0.001 S / cm or less, 0.0005 S / cm or less, or less. Combinations of these ranges are possible. For example, in certain embodiments, the cation exchange membrane or material has a sodium ion conductivity of ≧0.00001 S / cm and ≦0.3 S / cm, ≧0.001 S / cm and ≦0.3 S / cm, or ≧0.01 S / cm and ≦0.3 S / cm.
[0158] In certain embodiments, the cation exchange membrane or material has a relatively high sodium ion conductivity and a relatively high cation exchange capacity. For example, in certain embodiments, the cation exchange membrane has a sodium ion conductivity of 0.00001 S / cm or more, 0.00005 S / cm or more, 0.0001 S / cm or more, 0.0005 S / cm or more, 0.001 S / cm or more, 0.005 S / cm or more, 0.01 S / cm or more, and / or at most 0.02 S / cm, at most 0.05 S / cm, at most 0.1 S / cm, at most 0.2 S / cm, or at most 0.01 S / cm. and / or a cation exchange capacity of at least 0.01 meq / g, at least 0.1 meq / g, at least 0.2 meq / g, at least 0.3 meq / g, at least 0.5 meq / g, at least 0.7 meq / g, at least 1 meq / g, and / or at most 1.2 meq / g, at most 1.5 meq / g, at most 1.8 meq / g, or at most 2 meq / g. Combinations of the above-referenced ranges of sodium ion conductivity and / or cation exchange capacity as well as other ranges described elsewhere herein are also possible.
[0159] In some embodiments, the cation exchange membrane or material has a relatively high sodium ion conductivity and a relatively low linear expansion. For example, in some embodiments, the cation exchange membrane has a sodium ion conductivity of 0.00001 S / cm or more, 0.00005 S / cm or more, 0.0001 S / cm or more, 0.0005 S / cm or more, 0.001 S / cm or more, 0.005 S / cm or more, 0.01 S / cm or more, and / or up to 0.02 S / cm, up to 0.05 S / cm, up to 0.1 S / cm, up to 0.2 S / cm, or up to 0.3 S / cm, while having a linear expansion of 10% or less, 8% or less, 6% or less, 5% or less, 2% or less, 1% or less, 0.5% or less, or less. Combinations of the above-referenced ranges of sodium ion conductivity and / or linear expansion as described elsewhere herein are also possible.
[0160] In some embodiments, the cation exchange membrane has a relatively low permeability to water. The permeability of a membrane generally refers to the flux of water across the membrane due to osmotic pressure. Having a relatively low permeability to water can be beneficial in certain applications, such as when the cation exchange membrane is used for electrochemical applications, such as electrodialysis. Details of an exemplary test for determining the permeability of a membrane are described in Kingsbury, Ryan; Zhu, Shan; Flotron, Sophie; Coronell, Orlando (2018): Microstructure determines water and salt permeation in commercial ion exchange membranes. ChemRxiv. Preprint and in Kingsbury, RS, Zhu, S., Flotron, S., & Coronell, O. (2018). Microstructure determines water and salt permeation in commercial ion-exchange membranes. ACS Applied Materials & Interfaces, 10(46), 39745-39756, each of which is incorporated herein by reference in its entirety. The osmotic water permeability of the membranes described herein can be determined using the following procedure. The membrane is assembled into a two-compartment cell, and the volumetric flow rate of water across the membrane is measured to determine the water flux across the membrane due to osmotic pressure. One compartment of the two-compartment cell is filled with a 2-4 M NaCl aqueous solution prior to testing. To begin the test, the membrane is assembled into the two-compartment cell, and one compartment of the two-compartment cell is filled with a 2-4 M NaCl aqueous solution, and the other compartment of the two-compartment cell is filled with deionized water. Before recording the volume change, the membranes are left exposed to a concentration gradient between the 4 M NaCl solution and the deionized water solution in their respective compartments for at least 1 hour to establish an apparent steady state for the water transport membrane. The cell is then emptied, and fresh 2-4 M NaCl and deionized water are used to completely refill the cell.The cell is sealed with a lid that fits a volumetric syringe with 0.01 mL increments, and the levels of the solutions in the cell are adjusted to be approximately equal at the start of the test. The two compartments of the two-compartment cell are agitated by stirring with a stir bar for the duration of the test. Once the levels are equal, a stopwatch is started and the volume change over time is recorded until a volume change of at least 0.05 mL is observed in each compartment.
[0161] Water permeability (A[Lm -2 .h -1 .bar -1 ]) is the hydraulic flux of water across the membrane (J W [Lm -2 .h -1 ]):
number
number
number
[0162] In one embodiment, the cation exchange membrane has a viscosity of 100 mL / (hr·bar·m 2) or less, 50mL / (hr·bar·m 2 In one embodiment, the cation exchange membrane has a permeability of 45 mL / (hr·bar·m 2 ) or less, 40mL / (hr·bar·m 2 ) or less, 35mL / (hr·bar·m 2 ) or less, 30mL / (hr·bar·m 2 ) or less, 20mL / (hr·bar·m 2 ) or less, 15mL / (hr·bar·m 2 ) or less, 10mL / (hr·bar·m 2 ) or less, 5 or less, 4 or less, 3 or less, 2.5 or less, 2mL / (hr bar m 2 ) or less. In some embodiments, the cation exchange membrane has a permeability of 0 mL / (hr·bar·m 2 ) or more, 0.1mL / (hr·bar·m 2 ) or more, 0.2mL / (hr·bar·m 2 ) or more, 0.3mL / (hr·bar·m 2 ) or more, 0.5mL / (hr·bar·m 2 ) or more, 0.8mL / (hr·bar·m 2 ) or more, 1mL / (hr·bar·m 2 ) or more, 1.2mL / (hr·bar·m 2 ) or more, 1.5mL / (hr·bar·m 2 ) or more, 2mL / (hr·bar·m 2 ) or more, 5mL / (hr·bar·m 2 ) or greater. Combinations of these ranges are possible. For example, in some embodiments, the cation exchange membrane has a permeability of 0 mL / (hr·bar·m 2 ) or more and 100mL / (hr·bar·m 2 ) or less, 0mL / (hr·bar·m 2 ) or more and 50mL / (hr·bar·m 2 ) or less, 0mL / (hr·bar·m 2 ) or more and 10mL / (hr·bar·m 2 ) or less, 0mL / (hr·bar·m 2) or more and 5mL / (hr·bar·m 2 ) or less, or 0 mL / (hr·bar·m 2 ) or more and 2mL / (hr·bar·m 2 ) has the following permeability to water.
[0163] In some embodiments, the cation exchange membrane has a relatively large water absorption rate. As used herein, the water absorption rate of a membrane refers to the amount of water that the membrane can absorb when immersed in water at 100°C. The water absorption rate of a membrane can be measured using the following procedure: The membrane is cut into a 50 mm x 50 mm square and dried in an oven set at a temperature above 105°C for 24 hours. The weight of the membrane is measured after drying. The water absorption rate is then measured by immersing the membrane in boiling water at 100°C for 1 hour. The membrane is then removed from the boiling water bath, and the surface water is wiped off with a dry cloth. The membrane is then weighed immediately after wiping the membrane with the cloth. This procedure is performed separately on three identical membranes, and the number average of the change in the weight of the membrane after immersion in boiling water is used to determine the water absorption rate of the membrane. In certain embodiments, it has been unexpectedly observed that cation exchange membranes described herein (e.g., cation exchange membranes comprising silica-based ceramics containing covalently bonded functional groups, such as sulfonate and / or sulfonic acid groups) are capable of relatively high water absorption while experiencing a relatively small amount of dimensional swelling (e.g., linear expansion) compared to certain existing cation exchange membranes. Water absorption can be expressed as a percentage change in weight relative to the weight of the dried membrane.
[0164] In some embodiments, the cation exchange membrane has a water absorption of 1% or more, 3% or more, 5% or more, 8% or more, 10% or more, 15% or more, 20% or more, 25% or more, 30% or more, 35% or more, 40% or more, 45% or more, 50% or more, 60% or more, 70% or more, or more. In some embodiments, the cation exchange membrane has a water absorption of 100% or less, 90% or less, 85% or less, 80% or less, 75% or less, 70% or less, 65% or less, 60% or less, 50% or less, 40% or less, 35% or less, 25% or less, 15% or less, 10% or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the cation exchange membrane has a water absorption of 1% or more and 100% or less, 5% or more and 50% or less, or 10% or more and 25% or less.
[0165] In some embodiments, the cation exchange membrane has a relatively high water absorption and a relatively low linear expansion. In some embodiments, the cation exchange membrane has a water absorption of 1% or more, 3% or more, 5% or more, 8% or more, 10% or more, 15% or more, 20% or more, 25% or more, 30% or more, 35% or more, 40% or more, 45% or more, 50% or more, 60% or more, or 70% or more, while having a linear expansion of 10% or less, 8% or less, 6% or less, 5% or less, 2% or less, 1% or less, 0.5% or less, or less. Combinations of the above-referenced ranges and other ranges of water absorption and / or linear expansion are possible, as described elsewhere in this specification.
[0166] In certain embodiments, the cation exchange membrane has a relatively high mechanical burst pressure. The mechanical burst pressure of a membrane generally refers to the amount of force that can be applied to the membrane before it experiences mechanical failure and rupture. Having a relatively high mechanical burst pressure can be advantageous for a cation exchange membrane in some cases. For example, in certain applications where a solution is flowed through the cation exchange membrane (e.g., redox flow batteries) or where hydrostatic or water pressure is applied to the cation exchange membrane (e.g., reverse osmosis or nanofiltration), having sufficient mechanical burst pressure can be important to avoid membrane failure during operation. In certain embodiments, the cation exchange membranes described herein have been observed to have good mechanical properties, such as high mechanical burst pressure, while also having good performance characteristics (e.g., cation exchange capacity, cation permselectivity). In some cases, such a combination of good mechanical properties and good performance characteristics can be achieved by combining a silica-based ceramic (which can provide good cation exchange performance characteristics) with a porous support membrane (which can provide good mechanical performance).
[0167] The mechanical burst pressure of a cation exchange membrane can be determined using the following procedure. The procedure can be used to determine the burst pressure in units of Newtons (N). The procedure is based on a modified version of ASTM D6797. A circular membrane with a diameter of 70 mm is hydrated with water before testing. The membrane is removed from the water, and excess water on the membrane surface is wiped off with a dry cloth. After wiping the membrane with a dry cloth, the membrane is clamped at its center to a fixture equipped with a clamping ring with an inner diameter of 40 mm. A polished steel ball with a diameter of 25 mm is used to apply force to the membrane. The polished steel ball is attached to the moving part of an extension-type constant-speed tensile tester. The tensile tester is started by setting the travel speed to 305 mm / min, and the ball travel is maintained until the membrane ruptures.
[0168] As described above, in certain embodiments, the cation exchange membrane has a relatively high mechanical burst pressure, as measured using the procedures described above. In certain embodiments, the cation exchange membrane has a mechanical burst pressure of at least 1.5 N, at least 1.7 N, at least 2.0 N, at least 5 N, at least 10 N, at least 25 N, or more. In certain embodiments, the cation exchange membrane has a mechanical burst pressure of 1,000 N or less, 900 N or less, 800 N or less, 700 N or less, 600 N or less, 500 N or less, 400 N or less, 250 N or less, 100 N or less, 75 N or less, 50 N or less, 25 N or less, or less. Combinations of these ranges are possible. For example, in certain embodiments, the cation exchange membrane has a mechanical burst pressure of at least 1.5 N and less than 1,000 N, or 1.7 N or more and less than 400 N.
[0169] The mechanical burst pressure of a cation exchange membrane can also be determined in units of pressure. Such units provide a measure independent of the dimensional characteristics (e.g., membrane area) of the cation exchange membrane. The mechanical burst pressure of a cation exchange membrane can be determined in units of pressure using the following procedure. The procedure is based on a modified version of ASTM D3786 using a Cyeeyo 302AQT burst tester. A circular membrane with a diameter of 40 mm is hydrated with water before testing. The membrane is removed from the water, and excess water on the membrane surface is wiped off with a dry cloth. After wiping the membrane with a dry cloth, the membrane is clamped to a fixture with a clamping ring having an inner diameter of 33 mm at the center of the membrane. During the test, the diaphragm of the burst tester below the sample is expanded upward to the point where the specimen bursts. The burst point, indicated as the peak pressure value, can be read from the burst test display. The burst point corresponds to the mechanical burst pressure.
[0170] As described above, in some embodiments, the cation exchange membrane has a relatively high mechanical burst pressure, measured in units of pressure using the procedures described above. In some embodiments, the cation exchange membrane has a mechanical burst pressure of at least 2.0 pounds per square inch (PSI), at least 2.1 PSI, at least 2.5 PSI, at least 3.0 PSI, at least 3.5 PSI, at least 4.0 PSI, at least 5.0 PSI, at least 6.0 PSI, at least 8.0 PSI, at least 10.0 PSI, at least 12.0 PSI, at least 15.0 PSI, at least 20.0 PSI, at least 25.0 PSI, at least 30.0 PSI, at least 40.0 PSI, at least 50.0 PSI, at least 60.0 PSI, at least 75.0 PSI, at least 100.0 PSI, or more. In some embodiments, the cation exchange membrane has a mechanical burst pressure of 1,000 PSI or less, 900 PSI or less, 800 PSI or less, 700 PSI or less, 600 PSI or less, 500 PSI or less, 400 PSI or less, 250 PSI or less, 150 PSI or less, 100 PSI or less, 90 PSI or less, 80 PSI or less, 75 PSI or less, 70 PSI or less, 65 PSI or less, 60 PSI or less, 55 PSI or less, 50 PSI or less, 40 PSI or less, 30 PSI or less, 25 PSI or less, 10 PSI or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the cation exchange membrane has a mechanical burst pressure of at least 2.0 PSI and less than 1,000 PSI, at least 5.0 PSI and less than 400 PSI, or at least 20 PSI and less than 60 PSI.
[0171] In some embodiments, the cation exchange membrane has a relatively high proton conductivity. Having a relatively high proton conductivity can be important in certain applications, such as electrochemical applications. The relatively high proton conductivity of the cation exchange membranes described herein can be attributed, at least in part, to the structure (e.g., nanoporosity) and / or composition of the cation exchange membrane (e.g., a silica-based ceramic containing a relatively high loading of functional groups, such as sulfonate and / or sulfonic acid groups, covalently bonded to the silica-based ceramic). The proton conductivity of the membrane can be determined using the following procedure using corrected galvanodynamic measurements and a resistor model, as described, for example, in Slade, S.; Campbell, SA; Ralph, TR; Walsh, FC, Ionic Conductivity of an Extruded Nafion 1100 EW Series of Membranes. Journal of the Electrochemical Society 2002, 149(12), A1556-A1564, which is incorporated herein by reference in its entirety. The procedure involves using 4M aqueous H2SO4 as the electrolyte for testing. The membrane is immersed in 4M aqueous H2SO4 for 2 hours prior to testing to equilibrate the membrane with the solution. The membrane to be tested is installed in an H-cell equipped with a Luggin capillary tube to be used for testing. Each half-cell compartment of the H-cell contains 20 mL of 4M aqueous H2SO4. A glassy carbon and platinum electrode is used as the reference electrode, and two platinum mesh electrodes are used as working electrodes. A current range of 0.1 to 0.5 A with a slope of 5 mA / s is performed for each cycle, and five cycles are performed on the membrane. The DC voltage is measured in response to the applied current, and the slope of the current-voltage curve is used to determine the membrane resistance. This procedure is performed on four different membranes in replicates to determine the error bars for the resistance measurements. The membrane conductivity is determined by taking the inverse of the measured resistance, and the resulting conductivity is normalized to the membrane active area and thickness to obtain the proton conductivity. The membrane active area is the area of the membrane available for ion transport.In other words, the membrane active area is the total membrane surface area minus the area consumed by non-active materials (eg, edging or gasket material in the cell).
[0172] In certain embodiments, the cation exchange membrane has a proton conductivity of 0.001 S / cm or more, 0.005 S / cm or more, 0.01 S / cm or more, 0.05 S / cm or more, 0.1 S / cm or more, or more, when measured in 4 M H2SO4. In certain embodiments, the cation exchange membrane has a proton conductivity of 10 S / cm or less, 5 S / cm or less, 1 S / cm or less, 0.5 S / cm or less, 0.1 S / cm or less, 0.05 S / cm or less, 0.01 S / cm or less, or less, when measured in 4 M H2SO4. Combinations of these ranges are possible. For example, in certain embodiments, the cation exchange membrane has a proton conductivity of 0.001 S / cm or more and 10 S / cm or less, 0.01 S / cm or more and 10 S / cm or less, or 0.001 S / cm or more and 10 S / cm or less, when measured in 4 M H2SO4.
[0173] In some embodiments, the cation exchange membrane has a relatively low permeability to polyvalent cations compared to monovalent cations. For example, in some embodiments, the cation exchange membrane has a relatively low permeability to vanadium(IV) ions. A relatively low permeability to vanadium(IV) ions can be useful in certain applications, such as certain redox flow battery applications. The vanadium(IV) ion permeability of a membrane can be determined using the following procedure, which involves ultraviolet-visible absorption spectroscopy of vanadium ion diffusion across the cation exchange membrane over time. The membrane is incorporated into an H-cell with two 10 mL compartments. One half-cell compartment contains an aqueous solution containing 1 M MgSO4 and 2.5 M H2SO4, and the other half-cell compartment contains an aqueous solution containing 1 M VO2SO4 and 2.5 M H2SO4. Permeability values can then be extracted using an exponential model such as that described in Izquierdo-Gil, MA; Barragan, VM; Villaluenga, JPG; Godino, MP, Water uptake and salt transport through Nafion cation-exchange membranes with different thicknesses. Chemical Engineering Science 2012, 72, 1-9, which is incorporated herein by reference in its entirety. The exponential model tracks the concentration of VOSO4 in each chamber as a function of timing and is given by the following equation:
number
[0174] In some embodiments, the cation exchange membrane has a permeability of 10 to 100% as measured using the Vanadium (IV) Ion Permeability Test described above. -9 cm 2 / min or more, 10 -8 cm 2 / min or more, 10 -7 cm 2 / min or more, or more vanadium (IV) ion permeability (P ms In some embodiments, the cation exchange membrane has a permeability of 10 to 100% as measured using the Vanadium (IV) Ion Permeability Test described above. -4 cm 2 / min or less, 10 -5 cm 2 / min or less, 10 -6 cm 2 / min or less, or even less. Combinations of these ranges are possible. For example, in some embodiments, the cation exchange membrane has a vanadium(IV) ion permeability of 10 / min or less, as measured using the Vanadium(IV) Ion Permeability Test described above. -9 cm 2 / min or more and 10 -4 cm 2 / min or less, 10 -9 cm 2 / min or more and 10 -5 cm 2 / min or less, or 10 -9 cm 2 / min or more and 10 -6 cm 2 / min or less vanadium (IV) ion permeability.
[0175] In certain embodiments, methods of making cation exchange membranes in the materials described herein are provided. One exemplary method of making cation exchange membranes includes a sol-gel process.
[0176] FIG. 6 is a flow chart illustrating one non-limiting method for making a cation exchange membrane. In some embodiments, a porous support membrane as described herein is provided. For example, FIG. 6 shows porous support membrane 130. In some cases, an optional step of applying a compressible border material to the porous support membrane is performed. For example, as shown in step 1 in FIG. 6, compressible border material 180 is formed on porous support membrane 130.
[0177] In a non-limiting example, any compressible border material may be formed, at least in part, by adding a polymer to the top surface of a porous support membrane such that the polymer penetrates the entire thickness of the porous support membrane and forms a border having a width of at least 1 μm around the edge region of the porous support membrane. Such a compressible border material may, in some cases, act as a gasket that can help seal the cation exchange membrane (e.g., in a cell). The method of forming the compressible border material depends on the composition (e.g., polymeric material) used to form the compressible border material. In some cases, the compressible border material may be applied as a film and / or sheet using heat, solvents, or radiation. In some embodiments, any compressible border material may be applied to the porous support membrane from the liquid phase as a solution or dispersion using any of a variety of known coating techniques (e.g., dipping, spraying, dropping, blade, screen, etc.). In some embodiments, a method of forming a compressible border material may include depositing a precursor material followed by an in situ reaction. For example, in some cases, an in situ reaction occurs in which deposited monomer units react to form a polymer within the porous support membrane. In some embodiments, the percentage of the external geometric surface area of the porous support membrane that is not covered by the compressible edging material is 30% or more, 40% or more, 50% or more, 70% or more, 80% or more, 90% or more, 95% or more, 99% or more, or more. In some embodiments, the area of the external geometric surface area of the porous support membrane that is not covered by the compressible edging material is 1 cm 2 More than 10cm 2 More than 100cm 2 Over 1,000cm 2More than and / or up to 1m 2 , up to 2m 2 , up to 5m 2 10m 2 , or more.
[0178] In some embodiments, a silicon-containing precursor sol is applied to a porous support membrane during fabrication of a cation exchange membrane. For example, referring again to FIG. 6 , in step 2, the silicon-containing precursor sol is applied to the porous support membrane 130 (optionally including a compressible material 180) via solution 270. Exemplary compositions of silicon-containing precursor sols are described herein. In some embodiments, the silicon-containing precursor sol is applied to the porous support membrane such that the silicon-containing precursor sol penetrates the porous support membrane and coats at least a portion of the porous support membrane. In some embodiments, the sol penetrates into the interior of the porous support membrane, and in some cases, fills some or all of the porous volume of the porous support membrane. According to some embodiments, the silicon-containing precursor sol (e.g., solution 270) can be applied to the porous support membrane using one or more standard coating processes, such as dip coating, spray coating, roll coating, blade coating, screen printing, or blowing with air (e.g., with an air knife). Excess silicon-containing precursor sol can be removed by any suitable method, such as scraping. The porous support membrane can be in any of a variety of orientations (e.g., vertical, horizontal) during the process of applying the silicon-containing precursor sol to the porous support membrane. In certain embodiments, the silicon-containing precursor sol can be applied to the porous support membrane when it is flat and free-standing. In certain embodiments, the silicon-containing precursor sol can be applied to the porous support membrane when it is flat and in contact with another surface. In certain embodiments, the silicon-containing precursor sol can be applied to the porous support membrane when it is curved and free-standing. In certain embodiments, the silicon-containing precursor sol can be applied to the porous support membrane when it is curved and in contact with another surface. As an example, in some cases, the porous support membrane can be arranged to assume a cylindrical or conical shape during application of the silicon-containing precursor sol (e.g., solution 270 in FIG. 6 ). In certain embodiments, the silicon-containing precursor sol can be applied to the porous support membrane when the membrane is held taut in at least one dimension.
[0179] In some embodiments, the silicon-containing precursor sol is a single-phase sol before and / or during the step of applying the silicon-containing precursor sol to the porous support membrane. For example, in embodiments in which the silicon-containing precursor sol contains two or more different types of silicon-based precursors (e.g., both silanes containing functional groups such as sulfonate or sulfonic acid groups and silanes not containing such functional groups), the silicon-containing precursor sol is a homogeneous mixture containing two or more different types of silicon-based precursors. Applying a single-phase sol can, in some cases, enable the formation of a silica-based ceramic coating on the porous support membrane with certain desirable properties, such as a relatively high loading and / or substantially uniform distribution of functional groups (e.g., sulfonate and / or sulfonic acid groups) in the coating.
[0180] In some embodiments, the silicon-containing precursor sol (e.g., solution 270 in FIG. 6 ) is aged prior to applying the silicon-containing precursor sol to a porous support membrane. In some embodiments, aging can occur for at least 0 minutes, at least 30 minutes, at least 2 hours, or more, at which point the precursor materials are mixed to form the sol. In some embodiments, aging can occur for up to 1 week, up to 48 hours, up to 24 hours, or less. Combinations of these ranges are possible. For example, in some embodiments, aging can occur for at least 0 minutes and up to 1 week, at least 30 minutes and up to 48 hours, or at least 2 hours and up to 24 hours. In some embodiments, the temperature of the silicon-containing precursor sol during aging is at least 0° C., at least 20° C., at least 30° C., or higher. In some embodiments, the temperature of the silicon-containing precursor sol during aging is 80° C. or lower, 60° C. or lower, 50° C. or lower, or lower. Combinations of these ranges are possible. For example, in some embodiments, the temperature of the silicon-containing precursor sol during aging is at least 0°C and 80°C, at least 20°C and 60°C, or at least 30°C and 50°C. In some cases, the silicon-containing precursor sol is aged in an open atmosphere (e.g., open to ambient air), while in some embodiments, the conversion step is performed in a closed atmosphere (e.g., in an atmosphere fluidly separated from ambient air). Aging in an open atmosphere may allow for at least partial evaporation during aging, which may be desirable in some, but not necessarily all, embodiments. Aging in a closed atmosphere may reduce or eliminate evaporation during aging, which may be desirable in some, but not necessarily all, embodiments.
[0181] In some embodiments, a porous support membrane containing at least a portion of the silicon-containing precursor sol is removed from the solution used to apply the silicon-containing precursor sol, followed by a step of converting the silicon-containing precursor sol into a silica-based ceramic. For example, referring now to step 3 in FIG. 6 , the porous support membrane 130, at least a portion of which is coated with at least a portion of the silicon-containing precursor sol from solution 270, is removed from solution 270. The silicon-containing precursor sol coated on and / or within at least a portion of the porous support membrane (e.g., coated membrane 280) is then converted into a silica-based ceramic according to some embodiments. In some embodiments, converting the silicon-containing precursor sol into a silica-based ceramic involves performing hydrolysis and condensation reactions. In some such embodiments, it has been observed in connection with the present disclosure that the hydrolysis and condensation reactions result in the self-assembly of the components of the silicon-containing precursor sol to form a silica-based ceramic (e.g., as an interconnected network structure, which in some cases is nanoporous).
[0182] In some embodiments, the step of converting the silicon-containing precursor sol coating at least a portion of the porous support membrane into a silica-based ceramic (e.g., by hydrolysis and condensation reactions) lasts for at least 1 second, at least 1 minute, at least 30 minutes, at least 1 hour, at least 2 hours, at least 4 hours, or more. In some embodiments, the step of converting the silicon-containing precursor sol coating at least a portion of the porous support membrane into a silica-based ceramic lasts for 2 weeks or less, 1 week or less, 96 hours or less, 48 hours or less, 24 hours or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the conversion step lasts for at least 1 second and 2 weeks or less, at least 2 hours and 48 hours or less, or at least 4 hours and 24 hours or less. The step of converting the silicon-containing precursor sol coating at least a portion of the porous support membrane into a silica-based ceramic (e.g., by hydrolysis and condensation reactions) can be carried out using any of a variety of conditions. In some cases, the conversion step is carried out in an open atmosphere (e.g., open to ambient air), while in some embodiments, the conversion step is carried out in a closed atmosphere (e.g., in an atmosphere fluidly separated from ambient air). In some embodiments, the conversion step is carried out in an atmosphere having at least 0% humidity and at most 100% humidity.
[0183] The step of converting the silicon-containing precursor sol coating at least a portion of the porous support membrane into a silica-based ceramic (e.g., by hydrolysis and condensation reactions) can be carried out at any of a variety of temperatures, depending on the composition of the silicon-containing precursor sol and the desired properties of the cation exchange membrane. In some embodiments, the conversion step is carried out at room temperature or lower, while in some embodiments, the conversion step is carried out at an elevated temperature. In some such cases, the coated porous support membrane is held in a dryer (e.g., an oven) during the conversion step. For example, FIG. 6 shows an exemplary coated porous support 20 optionally held in a dryer 24 during at least a portion of step 3, according to some embodiments. In some embodiments, the conversion step is carried out on a coated porous support membrane held in an environment having a temperature of 0° C. or higher, 20° C. or higher, or higher. In some embodiments, the conversion step is carried out on a coated porous support membrane held in an environment having a temperature of 150° C. or lower, 80° C. or lower, 60° C. or lower, or lower. Combinations of these ranges are possible. For example, in some embodiments, the conversion step is carried out on a coated porous support membrane that is maintained in an environment having a temperature of 0° C. or higher and 150° C. or lower, 0° C. or higher and 80° C. or lower, or 20° C. or higher and 60° C. or lower. The temperature conditions under which the conversion step (e.g., hydrolysis and condensation of a silicon-containing precursor sol to form a silica-based ceramic) is carried out can be relatively low compared to certain existing techniques for forming ceramics, such as high-temperature sintering and calcination. In some cases, the use of relatively low temperatures to form silica-based ceramics allows for reduced costs and resources required to fabricate the cation exchange membrane compared to certain existing techniques.
[0184] In some embodiments, the converting step can be performed with the coated porous support membrane disposed on or in contact with a surface. For example, in some embodiments, the converting step can be performed with the coated porous support membrane disposed on a relatively flat surface, or a relatively flat and porous surface. However, it should be understood that the coated porous support membrane need not be disposed on or in contact with a surface during the converting step. In some embodiments, the coated porous support membrane is disposed in a horizontal orientation relative to the surface (e.g., horizontal orientation relative to the surface of the oven), while in some embodiments, the coated porous support membrane is disposed in a vertical orientation relative to the surface (e.g., vertical orientation relative to the surface of the oven).
[0185] In some embodiments, the conversion step can be optionally terminated to complete step 3. For example, in some embodiments, the reactions occurring during the conversion step (e.g., hydrolysis and condensation reactions) can be quenched by applying an aqueous solution. The aqueous solution can be applied using standard coating processes, such as dipping, spraying, blade, screen printing, etc. For example, in some embodiments, quenching the reaction includes contacting the converted coated porous support membrane with an aqueous solution (e.g., by applying the aqueous solution to the converted coated porous support membrane, submerging the coated porous support membrane in the aqueous solution, etc.). In some embodiments, the aqueous solution used to quench the reaction has a pH of -1 or greater, 0 or greater, 1 or greater, 2 or greater, 3 or greater, 4 or greater, 5 or greater, 6 or greater, 7 or greater, 8 or greater, 9 or greater, 10 or greater, or greater. In some embodiments, the aqueous solution used to quench the reaction has a pH of 14 or less, 13 or less, 12 or less, 11 or less, 10 or less, 9 or less, 8 or less, 7 or less, 6 or less, 5 or less, 4 or less, 3 or less, or less. Combinations of these ranges are possible. For example, in certain embodiments, the aqueous solution used to quench the reaction has a pH of -1 or greater and 14 or less, -1 or greater and 7 or less, or 5 or greater and 7 or less.
[0186] In some cases, it is desirable to remove excess silica-based ceramic in the cation exchange membrane (e.g., to reduce or eliminate surface excess). The excess silica-based ceramic can be removed using any of a variety of suitable methods. Exemplary methods include, but are not limited to, mechanical squeegee removal, air knife removal, and / or heating (e.g., to high temperatures).
[0187] In some embodiments, the method for fabricating a cation exchange membrane described herein is completed after step 3 above. For example, in some embodiments, the membrane 282 produced after step 3 is a fully fabricated cation exchange membrane (e.g., the cation exchange membrane 150 described herein). In some cases, steps of the above method may be repeated. For example, in some embodiments, steps 2 and 3 of the fabrication method may be repeated. Repeating steps 2 and 3 may, in some cases, result in increased coating of the silica-based ceramic on and / or within the porous support membrane. For example, repeating steps 2 and 3 may allow the silicon-containing precursor sol to penetrate regions of the porous support membrane that were not penetrated by the silicon-containing precursor sol during the operation prior to step 2. Such repetition of steps 2 and 3 may, in some cases, result in up to 100% filling of the porous support membrane with the silica-based ceramic. However, it should be understood that repeating steps 2 and 3 above too many times may, in some cases, cause an increase in the surface excess of the silica-based ceramic in the porous support membrane. In other words, in some cases, a layer of silica-based ceramic having too great a thickness may form on the outer surface of the cation exchange membrane, which may, in some cases, be detrimental to the performance of the cation exchange membrane in certain applications. In some cases, it has been observed that performing steps 2 and 3 above a total of 1 to 3 times can result in a cation exchange membrane with beneficial performance characteristics. In some cases, it has been observed that performing steps 2 and 3 above a total of 1 to 6 times (e.g., 4 to 6 times) can result in a cation exchange membrane with beneficial performance characteristics.
[0188] As described above, in certain embodiments, a fully fabricated cation exchange membrane can be prepared after completion of step 3, described above and shown in FIG. 6. For example, in certain embodiments in which the silicon-containing precursor sol includes components containing functional groups desired in the finished cation exchange membrane (e.g., silanes containing sulfonate and / or sulfonic acid groups), the functional groups can be present in the cation exchange membrane produced after step 3, thereby producing a cation exchange membrane suitable for a particular application without further modification after completion of step 3. As one non-limiting example, in certain embodiments in which the silicon-containing precursor sol includes tetraalkyl orthosilicate (e.g., TEOS) and 3-(trihydroxysilyl)-1-alkanesulfonic acid ((e.g., 3-trihydroxysilyl)-1-propanesulfonic acid, THOPS) as precursors, further modification of the cation exchange membrane may not be necessary after completion of step 3, because at least the cation exchange membrane at this stage contains sulfonic acid groups.
[0189] However, in certain embodiments, one or more additional steps may be performed after step 3 of the methods described herein. For example, in certain embodiments, the silica-based ceramic-coated porous support membrane does not contain functional groups (e.g., sulfonate and / or sulfonic acid groups) that are required to be present in the completed cation exchange membrane after step 3. For example, in certain embodiments, the silicon-containing precursor sol used to coat the porous support membrane does not contain components containing the desired functional groups. As one non-limiting example, in certain embodiments, the silicon-containing precursor sol includes tetraalkyl orthosilicate (e.g., TEOS) and a silane containing a thiol group as precursors. In some such cases, additional chemical reactions may need to be performed to convert the thiol to the desired sulfonate or sulfonic acid group (e.g., by oxidation). Thus, in some cases, additional chemical reactions may be performed to form the desired functional groups.
[0190] In some embodiments, after step 3, an optional step of exposing the coated porous support membrane to water may be performed. For example, as shown in FIG. 6, optional step 4 may be performed in which membrane 282 is contacted with water. Exposing the coated porous support membrane to water after step 3 may, in some embodiments, result in the removal of certain components that may be undesirable in subsequent steps of the fabrication process. For example, in some embodiments, exposing the coated porous support membrane to water may remove acid from the membrane structure. Water may be applied using one or more standard coating processes, such as dipping, spraying, blade, and screen printing.
[0191] In some embodiments, a method for forming a cation exchange membrane includes exposing a porous support membrane coated with a silica-based ceramic containing oxidizable functional groups to an oxidizing agent. As shown in FIG. 6 , in some embodiments, membrane 282 includes a porous support membrane coated with a silica-based ceramic containing oxidizable functional groups, and membrane 282 is exposed to an oxidizing agent in solution 272 during optional step 5. In some embodiments, the method further includes oxidizing the oxidizable functional groups to form sulfonate or sulfonic acid groups. In some such cases, the steps of exposing the porous support membrane to an oxidizing agent and oxidizing the oxidizable functional groups to form sulfonate or sulfonic acid groups result in a cation exchange membrane containing sulfonate and / or sulfonic acid groups (e.g., covalently bonded to the silica-based ceramic).
[0192] In some embodiments, the silica-based ceramic containing oxidizable functional groups contains a relatively high percentage of silicon. For example, in some embodiments, the silica-based ceramic contains 6 wt% or more, 10 wt% or more, 12 wt%, 15 wt% or more, 17 wt% or more, 20 wt% or more, 24 wt% or more, 30 wt% or more, 40 wt% or more, 60 wt% or more, or more. In some embodiments, the silica-based ceramic contains 60 wt% or less, 50 wt% or less, 47 wt% or less, 40 wt% or less, 30 wt% or less, 28 wt% or less, 26 wt% or less, 24 wt% or less, 22 wt% or less, 20 wt% or less, 17 wt% or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the silica-based ceramic contains 6 wt% or more and 60 wt% or less, or 17 wt% or more and 26 wt% or less, of Si.
[0193] The oxidizable functional group can be any functional group that can be oxidized to form a sulfonate or sulfonic acid group by one or more oxidation and / or hydrolysis steps. For example, in certain embodiments, the oxidizable functional group is a thiol. In certain embodiments, the oxidizable functional group is capable of undergoing an electrophilic aromatic substitution reaction, such as aromatic sulfonation. For example, in certain embodiments, the oxidizable functional group is an aryl group. The aryl group can be, for example, a benzyl group. In certain embodiments, the aryl group is a substituted aryl group. One non-limiting example of a suitable substituted aryl group is an aniline group. In certain embodiments, the oxidizable functional group is a sulfonyl halide.
[0194] The oxidizing agent can be any reagent or combination of reagents capable of oxidizing an oxidizable functional group to form a sulfonate or sulfonic acid group. In certain embodiments, the oxidizing agent comprises a peroxide. The peroxide-containing oxidizing agent can, in some cases, be hydrogen peroxide (HO). In certain embodiments, the peroxide-containing oxidizing agent is an organic compound containing a peroxide. In certain embodiments, the method includes oxidizing a thiol group with an oxidizing agent comprising a peroxide (e.g., hydrogen peroxide) to form a sulfonate or sulfonic acid group. In certain embodiments, the oxidizing agent is a group capable of reacting with an aryl group via an aromatic sulfonation reaction. For example, in certain embodiments, the oxidizing agent is sulfuric acid (HSO) or a combination of sulfuric acid and SO. In certain embodiments, the oxidizing agent is a group capable of reacting with a sulfonyl halide to form a sulfonate or sulfonic acid group (e.g., by a hydrolysis reaction). For example, in certain embodiments, the oxidizing agent is HO (or, for example, hydroxide OH). - )
[0195] Exposing a porous support membrane coated with a silica-based ceramic containing oxidizable functional groups to an oxidizing agent can include applying the oxidizing agent to the coated membrane in any of a variety of suitable ways. For example, as described above, in some embodiments, the exposing step includes exposing the coated porous support membrane to a solution containing an oxidizing agent (e.g., solution 272 in FIG. 6 ). The oxidizing agent can, in some cases, be applied to the coated porous support membrane using standard coating processes such as dip coating, spray coating, roll coating, blade coating, or screen printing. In some embodiments where the oxidizing agent is a peroxide (e.g., hydrogen peroxide), the oxidizing agent can be applied to the coated porous support membrane by applying (e.g., by immersion) an aqueous solution containing at least 1 vol.%, at least 5 vol.%, at least 10 vol.%, at least 15 vol.%, at least 20 vol.%, or more of the peroxide (e.g., hydrogen peroxide). In some embodiments where the oxidizing agent is a peroxide (e.g., hydrogen peroxide), the oxidizing agent may be applied to the coated porous support membrane by applying (e.g., by dipping) an aqueous solution containing 30% by volume or less, 25% by volume or less, 20% by volume or less, 15% by volume or less, 10% by volume or less, or less than or equal to 10% by volume of peroxide (e.g., hydrogen peroxide). Combinations of these ranges are possible. For example, in some embodiments, the peroxide may be applied to the coated porous support membrane by applying an aqueous solution containing 1% by volume or more and 30% by volume or less, 10% by volume or more and 30% by volume or more, or 20% by volume or more and 30% by volume of peroxide (e.g., hydrogen peroxide).
[0196] In some embodiments, the oxidation of the oxidizable functional groups to sulfonate or sulfonic acid groups is carried out using a solution containing an oxidizing agent maintained at a suitable temperature. For example, in some embodiments, the solution containing the oxidizing agent used in the oxidation reaction has a temperature of 0° C. or higher, 20° C. or higher, or higher. In some embodiments, the solution containing the oxidizing agent used in the oxidation reaction has a temperature of 100° C. or lower, 60° C. or lower, 50° C. or lower, or lower. Combinations of these ranges are possible. For example, in some embodiments, the solution containing the oxidizing agent used in the oxidation reaction has a temperature of 0° C. or higher and 100° C. or lower, 0° C. or higher and 60° C. or higher, or 20° C. or higher and 50° C. or lower. The duration of the oxidation reaction to convert the oxidizable functional groups to sulfonate or sulfonic acid groups can depend on the reaction rate and the concentration of oxidizable functional groups on or in the coated porous support, including, for example, a silica-based ceramic. In some cases, the oxidation reaction can last for at least 1 minute, at least 30 minutes, at least 1 hour, or more. In some cases, the oxidation reaction may continue for up to one week, up to 48 hours, up to 24 hours, or less. Combinations of these ranges are possible. For example, in some embodiments, the oxidation reaction may continue for at least one minute and up to one week, at least 30 minutes and up to 48 hours, or at least one hour and up to 24 hours. It has been observed that the length of time of the oxidation reaction can, in some cases, affect the extent of oxidation of the oxidizable functional group (e.g., to a sulfonate or sulfonic acid group).
[0197] In some embodiments, an optional drying step may be performed on the cation exchange membrane after oxidation of the oxidizable functional groups (e.g., thiols, aryl groups, sulfonyl halides, etc.) to sulfonate or sulfonic acid groups. FIG. 6 illustrates optional step 6 according to some embodiments, in which the oxidized membrane 284 containing sulfonate and / or sulfonic acid groups is dried by being held in optional dryer 26. However, it should be understood that in some embodiments, the drying step may be performed without holding the oxidized cation exchange membrane in a dryer. In some embodiments, the step of drying the oxidized cation exchange membrane containing sulfonate and / or sulfonic acid groups continues for at least 1 second, at least 1 minute, at least 30 minutes, at least 1 hour, at least 2 hours, at least 4 hours, or more. In some embodiments, the step of drying the oxidized cation exchange membrane containing sulfonate and / or sulfonic acid groups continues for up to 24 hours, up to 2 days, up to 1 week, up to 2 weeks, or more. Combinations of these ranges are possible. For example, in some embodiments, the drying step of the oxidized cation exchange membrane containing sulfonate and / or sulfonic acid groups lasts for at least 1 second and up to 2 weeks, at least 2 hours and up to 2 days, or at least 4 hours and up to 24 hours. The drying step of the oxidized cation exchange membrane containing sulfonate and / or sulfonic acid groups can be carried out under any of a variety of conditions. In some cases, the drying step is carried out in an open atmosphere (e.g., open to ambient air), while in some embodiments, the drying step is carried out in a closed atmosphere (e.g., in an atmosphere fluidly separated from ambient air). In some embodiments, the drying step is carried out in an atmosphere having a humidity of at least 0% and a humidity of at most 100%.
[0198] The step of drying the oxidized cation exchange membrane containing sulfonate and / or sulfonic acid groups can be carried out at any of a variety of temperatures. In some embodiments, the drying step is carried out at room temperature or lower, while in some embodiments, the drying step is carried out at an elevated temperature. In some embodiments, the drying step is carried out on the oxidized cation exchange membrane maintained in an environment having a temperature of 0° C. or higher, 20° C. or higher, or higher. In some embodiments, the drying step is carried out on the coated porous support membrane maintained in an environment having a temperature of 150° C. or lower, 80° C. or lower, 60° C. or lower, or lower. Combinations of these ranges are possible. For example, in some embodiments, the drying step is carried out on the oxidized cation exchange membrane maintained in an environment having a temperature of 0° C. or higher and 150° C. or lower, 0° C. or higher and 80° C. or lower, or 20° C. or higher and 60° C. or lower. In some cases, the resulting cation exchange membrane after the oxidation step and / or optional drying step may be suitable for use in any of a variety of applications.
[0199] In some embodiments, the cation exchange materials described herein are not in the form of a membrane. For example, in some embodiments, the cation exchange material can include a silica-based ceramic comprising sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic described herein, but is not in the form of a membrane. In some such cases, the cation exchange material includes a silica-based ceramic described herein, but does not necessarily include a porous support membrane (e.g., coated on and / or within the silica-based ceramic). One non-limiting example of a cation exchange material not in the form of a membrane is an ion exchange resin. In some embodiments, the cation exchange material is in the form of beads (e.g., cation exchange beads comprising the silica-based ceramic described herein), for example, formed using an emulsion method. As a non-limiting example, FIG. 7 shows a schematic diagram of a cation exchange material 300 comprising a silica-based ceramic 150, according to some embodiments, where the cation exchange material 300 is in the form of beads. In some cases, the silica-based ceramic 150 comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, according to some embodiments, as shown in FIG. 7.
[0200] In some embodiments, the cation exchange material (e.g., resin) is in the form of a plurality of particles (e.g., powder) comprising functional groups (e.g., silica-based ceramic comprising sulfonate and / or sulfonic acid groups). In some embodiments, the cation exchange material in the form of particles (e.g., powder) is formed by mechanically breaking down the silica-based ceramic described herein (e.g., by any suitable technique known in the art, such as milling). The cation exchange material particles can be packed into an ion exchange column and used for any of a variety of applications. In some embodiments, the cation exchange material is in the form of a plurality of particles (e.g., powder) having an average maximum cross-sectional dimension of 1 μm or more, 2 μm or more, 5 μm or more, 8 μm or more, 10 μm or more, 15 μm or more, 20 μm or more, 30 μm or more, 50 μm or more, 75 μm or more, 100 μm or more, 200 μm or more, 500 μm or more, 1 mm or more, or more. In certain embodiments, the cation exchange material is in the form of a plurality of particles (e.g., a powder) having an average maximum cross-sectional dimension of 10 mm or less, 5 mm or less, 2 mm or less, 1 mm or less, 500 μm or less, 200 μm or less, 100 μm or less, 80 μm or less, 60 μm or less, 50 μm or less, 40 μm or less, 25 μm or less, or less. Combinations of these ranges are possible. For example, in certain embodiments, the cation exchange material is in the form of a plurality of particles (e.g., a powder) having an average maximum cross-sectional dimension of 1 μm or more and 10 mm or less.
[0201] In some embodiments, a cation exchange material (e.g., beads, particles) is provided that includes a silica-based ceramic that includes sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, where the silica-based ceramic includes a relatively high amount of Si in the silica-based ceramic, as described above. In some embodiments, the silica-based ceramic of the cation exchange material (e.g., beads) includes relatively small pores (e.g., pores having a number average pore diameter of 10 nm or less), as described above. In some embodiments, the cation exchange material (e.g., in the form of beads) has a relatively high cation exchange capacity (e.g., greater than 0.01 meq / g of cation exchange membrane).
[0202] In some embodiments, a cation exchange material not in the form of a membrane can be prepared by oxidizing a silica-based ceramic containing oxidizable functional groups, where the silica-based ceramic is not part of a membrane. For example, in some embodiments, a cation exchange membrane containing a silica-based ceramic in the form of a resin (e.g., containing a plurality of particles or beads) and containing sulfonate and / or sulfonic acid groups can be fabricated using an oxidation process similar to that described above for the cation exchange membrane. For example, some embodiments include exposing a resin containing a silica-based ceramic containing oxidizable functional groups (e.g., thiols) to an oxidizing agent (e.g., peroxide) as described above. In some embodiments, the method further includes oxidizing the oxidizable functional groups to form sulfonate and / or sulfonic acid groups.
[0203] In some embodiments, the silica-based ceramic of the resin containing oxidizable functional groups contains 6 wt% or more, 10 wt% or more, 12 wt%, 15 wt% or more, 17 wt% or more, 20 wt% or more, 24 wt% or more, 30 wt% or more, 40 wt% or more, 60 wt% or more, or more. In some embodiments, the silica-based ceramic contains 60 wt% or less, 50 wt% or less, 47 wt% or less, 40 wt% or less, 30 wt% or less, 28 wt% or less, 26 wt% or less, 24 wt% or less, 22 wt% or less, 20 wt% or less, 17 wt% or less, or less. Combinations of these ranges are possible. For example, in some embodiments, the silica-based ceramic contains 6 wt% or more and 60 wt% or less, or 17 wt% or more and 26 wt% or less, of Si in the resin-based silica-based ceramic.
[0204] The cation exchange membranes and materials described herein can be used in any of a variety of applications. For example, in certain embodiments, the cation exchange membranes described herein are used in electrochemical applications. In some cases, electrochemical applications involve applying a current or voltage, for example, to achieve separation of charged ionic species. Using a cation exchange membrane in an electrochemical application can include contacting the cation exchange membrane with an electrolyte. In certain embodiments, using a cation exchange membrane in an electrochemical application can include passing a current through electrodes in electrical communication with the electrolyte. For example, in certain embodiments, the cation exchange membrane is incorporated into an electrochemical device (e.g., a battery, a fuel cell, an electrolysis device, etc.). In some such embodiments, the electrochemical device includes an electrolyte (e.g., a fluid (liquid) electrolyte or a solid electrolyte) in contact with the cation exchange membrane and electrodes in electrical communication with the electrolyte. In certain embodiments, the electrochemical device includes one or more gases (e.g., in contact with the cation exchange membrane) during at least a portion of the charge and / or discharge process (e.g., a fuel cell). Examples of such gases include, but are not limited to, oxygen gas (O), hydrogen gas (H), carbon dioxide (CO), methane (CH), and combinations thereof. In some cases, an electric current is passed through the electrodes (e.g., during the electrochemical reaction) during operation of the electrochemical device (e.g., a charge or discharge process). In some embodiments in which a cation exchange membrane is incorporated into an electrochemical device, the cation exchange membrane is paired with an anion exchange membrane. In some cases, the cation exchange membrane may be packed into a cell, and multiple such cells may be packed into a stack containing two or more cation exchange membranes.Non-limiting examples of electrochemical applications of cation exchange membranes include electrodialysis, batteries (e.g., redox flow batteries), fuel cells, commodity chemical manufacturing (e.g., chlor-alkali production), electrolysis, desalination, wastewater treatment, chromatography, electrodeionization, desalination (e.g., enhanced oil recovery (EOR) desalination, organic wastewater desalination), pollutant chemical removal from wastewater (e.g., ammonia removal from wastewater), water treatment (e.g., mine runoff and mineral processing), food and beverage manufacturing, dairy / whey refining, wine stabilization, biological purification, biochemical manufacturing, coating (e.g., electrodeposition coating), desalination processes, ultrapure water production, plating solution recovery, amine recovery, acid recovery processes, caustic recovery processes, and acid removal processes (e.g., tartaric acid, malic acid, citric acid removal). It should be understood that in some cases, cation exchange membranes can be used in separation applications other than those involving the application of an electric field. For example, in certain embodiments, cation exchange membranes are used in dialysis techniques. One non-limiting example is diffusion dialysis (DD), which can be used in acid recovery processes (e.g., using a concentration gradient to selectively transport cations).
[0205] In certain embodiments, the cation exchange membranes described herein are used as adsorbent materials. For example, in certain embodiments, the cation exchange membranes are incorporated into adsorption devices. In some such embodiments, the cation exchange membranes are used as adsorbent materials to remove liquids from gas streams. In some cases, the cation exchange membranes are used as adsorbent materials to remove dissolved ions from liquid streams (e.g., in an ion exchange process). In certain embodiments, using the cation exchange membrane as an adsorbent material includes flowing a fluid through the cation exchange membrane. In some such embodiments, using the cation exchange membrane as an adsorbent material further includes adsorbing components of the fluid flowing through the cation exchange membrane (e.g., the liquid in the case of removing liquids from a gas stream, or the ions in the case of removing ions from a liquid stream). Non-limiting examples of the use of the cation exchange membranes described herein as adsorbent materials include the use of the cation exchange membranes in pervaporator systems, dehumidifier systems, and / or desiccant or climate control systems.
[0206] In certain embodiments, the cation exchange membranes described herein are used in separation applications. In certain such embodiments, the cation exchange membranes are used in separation applications that involve applying transmembrane pressure to the cation exchange membrane. Non-limiting examples of separation applications in which cation exchange membranes are used by applying transmembrane pressure to the cation exchange membrane include reverse osmosis, microfiltration (e.g., organic solvent microfiltration, aqueous solvent microfiltration), nanofiltration (e.g., organic solvent nanofiltration, aqueous solvent nanofiltration), and ultrafiltration applications. For example, in certain embodiments, the cation exchange membrane is incorporated into a reverse osmosis device, a filtration device, or an ultrafiltration device. Applying transmembrane pressure to the cation exchange membrane may, in some cases, involve contacting the cation exchange membrane with a liquid (e.g., a liquid solution) and applying hydrostatic or water pressure to the liquid such that transmembrane pressure is applied to the cation exchange membrane. In certain such embodiments, at least a portion of the liquid may pass through the cation exchange membrane (e.g., from a first side of the cation exchange membrane to a second side of the cation exchange membrane as permeate).
[0207] As noted above, in certain embodiments, cation exchange materials not in the form of membranes are also described herein (e.g., in the form of a resin comprising a plurality of silica-based ceramic particles or beads). Cation exchange materials, which may comprise silica-based ceramics comprising functional groups as described herein, can be used in any of a variety of applications. For example, in certain embodiments, a resin comprising a cation exchange material as described herein is packed into an ion exchange column. In certain such embodiments, ion exchange columns comprising the cation exchange material can be used in waste treatment (e.g., nuclear waste treatment) and purification processes, such as ultrapure water production or protein and biologic purification.
[0208] Definitions of specific functional groups and chemical terms are described in more detail below. For purposes of the present invention, chemical elements are identified according to the Periodic Table of the Elements, CAS version, Handbook of Chemistry and Physics, 75th Ed., inside cover, and specific functional groups are generally defined as described therein. Furthermore, general principles of organic chemistry, as well as specific functional groups and reactivities, are described in Organic Chemistry, Thomas Sorrell, University Science Books, Sausalito: 1999, the entire contents of which are incorporated herein by reference.
[0209] As used herein, the term "aliphatic" refers to alkyl, alkenyl, alkynyl, and carbocyclic groups. Similarly, the term "heteroaliphatic" refers to heteroalkyl, heteroalkenyl, heteroalkynyl, and heterocyclic groups.
[0210] The term "alkyl" is given its ordinary meaning in the art and refers to the radical of a saturated aliphatic group, including a straight-chain alkyl group, a branched-chain alkyl group, a cycloalkyl (alicyclic) group, an alkyl-substituted cycloalkyl group, and a cycloalkyl-substituted alkyl group. In some cases, the alkyl group can be a lower alkyl group, i.e., an alkyl group having 1 to 10 carbon atoms (e.g., methyl, ethyl, propyl, butyl, pentyl, hexyl, heptyl, octyl, nonyl, or decyl). In some embodiments, a straight-chain or branched-chain alkyl can have 30 or fewer carbon atoms in its backbone, and in some cases 20 or fewer. In some embodiments, a straight-chain or branched-chain alkyl can have 12 or fewer carbon atoms in its backbone (e.g., C1-C6 for straight-chain). 12 , and for branched chains, C3 to C 12), 6 or fewer, or 4 or fewer. Likewise, cycloalkyls can have from 3-10 carbon atoms in their ring structure, or 5, 6 or 7 carbons in the ring structure. Examples of alkyl groups include, but are not limited to, methyl, ethyl, propyl, isopropyl, cyclopropyl, butyl, isobutyl, t-butyl, cyclobutyl, hexyl, and cyclohexyl.
[0211] The term "alkylene" as used herein refers to a divalent alkyl group. An "alkylene" group is a polymethylene group, i.e., -(CH) z -, where z is a positive integer, for example, 1 to 20, 1 to 10, 1 to 6, 1 to 4, 1 to 3, 1 to 2, or 2 to 3. A substituted alkylene chain is a polymethylene group in which one or more methylene hydrogen atoms have been replaced with a substituent. Suitable substituents include those described herein for substituted aliphatic groups. The alkylene group can be cyclic or acyclic, branched or unbranched, substituted or unsubstituted.
[0212] Generally, the suffix "-ene" is used to represent a divalent group. Thus, any of the terms defined herein can be modified with the suffix "-ene" to represent a divalent form of the moiety. For example, a divalent carbocycle is a "carbocyclylene," a divalent aryl ring is an "arylene," a divalent benzene ring is a "phenylene," a divalent heterocycle is a "heterocyclylene," a divalent heteroaryl ring is a "heteroarylene," a divalent alkyl chain is an "alkylene," a divalent alkenyl chain is an "alkenylene," a divalent alkynyl chain is an "alkynylene," a divalent heteroalkyl chain is a "heteroalkylene," a divalent heteroalkenyl chain is a "heteroalkenylene," a divalent heteroalkynyl chain is a "heteroalkynylene," etc.
[0213] The term "aryl" is given its ordinary meaning in the art and refers to an optionally substituted aromatic carbocyclic group having a single ring (e.g., phenyl), multiple rings (e.g., biphenyl), or multiple fused rings, at least one of which is aromatic (e.g., 1,2,3,4-tetrahydronaphthyl, naphthyl, anthryl, or phenanthryl). That is, at least one ring may have a conjugated π-electron system, while other adjacent rings may be cycloalkyl, cycloalkenyl, cycloalkynyl, aryl, and / or heterocyclyl. Aryl groups may be optionally substituted as described herein. Substituents include, but are not limited to, any of the substituents described above for aliphatic moieties or for other moieties disclosed herein that result in the formation of a stable compound. In some cases, an aryl group is a stable monocyclic or polycyclic unsaturated moiety, preferably having 3 to 14 carbon atoms, each of which may be substituted or unsubstituted. A "carbocyclic aryl group" refers to an aryl group in which the ring atoms in the aromatic ring are carbon atoms. Carbocyclic aryl groups include monocyclic carbocyclic aryl groups and polycyclic or fused compounds (eg, where two or more adjacent ring atoms are common to two adjacent rings), such as naphthyl groups.
[0214] As used herein, the term "arylene" refers to an aryl biradical derived from an aryl group, as defined herein, by the removal of two hydrogen atoms. The arylene group can be substituted or unsubstituted. Arylene group substituents include, but are not limited to, any of the substituents described herein that result in the formation of a stable moiety. Furthermore, an arylene group can be incorporated into an alkylene, alkenylene alkynylene, heteroalkylene, heteroalkenylene, or heteroalkynylene group, as defined herein, as a linker group. The arylene group can be branched or unbranched.
[0215] The terms "halo" and "halogen" as used herein refer to an atom selected from the group consisting of fluorine, chlorine, bromine, and iodine.
[0216] The term "alkoxy," as used herein, refers to an alkyl group, as described above, attached to the parent molecular moiety through an oxygen or sulfur atom. In certain embodiments, the alkyl group contains 1-20 aliphatic carbon atoms. In certain other embodiments, the alkyl group contains 1-10 aliphatic carbon atoms. In still other embodiments, the alkyl, alkenyl, and alkynyl groups employed in the present invention contain 1-8 aliphatic carbon atoms. In still other embodiments, the alkyl group contains 1-6 aliphatic carbon atoms. In still other embodiments, the alkyl group contains 1-4 aliphatic carbon atoms. Examples of alkoxy include, but are not limited to, methoxy, ethoxy, propoxy, isopropoxy, n-butoxy, t-butoxy, neopentoxy, and n-hexoxy. Examples of thioalkyl include, but are not limited to, methylthio, ethylthio, propylthio, isopropylthio, n-butylthio, and the like. Alkoxy groups can be cyclic or acyclic, branched or unbranched, substituted or unsubstituted.
[0217] The terms "heterocyclyl" or "heterocyclic" refer to the radical of a 3- to 14-membered non-aromatic ring system having ring carbon atoms and 1 to 4 ring heteroatoms, where each heteroatom is independently selected from nitrogen, oxygen, and sulfur (a "3- to 14-membered heterocyclyl"). In heterocyclyl groups containing one or more nitrogen atoms, the point of attachment may be at a carbon or nitrogen atom, where valence allows. Heterocyclyl groups may be either monocyclic (a "monocyclic heterocyclyl") or polycyclic (e.g., fused, bridged, or spiro ring systems, e.g., bicyclic (a "bicyclic heterocyclyl") or tricyclic (a "tricyclic heterocyclyl")) and may be saturated or contain one or more carbon-carbon double or triple bonds. Heterocyclyl polycyclic ring systems may contain one or more heteroatoms in one or both rings. "Heterocyclyl" also includes ring systems in which a heterocyclyl ring, as defined above, is fused to one or more carbocyclyl groups, where the point of attachment is on either the carbocyclyl or heterocyclyl ring, or ring systems in which a heterocyclyl ring, as defined above, is fused to one or more aryl or heteroaryl groups, where the point of attachment is on the heterocyclyl ring; in such cases, the number of ring members continues to indicate the number of ring members in the heterocyclyl ring system. Unless otherwise specified, each heterocyclyl is independently unsubstituted (an "unsubstituted heterocyclyl") or substituted with one or more substituents (a "substituted heterocyclyl"). In certain embodiments, a heterocyclyl group is an unsubstituted 3- to 14-membered heterocyclyl. In certain embodiments, a heterocyclyl group is a substituted 3- to 14-membered heterocyclyl.
[0218] The term "heteroaryl" refers to the radical of a 5- to 14-membered monocyclic or polycyclic (e.g., bicyclic, tricyclic) 4n+2 aromatic ring system (e.g., having 6, 10, or 14 π-electrons shared in the cyclic array) having ring carbon atoms and 1 to 4 ring heteroatoms provided in the aromatic ring system, where each heteroatom is independently selected from nitrogen, oxygen, and sulfur ("5- to 14-membered heteroaryl"). In heteroaryl groups containing one or more nitrogen atoms, the point of attachment may be a carbon or nitrogen atom, as valence permits. Heteroaryl polycyclic ring systems may contain one or more heteroatoms in one or both rings. "Heteroaryl" includes ring systems in which a heteroaryl ring, as defined above, is fused with one or more carbocyclyl or heterocyclyl groups, where the point of attachment is on the heteroaryl ring; in such cases, the number of ring members continues to indicate the number of ring members in the heteroaryl ring system. "Heteroaryl" also includes ring systems in which a heteroaryl ring, as defined above, is fused to one or more aryl groups, where the point of attachment is on either the aryl or heteroaryl ring; in such cases, the number of ring members indicates the number of ring members in the fused polycyclic (aryl / heteroaryl) ring system. In polycyclic heteroaryl groups in which one ring does not contain a heteroatom (e.g., indolyl, quinolinyl, carbazolyl, etc.), the point of attachment can be on either ring, i.e., on the ring containing the heteroatom (e.g., 2-indolyl) or on the ring without a heteroatom (e.g., 5-indolyl).
[0219] As used herein, "leaving group" (LG) is an art-recognized term that refers to a molecular fragment that leaves along with an electron pair in a heterolytic bond cleavage, where the molecular fragment is an anion or a neutral molecule. As used herein, a leaving group can be an atom or group capable of being pointed by a nucleophile. See, e.g., Smith, March Advanced Organic Chemistry 6th ed. (501-502).
[0220] It will be understood that the groups and / or compounds described herein can be optionally substituted with any number of substituents or functional groups. That is, any of the groups described above can be optionally substituted. As used herein, the term "substituted" is intended to include all permissible substituents of organic compounds, with "permissible" being used in the context of chemical valence rules known to those of ordinary skill in the art. In general, the term "substituted," whether preceded by the term "optionally" or not, refers to the replacement of a hydrogen radical in a given structure with the radical of a specified substituent. When more than one position in any given structure can be substituted with more than one substituent selected from a specified group, the substituents can be the same or different at every position. It will be understood that "substitution" also includes those that result in a stable compound that does not spontaneously undergo transformation, such as, for example, rearrangement, cyclization, or elimination. In some cases, "substitution" can generally refer to the replacement of a hydrogen radical with a substituent described herein. However, as used herein, "substituted" does not encompass the replacement and / or modification of the key functional group by which a molecule is identified, such that, for example, the "substituted" functional group becomes a different functional group upon substitution. For example, a "substituted phenyl group" must still contain a phenyl moiety and, by this definition, cannot be modified by substitution to, for example, a pyridine ring. In a broad aspect, the permissible substituents include acyclic and cyclic, branched and unbranched, carbocyclic and heterocyclic, aromatic and non-aromatic substituents of organic compounds. Exemplary substituents include, for example, those described herein. The permissible substituents can be one or more and can be the same or different for appropriate organic compounds. For purposes of this invention, heteroatoms such as nitrogen can have hydrogen substituents and / or any permissible substituent of organic compounds described herein that satisfies the valence of the heteroatom. Furthermore, the present invention is not intended to be limited in any manner by the permissible substituents of organic compounds. Combinations of substituents and variables envisioned by this invention preferably result in the formation of stable compounds useful for forming imaging agents or imaging agent precursors.The term "stable" as used herein preferably refers to a compound that is stable enough to allow for manufacture and maintains the integrity of the compound for a period of time sufficient to be detected, preferably for a period of time sufficient to be useful for the purposes detailed herein.
[0221] Examples of substituents include, but are not limited to, halogen, azido, alkyl, aralkyl, alkenyl, alkynyl, cycloalkyl, hydroxyl, alkoxyl, amino, nitro, sulfhydryl, imino, amido, phosphonate, phosphinate, carbonyl, carboxyl, silyl, ether, alkylthio, sulfonyl, sulfonamide, ketone, aldehyde, ester, heterocyclyl, aromatic or heteroaromatic moiety, -CF3, -CN, aryl, aryloxy, perhaloalkoxy, aralkoxy, heteroaryl, heteroaryloxy, heteroarylalkyl, heteroaralkyl, heteroaralkyl, heteroaralkyl, heteroaryloxy, heteroaryl ... Examples of the alkyl group include koxy, azido, amino, halide, alkylthio, oxo, acylalkyl, carboxyester, -carboxamido, acyloxy, aminoalkyl, alkylaminoaryl, alkylaryl, alkylaminoalkyl, alkoxyaryl, arylamino, aralkylamino, alkylsulfonyl, -carboxamidoalkylaryl, -carboxamidoaryl, hydroxyalkyl, haloalkyl, alkylaminoalkylcarboxy-, aminocarboxamidoalkyl-, cyano, alkoxyalkyl, perhaloalkyl, and arylalkyloxyalkyl.
[0222] U.S. Provisional Patent Application No. 62 / 857,224, filed June 4, 2019, and entitled "CERAMIC CATION EXCHANGE MATERIALS," is hereby incorporated by reference in its entirety for all purposes.
[0223] The following examples are intended to illustrate certain embodiments of the present invention, but do not exemplify the full scope of the invention. [Example]
[0224] Example 1 This example compares the mechanical burst properties of various cation exchange membranes. The cation exchange membranes were fabricated by infiltrating a porous support membrane with a sol-gel mixture to form a self-assembled silica-based ceramic containing nanopores within the boundaries of the porous support membrane. Two possible porous support membranes tested were cellulose-based and nonwoven glass fiber-based porous support membranes. To perform the mechanical burst test, the uncoated porous support membranes were first cut into 70 mm diameter disks and edged with UV / visible light-cured alkoxysilicone prior to the sol-gel process.
[0225] A cellulose-supported cation exchange membrane was prepared with a nominal thickness of 180 μm and a 100 g / m 2 The uncoated porous support membrane was first immersed in 50 mL of fresh tetraethyl orthosilicate (TEOS):(3-mercaptopropyl)triethoxysilane (MPTES) solution (mass ratio 80:20, water:silicon-containing precursor molar ratio equal to 2:1, pH = 0.523) for 10 minutes. The coated porous support membrane was then dried in a fume hood for 20 hours, and a second coating was then applied by immersing it in a freshly prepared TEOS:MPTES solution (same composition) for 10 minutes. The coated porous support membrane was then dried again in a fume hood for 20 hours. The resulting membranes were oxidized by immersing them in a 20% by volume H2O2 solution for 24 hours. The resulting oxidized membranes were then rinsed and kept hydrated in deionized water. FIG. 8A shows force curves illustrating the results of mechanical burst tests on three identically prepared cellulose-supported cation exchange membranes.
[0226] The nonwoven glass fiber-based cation exchange membrane was prepared with a typical thickness of 460 μm, a porosity of about 60%, and a density of about 0.2 g / cm. 3The uncoated porous support membrane was first immersed in 50 mL of fresh TEOS:MPTES solution (mass ratio 80:20, water to silica molar ratio equal to 2, pH = 0.523) for 5 minutes. The coated membrane was then dried in a fume hood for 20 hours, and a second coating was then applied by immersing the coated porous support membrane in a freshly prepared TEOS:MPTES solution (same composition) for 10 minutes. The coated porous support membrane was then dried again in a fume hood for 20 hours. The resulting membranes were oxidized by immersing them in a 20% by volume HO solution for 24 hours. The resulting membranes were then rinsed and kept hydrated in deionized water. Figure 8B shows the force curves showing the results of mechanical burst tests on three identically prepared nonwoven glass fiber supported cation exchange membranes.
[0227] The average mechanical burst strengths of the cellulose-supported and nonwoven glass fiber-supported membranes were tested to be 6.1 ± 0.5 N (Figure 8A) and 13.8 ± 1.0 N (Figure 8B), respectively. While these membranes had lower mechanical burst strengths than a commercially available polymer membrane (Nafion 212, shown in Figure 8C), this result does not preclude their operation in a stack environment. The mechanical burst strengths of the cellulose-supported and nonwoven glass-supported membranes, as well as the Nafion 212 comparative example, are summarized in Figure 8D, along with a typical failure burst pressure point of 1.7 N. This example demonstrates that the mechanical properties of cation-exchange membranes are, in some cases, related to the porous support membrane itself. Thicker and more robust nonwoven glass porous support membranes exhibited better mechanical properties than thinner cellulose membranes for the same TEOS:MPTES formulation. In addition to thickness, the presence of binders, material type, and structure (e.g., cell or weave) can all substantially affect mechanical properties.
[0228] Example 2 This example demonstrates the performance and structural characteristics of an exemplary cation exchange membrane. The cation exchange membrane in this example was fabricated on a nonwoven glass porous support membrane with a polymer edging according to the following procedure. The porous support membrane was fabricated from borosilicate glass fibers without a binder, with an average (mean) pore size of 1 micron. The porous support membrane was initially 254 microns thick prior to sol-gel impregnation. The porous support membrane was first edged with UV-curable silicone to form a disk with an outer diameter of 35 mm and an active area inner diameter of 10 mm to 15 mm. An initial mixture containing an 80:20 mass ratio of TEOS:MPTES was prepared, and 0.3 M hydrochloric acid was added to achieve a final water:silicon molar ratio of 2:1 to 4:1. The mixture was stirred and heated to 40°C for 4 hours before being applied to the porous support membrane. The coated porous support membrane was allowed to dry overnight, and then a second coat was applied following the same procedure. The resulting cation exchange membrane was oxidized in 20% hydrogen peroxide at ambient temperature for 24 hours before testing. The cation exchange membrane of this example exhibited an ion exchange capacity of over 1.0 meq / g and had a high cation permselectivity measurement compared to the currently available commercial cation exchange membrane Neosepta CMX (shown in FIG. 9A). The cation exchange membrane of this example also had very low permeability to water, as shown in FIG. 9B, which may be beneficial for electrodialysis applications. The sodium ion conductivity for the cation exchange membrane in a 0.5 M NaCl solution was found to vary from 0.0010 S / cm to 0.0013 S / cm, with the cation exchange membrane having a higher water-to-silicon ratio, resulting in a lower conductivity. SAXS fitting of the cation exchange membrane samples showed that they had a volume porosity of 8%–9%, a pore radius of 2.7 Å–3.7 Å, and a polydispersity index of 0.15–0.23 when fitted with a spherical core–shell model, as shown in Figure 9 C.
[0229] Example 3 This example demonstrates the performance and structural characteristics of an exemplary cation exchange membrane. The cation exchange membrane in this example was fabricated on a nonwoven glass substrate with a polymer edging as follows: The porous support membrane contained borosilicate glass fibers with an average (mean) pore size of 1 micron and no binder. The porous support membrane was initially 254 microns thick prior to sol-gel impregnation. The substrate was first edged with UV-curable silicone to form a disk with an outer diameter of 35 mm and an active area inner diameter of 10 mm to 15 mm. A mixture containing TEOS and 3-(trihydroxysilyl)-1-propanesulfonic acid (THOPS) (30-35% in water, pH = 0.523) in a 55:45 mass ratio was prepared and immediately coated onto the porous support membrane. The substrate was allowed to dry overnight. The cation exchange membrane has a cation exchange capacity of 0.68 meq / g ± 0.006 meq / g; cation (Na) content of 82% ± 1% + ) Permselectivity; sodium ion conductivity of 0.0018 S / cm ± 0.0001 S / cm; and 8.6 mL.m-2.h-1.bar-1 ± 0.3 mL.m -2 .h -1 .bar -1 It was found that the permeability of the water was
[0230] Example 4 This example illustrates the performance and structural characteristics of exemplary cation exchange membranes. The cation exchange membranes in this example were fabricated on nonwoven cellulosic porous support membranes without UV polymer edging by a dip-coating procedure. The uncoated porous support membranes were coated with 100 g / m 2The porous support membrane had a nominal basis weight of 1.05 g, a thickness of 180 microns before coating, and a nominal ash content of 0.15%. Constructed from alpha cellulose, the porous support membrane retained particles less than 3 microns in diameter before coating with the sol-gel mixture. A mixture of TEOS and MPTES was prepared in an 80:20 mass ratio, and 0.3 M HCl was added to catalyze the reaction at a water-to-silicon molar ratio of 2. The mixture was stirred and heated to 40°C for 4 hours, after which the porous support membrane was immersed in the mixture for 1 hour. The coated porous support membrane was dried overnight, and the process was repeated the next day. The resulting cation exchange membrane was then oxidized in 20% hydrogen peroxide at ambient temperature for 24 hours. The resulting cation exchange membrane had an ion exchange capacity of 0.89 ± 0.01 meq / g; a cation permselectivity of 89% ± 0.2%; a sodium conductivity of 0.0612 S / cm ± 0.0003 S / cm in 2 M NaCl solution; and a solubility of 5.1 mL.m -2 .h -1 .bar -1 ±0.52 mL.m -2 .h -1 .bar -1 The SAXS fits of the cation exchange membranes in this example showed that they had a volume porosity of 10%, pore radii of 2.9 to 3.5 Å, and polydispersity indices of 0.10 to 0.35 when fitted with a solid sphere model.
[0231] Example 5 This example demonstrates the performance characteristics of an exemplary cation exchange membrane. A nonwoven glass fiber porous support membrane was cut into a 2.5 cm diameter circle and bordered with silicone and a UV-curable polymer such that the border width was 0.7 cm, leaving an active area available for the cation exchange membrane of approximately 1 cm. 2 The nonwoven glass is binder-free, has a thickness of 460 μm, a porosity of about 60% and a density of about 0.2 g / cm 3The TEOS:MPTES and HO:silicon ratios of the precursor sol were varied in this experiment, while the acidic water (HCl) concentration was kept constant at 0.3 M. TEOS:MPTES mass ratios of 80 / 20, 70 / 30, and 60 / 40 and water / silicon molar ratios of 2, 3, 4, and 5 were used. For a given TEOS:MPTES and HO:silicon ratio, four cation membranes were prepared to incorporate error bars. All samples were prepared with two dip coats in the TEOS / MPTES solution for 1 min each, followed by an overnight drying step. After the two coats, the cation exchange membranes were rinsed with deionized water (DI) for 30 min and immersed in 20 wt. % HO for 24 h for oxidation. The oxidation step was followed by a further 30 min rinse step in deionized water, and the resulting cation exchange membranes were immersed in a 4 M H2SO4 solution for 2 h to be tested for area specific resistance (ASR) and then permeability.
[0232] Figures 10A-10C show that significant improvements in proton:vanadium ion selectivity are achievable at lower MPTES loadings. However, in applications where proton conductivity is important, it may be advantageous to select a different ratio to improve proton conductivity and ion selectivity. No significant trends are observed with respect to the HO:silicon molar ratio over this range of conditions (Figure 10C).
[0233] Example 6 This example demonstrates the performance characteristics of exemplary cation exchange membranes. Cation exchange membranes were prepared on nonwoven glass fiber porous support membranes (thickness before coating = 460 μm) by immersing each porous support membrane in a solution of TEOS:MPTES (80:20 mass ratio) for 1 minute, drying the coated porous support membrane, and immersing it again in the TEOS:MPTES mixture for 1 minute. In this experiment, the water:silicon ratio of the TEOS:MPTES precursor solution as well as the hydrochloric acid strength were varied. The resulting cation exchange membranes were dried flat, rinsed with deionized water, and oxidized in 20% hydrogen peroxide for 24 hours. After oxidation, the cation exchange capacity of these resulting cation exchange membranes was measured.
[0234] Figure 11A shows the cation exchange capacity as a function of the water:silicon molar ratio and the HCl concentration in the precursor solution. This data demonstrates that a lower water:silicon molar ratio and a relatively low acid concentration improves the cation exchange capacity. Figure 11B shows the density of the cation exchange membrane as a function of the water:silicon molar ratio and the HCl concentration in the precursor solution. This data demonstrates that a lower water:silicon value and a relatively low acid concentration increases the density of the cation exchange membrane.
[0235] Example 7 This example illustrates the performance characteristics of exemplary cation exchange membranes. Cation exchange membranes were prepared on nonwoven glass fiber porous support membranes (thickness before coating = 460 μm) by immersing each porous support membrane in a solution of TEOS:MPTES for 1 minute, drying the porous support membrane, and immersing it again in the TEOS:MPTES mixture for 1 minute. In this experiment, the TEOS:MPTES mass ratio and the water:silicon molar ratio in the TEOS:MPTES precursor solution were varied. The initial acid (HCl) concentration was kept constant at 0.3 M. The resulting cation exchange membranes were dried flat, rinsed with deionized water, and oxidized in 20% hydrogen peroxide for 24 hours. After oxidation, the cation exchange capacity of these resulting cation exchange membranes was measured.
[0236] FIG. 12A shows the cation exchange capacity as a function of the TEOS:MPTES mass ratio and the water:silicon molar ratio. Increasing the amount of MPTES increases the number of sulfonic acid groups present and therefore increases the cation exchange capacity within the measured range of TEOS:MPTES ratios. As seen in Example 6, the lower the water:silicon value, the higher the cation exchange capacity. FIG. 12B shows the density of the cation exchange membrane as a function of the TEOS:MPTES mass ratio and the water:silicon molar ratio. The acid concentration was held constant. Varying the TEOS:MPTES mass ratio does not have a significant effect on the membrane density. As seen previously in Example 6, the lower the water:silicon ratio, the higher the density. FIG. 12C shows the cation exchange capacity as a function of the TEOS:MPTES mass ratio and using a 2:1 water:silicon molar ratio (i.e., R=2). FIG. 12C shows that the cation exchange capacity increases with increasing MPTES content in TEOS:MPTES solutions up to a certain point, even at higher ratios of MPTES, where the cation exchange capacity begins to decrease (see data points at 40:60 and 50:50 TEOS:MPTES mass ratios).
[0237] Example 8 This example illustrates the characterization of an exemplary cation exchange membrane. Several materials with different structures were investigated as porous support membranes for silica-based ceramics. Porous support membranes were screened with equivalent formulations of silica-based ceramics prepared by co-condensation of tetraethyl orthosilicate (TEOS) with (3-mercaptopropyl)triethoxysilane (94% pure, MPTES) in the presence of acidic water and subsequent gelation. Specifically, TEOS was stirred with MPTES (80 / 20 by mass) using 0.3 M HCl (2 mol Si:1 mol HO) on a hot plate at 40°C for 4 hours. After mixing the solution containing the silicon-containing precursor, the solution was monophasic, and a known volume (50 μL / cm ) of solution was added. 2 ) was drop-cast onto the porous support membrane, or the porous support membrane was submerged in excess solution for more than 5 minutes but less than 1 hour.
[0238] SEM was used to determine whether the amount of silica-based ceramic filling the macropores of the porous support membrane was sufficient without excess silica-based ceramic material on the resulting membrane surface. The cation exchange membranes fabricated in this example included samples with porous support membranes that showed incomplete macropore filling (e.g., one sample had a silica-based ceramic filling of 75% of the pore volume of the porous support and a surface excess thickness of 0 microns), complete macropore filling with a slight surface excess (e.g., one sample had a silica-based ceramic filling of 99% of the pore volume of the porous support and a surface excess thickness of 0 to 50 microns), and complete macropore filling with a surface excess of silica-based ceramic (e.g., one sample had a silica-based ceramic filling of >99.5% of the pore volume of the porous support and a surface excess thickness of 100 to 200 microns).
[0239] Furthermore, the cation exchange membranes fabricated included samples with complete macropore filling without significant ceramic excess on support structures composed of other materials. For example, cation exchange membranes with woven glass fiber porous support membranes had silica-based ceramic loading of 98% of the pore volume of the porous support and a surface excess thickness of 0 to 130 microns. Cation exchange membranes with polypropylene porous support membranes had silica-based ceramic loading of 96% of the pore volume of the porous support and a surface excess thickness of 0 to 80 microns. Cation exchange membranes with polytetrafluoroethylene porous support membranes had silica-based ceramic loading of >99.9% of the pore volume of the porous support membrane and a surface excess thickness of 0 to 10 microns. Successful membranes were prepared using woven and nonwoven support structures composed of glass fiber, polypropylene, polyethylene, polytetrafluoroethylene, and cellulose. Their porosities ranged from 55% to 99%, and their thicknesses ranged from 35 μm to 460 μm. 13A-E are annotated SEM images of exemplary cation exchange membranes. The annotations show porous support fibers 401, silica-based ceramic in the form of silica-based ceramic 402, unfilled voids in porous support 403, membrane thickness 404, and surface excess 405.
[0240] Example 9 This example compares the mechanical burst properties of various cation exchange membranes. The cation exchange membranes were fabricated by infiltrating a porous support membrane with a sol-gel mixture to form a self-assembled silica-based ceramic containing nanopores within the membrane's boundaries. Two possible porous support membranes were tested: a polypropylene-based and a nonwoven glass fiber-based porous support membrane. To perform the mechanical burst test, the uncoated porous support membrane was first cut into a 40 mm diameter disk and edged with UV / visible light-cured alkoxysilicone prior to the sol-gel process. This built-in edge was approximately 2.5 mm wide and functioned as a gasket when fastened tightly by rings on both sides.
[0241] Polypropylene-supported cation exchange membranes were fabricated on polypropylene porous support membranes with a nominal thickness of 220 μm. The uncoated porous support membrane was first immersed in 50 mL of fresh tetraethyl orthosilicate (TEOS):(3-mercaptopropyl)triethoxysilane (MPTES) solution (mass ratio 80:20, water:silicon-containing precursor molar ratio equal to 2:1, pH = 0.523) for 10 minutes. The coated porous support membrane was dried in a fume hood for 20 hours, and then a second coating was applied by immersion in a freshly prepared TEOS:MPTES solution (same composition) for 10 minutes. The coated porous support membrane was then dried again in a fume hood for 20 hours. The resulting membranes were oxidized by immersing them in a 20% by volume HO solution for 24 hours. The resulting oxidized membranes were then rinsed and kept hydrated in deionized water.
[0242] The nonwoven glass fiber-based cation exchange membrane was prepared with a typical thickness of 460 μm, a porosity of about 60%, and a density of about 0.2 g / cm. 3The uncoated porous support membrane was first immersed in 50 mL of fresh TEOS:MPTES solution (mass ratio 80:20, water to silica molar ratio equal to 2:1, pH = 0.523) for 5 minutes. The coated membrane was dried in a fume hood for 20 hours, and then a second coating was applied by immersing the coated porous support membrane in a freshly prepared TEOS:MPTES solution (same composition) for 10 minutes. The coated porous support membrane was then dried again in a fume hood for 20 hours. The resulting membranes were oxidized by immersing them in a 20% by volume H2O2 solution for 24 hours. The resulting membranes were then rinsed and kept hydrated in deionized water.
[0243] The average mechanical burst strengths of the polypropylene-supported and nonwoven glass fiber-supported membranes were tested to be 23.9 ± 1.6 PSI and 41.0 ± 1.2 PSI, respectively. While these membranes had lower mechanical burst strengths than a commercially available polymer membrane (Nafion 212), this result does not preclude their operation in a stack environment. The mechanical burst strengths of the polypropylene-supported and nonwoven glass-supported membranes are summarized in Figure 14, along with a typical failure burst pressure point of 2.1 PSI. This example demonstrates that cation-exchange membrane mechanical properties are, in some cases, related to the porous support membrane itself. Thicker and more robust nonwoven glass porous support membranes exhibited better mechanical properties than thinner polypropylene membranes for the same TEOS:MPTES formulation. In addition to thickness, the presence of binders, material type, and structure (e.g., cell or weave) can affect mechanical properties.
[0244] Example 10 This example demonstrates the structural characteristics of various cation exchange membranes. The cation exchange membranes in this example were fabricated on nonwoven glass porous support membranes with polymer edging according to the following procedure. The porous support membranes were fabricated from borosilicate glass fibers without binders, with an average (mean) pore size of 1 micron. The porous support membranes were initially 254 microns thick prior to sol-gel impregnation. The porous support membranes were first edged with UV-curable silicone to form disks with an outer diameter of 35 mm and an active area inner diameter of 10 mm to 15 mm. Initial mixtures containing varying mass ratios of TEOS:MPTES (85:15, 80:20, 75:25, 70:30, 60:40) were prepared, and 0.3 M hydrochloric acid was added to each to achieve a final water:silicon molar ratio of 2:1. Each mixture was stirred and heated to 40°C for 4 hours before being applied to the porous support membrane. The coated porous support membrane was dried overnight, and then a second coat was applied following the same procedure. The resulting cation-exchange membrane was oxidized in 20% hydrogen peroxide for 24 hours at ambient temperature before testing. SAXS analysis showed that the cation-exchange membranes had an increasing trend in porosity from 7% to 30% and a slight increase in the pore radius of the silica-based ceramic from 5.7 Å to 7.0 Å as the TEOS:MPTES mass ratio changed from 85:15 to 75:25, as shown in Figures 15A and 15B. Figure 15C shows sodium ion conductivity measurements, which indicate that sodium ion conductivity decreased as the TEOS:MPTES mass ratio changed from 60:40 to 80:20. Figure 15D shows permselectivity measurements, which indicate that permselectivity increased as the TEOS:MPTES mass ratio changed from 60:40 to 80:20.
[0245] Example 11 This example demonstrates the structural characteristics of various cation exchange membranes. The cation exchange membranes of this example were fabricated on nonwoven porous support membranes with polymer edging according to the following procedure. The porous support membranes were fabricated from polypropylene with an average (mean) pore size of 5 microns. The porous support membranes were initially 190 microns thick before sol-gel impregnation. Initial mixtures of MPTES and TEOS containing varying mole percentages of MPTES and TEOS (5 mol%, 10 mol%, 15 mol%, 25 mol%, 30 mol%, 35 mol%, 40 mol%) were prepared, and 0.3 M hydrochloric acid was added to each to achieve a final water:silicon molar ratio of between 2:1. Each mixture was stirred and heated to 40°C for 1 hour before being applied to the porous support membrane. The coated porous support membranes were dried overnight, and then three additional coats were applied according to the same procedure. The resulting cation exchange membranes were oxidized in 20% hydrogen peroxide for 24 hours at ambient temperature before testing.
[0246] Small-angle neutron scattering (SANS) experiments were performed on each cation exchange membrane in both the dry and hydrated states. Figure 16A shows the one-dimensional SANS data for each membrane in the dry state. Each dry cation exchange membrane exhibited a peak, and membranes obtained from high MPTES loading tended to have a peak at a lower q value. Figure 16B shows the measured average pore size (circles) and inter-pore distance (squares) for the dried membranes obtained from fitting the SANS data using the Teubner-Strey model described above. Figure 16B shows the trend of higher MPTES loading resulting in larger pore size and inter-pore distance in the dry state.
[0247] Figures 16C, 16D, 16E, and 16F show a comparison of SANS data for membranes (5 mol%, 15 mol%, 30 mol%, and 40 mol% MPTES, respectively) in the dry (filled circles) and hydrated (open circles) states. The data show that at low MPTES loadings, such as 5 mol%, little to no change in pore structure (e.g., pore size, mathematical model) was observed between the dry and hydrated states. However, at a higher MPTES loading of 15 mol%, the pore size increased from 1.3 to 1.7 nm upon hydration, while the pores maintained a structure that fit the Teubner-Strey model. Surprisingly, at 30 mol% and 40 mol% MPTES loadings, the pore size significantly increased upon hydration (by 2 and 2.4 times, respectively). Furthermore, at these higher MPTES loadings of 30 mol% and 40 mol%, the pore structure of the silica-based ceramics changed from the following Teubner-Strey structure in the dry state to a core-shell structure in the hydrated state.
[0248] Figures 16G and 16H show SANS data for hydrated cation exchange membranes with MPTES loadings of 30 mol% and 40 mol%, respectively, as a function of the percentage of heavy water (DO) present. The data show a slight change in pore structure when heavy water is present. The data also show that the tested membranes shown in Figures 16G and 16H had a core-shell pore structure.
[0249] While several embodiments of the present invention have been described and illustrated herein, those skilled in the art will readily envision various other means and / or structures for performing the functions and / or obtaining the results and / or one or more of the advantages described herein. Each such variation and / or modification is considered to be within the scope of the present invention. More generally, those skilled in the art will readily appreciate that all parameters, dimensions, materials, and configurations described herein are intended to be exemplary, and that the actual parameters, dimensions, materials, and / or configurations will depend on the specific application or applications for which the teachings of the present invention are used. Those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, many equivalents to the specific embodiments of the invention described herein. Accordingly, it should be understood that the above-described embodiments are presented by way of example only, and that, within the scope of the appended claims and their equivalents, the invention may be practiced otherwise than as specifically described and claimed. The present invention relates to each individual feature, system, article, material, and / or method described herein. Furthermore, any combination of two or more such features, systems, articles, materials and / or methods, if such features, systems, articles, materials and / or methods are not mutually inconsistent, is included within the scope of the present invention.
[0250] The indefinite articles "a" and "an," as used in the specification and claims, unless the context clearly indicates otherwise, should be understood to mean "at least one."
[0251] The term "and / or" as used in the specification and claims should be understood to mean "either or both" of the elements so conjoined, i.e., elements that are conjunctively present in some cases and disjunctively present in other cases. Unless expressly stated otherwise, other elements may optionally be present other than the elements specifically identified by the "and / or" clause, whether related or unrelated to the elements specifically identified. Thus, as a non-limiting example, a reference to "A and / or B," when used with an open-ended term such as "comprising," can refer to, in one embodiment, A but not B (optionally including elements other than B); in another embodiment, B but not A (optionally including elements other than A); in yet another embodiment, both A and B (optionally including other elements), etc.
[0252] As used in this specification and the claims, "or" should be understood to have the same meaning as "and / or" as defined above. For example, when separating items in a list, "or" or "and / or" shall be interpreted as being inclusive, i.e., including not only at least one of a number or list of elements, but also two or more, and, optionally, further unlisted items. A specifically expressly stated limiting term, such as "only one of" or "exactly one of," or, when used in the claims, "consisting of," refers to the inclusion of exactly one element of a number or list of elements. In general, the term "or" as used herein, when preceded by exclusive terms such as "either," "one of," "only one of," or "exactly one of," shall be interpreted simply as indicating exclusive alternatives (i.e., "one or the other, but not both"). When used in the claims, "consisting essentially of" shall have its ordinary meaning as used in the field of patent law.
[0253] As used in this specification and claims, the phrase "at least one," in reference to a list of one or more elements, should be understood to mean at least one element selected from any one or more of the elements in the list of elements, but does not necessarily include at least one of every element specifically listed in the list of elements, and does not exclude any combinations of elements in the list of elements. This definition also allows for the optional presence of elements other than those specifically identified in the list of elements to which the phrase "at least one" refers, whether related or unrelated to the specifically identified elements. Thus, as a non-limiting example, "at least one of A and B" (or, equivalently, "at least one of A or B" or, equivalently, "at least one of A and / or B") can refer in one embodiment to at least one, optionally two or more, A, and no B (and optionally including elements other than B); in another embodiment to at least one, optionally two or more, B, and no A (and optionally including elements other than A); in yet another embodiment to at least one, optionally two or more, A, and at least one, optionally two or more, B (and optionally including other elements), etc.
[0254] In the claims, as well as in the foregoing specification, all transitional phrases such as "comprise," "include," "carry," "have," "contain," "accompany," "hold," and the like, are to be understood to be open-ended, i.e., meaning including but not limited to. Only the transitional phrases "consisting of" and "consisting essentially of" shall be closed or semi-closed transitional phrases, respectively, as set forth in the United States Patent Office Manual of Patent Examining Procedures, Section 2111.03. The disclosure of this specification may include the following aspects. (Aspect 1) a porous support membrane; a silica-based ceramic coating formed on and / or within the porous support membrane; a silica-based ceramic having sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and a cation exchange membrane having a sodium ion (Na+ ) Conductive cation exchange membrane. (Aspect 2) A cation exchange membrane comprising a silica-based ceramic, the cation exchange membrane having a water absorption rate of 10% by weight or more and a linear expansion of 10% or less. (Aspect 3) a porous support membrane; a silica-based ceramic coating at least a portion of the porous support membrane; wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the silica-based ceramic has an average pore size of 10 nm or less. (Aspect 4) a porous support membrane; a silica-based ceramic coating formed on and / or within the porous support membrane; wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the sulfonate and / or sulfonic acid groups are substantially uniformly distributed within the silica-based ceramic throughout the thickness of the coating. (Aspect 5) A cation exchange membrane, a porous support membrane; a silica-based ceramic forming a coating on and / or within the porous support membrane, the silica-based ceramic comprising sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, the sulfonate and / or sulfonic acid groups being directly adjacent to a surface of the porous support membrane; a border material comprising a polymer material along at least a portion of the edge of the cation exchange membrane; A cation exchange membrane comprising: (Aspect 6) A cation exchange membrane, a porous support membrane; a silica-based ceramic coating at least a portion of the porous support membrane, the silica-based ceramic comprising sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and wherein 50% or more of the pore volume of the porous support membrane is filled by the silica-based ceramic; a border material comprising a polymer material along at least a portion of the edge of the cation exchange membrane; A cation exchange membrane comprising: (Aspect 7) a porous support membrane; a silica-based ceramic coating formed on and / or within the porous support membrane; wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the cation exchange membrane has a cation exchange capacity of 0.01 meq / g or greater. (Aspect 8) a porous support membrane; a silica-based ceramic coating at least a portion of the porous support membrane; wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the sulfonate and / or sulfonic acid groups are present in the cation exchange membrane in an amount of 0.01 mmol or greater per gram of the cation exchange membrane. (Aspect 9) Silica-based ceramics containing sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic - Patents.com wherein the silica-based ceramic comprises Si in an amount equal to or greater than 6% by weight of the silica-based ceramic; the cation exchange material has a cation exchange capacity of 0.01 meq / g or more; A cation exchange material, wherein the silica-based ceramic has an average pore size of less than 10 nm. (Aspect 10) Silica-based ceramic containing Si in an amount of 6% by weight or more of the silica-based ceramic wherein the cation exchange membrane has a cation exchange capacity of 0.1 meq / g or more. (Aspect 11) A cation exchange membrane comprising a silica-based ceramic, the cation exchange membrane having a cation exchange capacity of 0.01 meq / g or more and a linear expansion of 10% or less. (Aspect 12) Silica-based ceramic containing Si in an amount of 6% by weight or more of the silica-based ceramic wherein the cation exchange membrane has a cation permselectivity of 65% or greater. (Aspect 13) Silica-based ceramic containing Si in an amount of 6% by weight or more of the silica-based ceramic A cation exchange membrane comprising: + Conductive cation exchange membrane. (Aspect 14) A cation exchange membrane containing a silica-based ceramic, the cation exchange membrane having a Na ion concentration of 0.00001 S / cm or more. + A cation exchange membrane having conductivity and a linear expansion of 10% or less. (Aspect 15) Silica-based ceramic containing Si in an amount of 6% by weight or more of the silica-based ceramic a cation exchange membrane comprising: 2 ) A cation exchange membrane having an osmotic water permeability of: (Aspect 16) Silica-based ceramic containing Si in an amount of 6% by weight or more of the silica-based ceramic wherein the silica-based ceramic contains pores, and the average diameter of the pores in the silica-based ceramic is at least 1.1 times larger when the cation exchange membrane is in a hydrated state than when the cation exchange membrane is in a dry state. (Aspect 17) Silica-based ceramic containing Si in an amount of 6% by weight or more of the silica-based ceramic 1. A cation exchange membrane comprising: When the cation exchange membrane is in a dry state, the silica-based ceramic pores fit a model of a small-angle scattering spectrum with intensity (I) as a function of the scattering vector, q, as follows:
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Claims
1. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic coating on and / or within the porous support membrane; wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the cation exchange membrane has a solubility of 0.00001 S / cm or more of sodium ions (Na + ) conductive, A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
2. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic coating at least a portion of the porous support membrane; wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the silica-based ceramic has an average pore size of 10 nm or less; A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
3. A cation exchange membrane, a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic forming a coating on and / or within the porous support membrane, the silica-based ceramic comprising sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, the sulfonate and / or sulfonic acid groups being directly adjacent to a surface of the porous support membrane, and the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane being 1:10, or greater; a border material comprising a polymer material along at least a portion of the edge of the cation exchange membrane; A cation exchange membrane comprising:
4. A cation exchange membrane, a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic coating at least a portion of the porous support membrane, the silica-based ceramic comprising sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, 50% or more of the pore volume of the porous support membrane being filled with the silica-based ceramic, and the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane being 10:1; a border material comprising a polymer material along at least a portion of the edge of the cation exchange membrane; A cation exchange membrane comprising:
5. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic coating on and / or within the porous support membrane; wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the cation exchange membrane has a cation exchange capacity of 0.01 meq / g or greater; A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
6. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic coating at least a portion of the porous support membrane; wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic, and the sulfonate and / or sulfonic acid groups are present in the cation exchange membrane in an amount of 0.01 mmol or more per gram of the cation exchange membrane; A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
7. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic that forms a coating on and / or within the porous support membrane, the silica-based ceramic comprising Si in an amount equal to or greater than 6% by weight of the silica-based ceramic; A cation exchange membrane comprising: A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
8. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic that forms a coating on and / or within the porous support membrane, the silica-based ceramic comprising Si in an amount equal to or greater than 6% by weight of the silica-based ceramic; A cation exchange membrane comprising: A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
9. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic that forms a coating on and / or within the porous support membrane, the silica-based ceramic comprising Si in an amount equal to or greater than 6% by weight of the silica-based ceramic; A cation exchange membrane comprising: + It has conductivity, A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
10. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic that forms a coating on and / or within the porous support membrane, the silica-based ceramic comprising Si in an amount equal to or greater than 6% by weight of the silica-based ceramic; A cation exchange membrane comprising: 2 ) has a water permeability of the following: A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
11. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic that forms a coating on and / or within the porous support membrane, the silica-based ceramic comprising Si in an amount equal to or greater than 6% by weight of the silica-based ceramic; wherein the silica-based ceramic contains pores, and the average diameter of the pores of the silica-based ceramic is at least 1.1 times larger when the cation exchange membrane is in a hydrated state than when the cation exchange membrane is in a dry state; A cation exchange membrane, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, is 1 or more.
12. a porous support membrane, said porous support membrane being in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; a silica-based ceramic that forms a coating on and / or within the porous support membrane, the silica-based ceramic comprising Si in an amount equal to or greater than 6% by weight of the silica-based ceramic; wherein the silica-based ceramic contains pores, and the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, and is 1 or more, wherein: When the cation exchange membrane is in a dry state, the pores of the silica-based ceramic fit a model of a small-angle scattering spectrum with intensity (I) as a function of the scattering vector, q, as follows: [Equation 1] In the formula, a, c 1 , and c 2 is an adjustable parameter, bck is the background scattering; When the cation exchange membrane is in a hydrated state, the pores of the silica-based ceramic fit a core-shell model of small-angle scattering spectra with intensity (I) as a function of scattering vector, q, as follows: I(q)=P(q)S(q)+bck [Equation 2] In the formula, R o is the radius of the structural unit (pore), and ρ solvent is the scattering length density of the silica-based ceramic, and D f is the fractal dimension, ξ is the correlation length, Γ is the standard mathematical gamma function, scale is the volume fraction of the constituent units of the measured silica-based ceramic, and V c is the volume of the core, and V s is the volume of the shell, and ρ c is the scattering length density of the core, and ρ s is the scattering length density of the shell, and ρ block is the scattering length density of the pore, and r c is the radius of the core, and r s is the radius of the shell and bck is the background scattering.
13. The cation exchange membrane according to any one of claims 1 to 12, wherein the porous support membrane is in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or a mesh.
14. The cation exchange membrane according to any one of claims 7 to 13, wherein the silica-based ceramic comprises sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic.
15. 15. The cation exchange membrane of any one of claims 1 to 6 and 14, wherein the sulfonate and / or sulfonic acid groups are directly adjacent to the surface of the porous support membrane.
16. 16. The cation exchange membrane according to any one of claims 1 to 6 and 14 to 15, wherein the sulfonate and / or sulfonic acid groups are present in the cation exchange membrane in an amount of 0.01 mmol or more per gram of the cation exchange membrane.
17. 17. The cation exchange membrane of any one of claims 1 to 6 and 14 to 16, wherein no intervening layer is present between the silica-based ceramic containing sulfonate and / or sulfonic acid groups and the porous support membrane.
18. 18. The cation exchange membrane according to claim 1, wherein the silica-based ceramic has an average pore size of 10 nm or less.
19. The cation exchange membrane according to any one of claims 1 to 4, 6 and 8 to 18, wherein the cation exchange membrane has a cation exchange capacity of 0.01 meq / g or more.
20. 20. The cation exchange membrane according to any one of claims 1 to 6 and 13 to 19, wherein the silica-based ceramic contains Si in an amount of 6% or more by weight of the silica-based ceramic.
21. The cation exchange membrane according to any one of claims 1 to 7 and 9 to 20, wherein the cation exchange membrane has a cation permselectivity of 65% or more.
22. The cation exchange membrane has a Na + The cation exchange membrane according to any one of claims 2 to 8 and 10 to 21, which has conductivity.
23. The cation exchange membrane has a flow rate of 100 mL / (hr·bar·m 2 The cation exchange membrane according to any one of claims 1 to 9 and 11 to 22, having an osmotic water permeability of 0.1 to 0.25 mm / s or less.
24. The cation exchange membrane according to any one of claims 1 to 10 and 12 to 23, wherein the silica-based ceramic comprises pores, and the average diameter of the pores of the silica-based ceramic is 1.1 times or more larger when the cation exchange membrane is in a hydrated state than when the cation exchange membrane is in a dry state.
25. The silica-based ceramic comprises pores, wherein: When the cation exchange membrane is in a dry state, the pores of the silica-based ceramic fit a model of a small-angle scattering spectrum with intensity (I) as a function of the scattering vector, q, as follows: [Equation 3] In the formula, a, c 1 , and c 2 is an adjustable parameter, bck is the background scattering; When the cation exchange membrane is in a hydrated state, the pores of the silica-based ceramic fit a core-shell model of small-angle scattering spectra with intensity (I) as a function of scattering vector, q, as follows: I(q)=P(q)S(q)+bck [Equation 4] In the formula, R o is the radius of the structural unit (pore), and ρ solvent is the scattering length density of the silica-based ceramic, and D f is the fractal dimension, ξ is the correlation length, Γ is the standard mathematical gamma function, scale is the volume fraction of the constituent units of the measured silica-based ceramic, and V c is the volume of the core, and V s is the volume of the shell, and ρ c is the scattering length density of the core, and ρ s is the scattering length density of the shell, and ρ block is the scattering length density of the pore, and r c is the radius of the core, and r s 25. The cation exchange membrane according to any one of claims 1 to 11 and 13 to 24, wherein is the radius of the shell and bck is the background scattering.
26. The cation exchange membrane of any one of claims 1 to 25, wherein the silica-based ceramic is derived from a sol-gel.
27. 27. The cation exchange membrane according to any one of claims 1 to 26, wherein the silica-based ceramic has a molar ratio of silicon to sulfur of 1:1 or greater.
28. 28. The cation exchange membrane according to any one of claims 1 to 27, wherein the silica-based ceramic has a silicon to carbon molar ratio of 1:100 or greater.
29. The cation exchange membrane according to any one of claims 1 to 28, wherein the silica-based ceramic has an average pore diameter of 0.25 nm or more.
30. 30. The cation exchange membrane according to any one of claims 1 to 29, wherein the pores of the silica-based ceramic have an aspect ratio of 40:1 or less.
31. The pores of the silica-based ceramic are 10 or less 2 The cation exchange membrane according to any one of claims 1 to 30, wherein the small-angle scattering spectrum is fitted to a spherical model with a value of / N, where N is the number of small-angle scattering data points across the spherical model fitting range.
32. The cation exchange membrane according to any one of claims 1 to 31, wherein the silica-based ceramic has a fractal porous structure.
33. 33. The cation exchange membrane according to any one of claims 1 to 32, wherein the pores of the silica-based ceramic have a log-normal polydispersity index of pore radius of 0.8 or less.
34. The cation exchange membrane according to any one of claims 1 to 33, wherein the porous support membrane has a volume porosity of 10% or more.
35. The cation exchange membrane of any one of claims 1 to 2 and 5 to 34, wherein the cation exchange membrane comprises a edging material comprising a polymeric material.
36. The cation exchange membrane according to any one of claims 1 to 35, wherein the cation exchange membrane has a water absorption rate of 1% or more.
37. 37. The cation exchange membrane of any one of claims 1 to 36, wherein the porous support membrane has a mechanical burst pressure of 2.0 pounds per square inch (PSI) or greater.
38. The silica-based ceramic is derived from a compound having the following structure (IV) and a compound having the following structure (VIII): 【Chemical 1】 【Chemistry 2】 (In the formula, R 1 , R 2 , and R 3 are independently optionally substituted branched or unbranched C 1~18 alkoxy and halo, and L is optionally substituted C 1~18 alkylene and arylene; R 7 are independently hydrogen or optionally substituted C 1~18 alkyl), The cation exchange membrane according to any one of claims 1 to 37, wherein the mass ratio of structure (VIII):structure (IV) is 55:45 or more and 75:25 or less.
39. A method for using the cation exchange membrane of any one of claims 1 to 38 in an electrochemical application, comprising: contacting the cation exchange membrane with an electrolyte; and passing an electric current through an electrode in electrical communication with said electrolyte; A method comprising:
40. A method for using the cation exchange membrane of any one of claims 1 to 38 as an adsorption material, comprising flowing a fluid through the cation exchange membrane; and adsorbing components of said fluid; A method comprising:
41. A method for using a cation exchange membrane according to any one of claims 1 to 38 in a separation application, the method comprising applying transmembrane pressure to the cation exchange membrane.
42. A method for forming a cation exchange membrane, comprising: exposing a porous support membrane coated with a silica-based ceramic containing oxidizable functional groups to an oxidizing agent, wherein the silica-based ceramic contains Si in an amount of 6% or more by weight of the silica-based ceramic; and oxidizing the oxidizable functional groups to form sulfonate or sulfonic acid groups, thereby forming the cation exchange membrane; the porous support membrane is in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or mesh, an open-cell structure, a fibril and node structure, or an open-cell foam; The method of claim 1, wherein the weight ratio of the silica-based ceramic to the porous support membrane in the cation exchange membrane is 10, or greater.
43. The method of claim 42, wherein the porous support membrane is in the form of a nonwoven fabric or mesh, a veil, a knitted fabric, a woven fabric or a mesh.
44. The method of claim 42 or 43, wherein the silica-based ceramic contains sulfonate and / or sulfonic acid groups covalently bonded to the silica-based ceramic.
45. A method according to any one of claims 42 to 44, wherein the sulfonate and / or sulfonic acid groups are directly adjacent to the surface of the porous support membrane.
46. A method described in any one of claims 42 to 45, wherein the sulfonate and / or sulfonic acid groups are present in the cation exchange membrane in an amount of 0.01 mmol or more per gram of the cation exchange membrane.
47. The method of claim 42, wherein no intervening layer is present between the silica-based ceramic containing the sulfonate and / or sulfonic acid groups and the porous support membrane.
48. A method described in any one of claims 42 to 47, wherein the silica-based ceramic has an average pore diameter of 10 nm or less.
49. A method described in any one of claims 42 to 48, wherein the cation exchange membrane has a cation exchange capacity of 0.01 meq / g or more.
50. A method described in any one of claims 42 to 49, wherein the silica-based ceramic contains Si in an amount of 6% or more by weight of the silica-based ceramic.
51. A method described in any one of claims 42 to 50, wherein the cation exchange membrane has a cation selective permeability of 65% or more.
52. The method of any one of claims 42 to 51, wherein the cation exchange membrane has a Na + conductivity of 0.00001 S / cm or more.
53. The method of any one of claims 42 to 52, wherein the cation exchange membrane has an osmotic water permeability of 100 mL / (hr·bar·m 2 ) or less.
54. A method described in any one of claims 42 to 53, wherein the silica-based ceramic contains pores, and the average diameter of the pores in the silica-based ceramic is 1.1 times or more larger when the cation exchange membrane is in a hydrated state than when the cation exchange membrane is in a dry state.
55. The silica-based ceramic comprising pores, wherein: When the cation exchange membrane is in a dry state, the pores of the silica-based ceramic fit a model of a small-angle scattering spectrum with intensity (I) as a function of the scattering vector, q, as follows: [Equation 5] where a, c 1 , and c 2 are adjustable parameters, bck is the background scattering; When the cation exchange membrane is in a hydrated state, the pores of the silica-based ceramic fit a core-shell model of small-angle scattering spectra with intensity (I) as a function of scattering vector, q, as follows: I(q)=P(q)S(q)+bck [Equation 6] 55. The method of any one of claims 42 to 54, wherein R o is the radius of the structural unit (pore), ρ solvent is the scattering length density of the silica-based ceramic, D f is the fractal dimension, ξ is the correlation length, Γ is the standard mathematical gamma function, scale is the measured volume fraction of the structural unit of the silica-based ceramic, V c is the volume of the core, V s is the volume of the shell, ρ c is the scattering length density of the core, ρ s is the scattering length density of the shell, ρ block is the scattering length density of the pore, r c is the radius of the core, r s is the radius of the shell, and bck is the background scattering.
56. The method of any one of claims 42 to 55, wherein the silica-based ceramic is derived from a sol-gel.
57. The method of any one of claims 42 to 56, wherein the silica-based ceramic has a molar ratio of silicon to sulfur of 1:1 or greater.
58. A method described in any one of claims 42 to 57, wherein the silica-based ceramic has a molar ratio of silicon to carbon of 1:100 or more.
59. A method described in any one of claims 42 to 58, wherein the silica-based ceramic has an average pore diameter of 0.25 nm or more.
60. A method described in any one of claims 42 to 59, wherein the pores of the silica-based ceramic have an aspect ratio of 40:1 or less.
61. A method described in any one of claims 42 to 60, wherein the pores of the silica-based ceramic are fitted to a spherical model of the small-angle scattering spectrum with a chi2 / N value of 10 or less, where N is the number of small-angle scattering data points spanning the spherical model fit range.
62. A method described in any one of claims 42 to 61, wherein the silica-based ceramic has a fractal porous structure.
63. A method described in any one of claims 42 to 62, wherein the pores of the silica-based ceramic have a log-normal polydispersity index of pore radius of 0.8 or less.
64. A method described in any one of claims 42 to 63, wherein the porous support membrane has a volume porosity of 10% or more.
65. A method described in any one of claims 42 to 64, wherein the cation exchange membrane comprises a edging material comprising a polymer material.
66. A method described in any one of claims 42 to 65, wherein the cation exchange membrane has a water absorption rate of 1% or more.
67. A method described in any one of claims 42 to 66, wherein the porous support membrane has a mechanical burst pressure of 2.0 pounds per square inch (PSI) or more.
68. The silica-based ceramic, wherein the silica-based ceramic is derived from a compound having the following structure (IV) and a compound having the following structure (VIII): 【Chemical 1】 【Chemistry 2】 wherein R 1 , R 2 , and R 3 are independently selected from optionally substituted branched or unbranched C 1-18 alkoxy and halo; L is selected from optionally substituted C 1-18 alkylene and arylene; and R 7 is independently selected from hydrogen or optionally substituted C 1-18 alkyl.
68. The method of any one of claims 42 to 67, wherein the weight ratio of Structure (VIII):Structure (IV) is greater than or equal to 55:45 and less than or equal to 75:25.
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