Composite membrane

The composite membrane with a bicontinuous network of oppositely charged ionic polymers addresses inefficiencies in existing membranes by enhancing ion transport and mechanical strength, achieving efficient and cost-effective production.

JP7789758B2Active Publication Date: 2025-12-22FUJIFILM MANUFACTURING EUROPE BV +1
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Patent Information

Application Number
JP2023514717
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-09-03
Filing Date
2021-09-02
Publication Date
2025-12-22
Estimated Expiration
2041-09-02

AI Technical Summary

Technical Problem

Existing ion exchange membranes lack improved properties such as high permselectivity, low electrical resistivity, good mechanical strength, low swelling under aqueous conditions, and stability at extreme pH, while also being produced inefficiently and expensively.

Method used

A composite membrane structure comprising multiple layers of porous supports and ionic polymers, with oppositely charged ionic polymers forming a bicontinuous network to enhance ion transport and prevent recombination, achieved through a method involving phase separation and curing of curable compositions.

Benefits of technology

The composite membrane exhibits increased ion transport efficiency, reduced ion recombination, and improved mechanical strength, while being produced efficiently and cost-effectively.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A composite membrane comprising: a) a first layer comprising a first porous support and a first ionic polymer present in the pores of the first porous support; b) a second layer comprising a second porous support and a second ionic polymer present in the pores of the second porous support; and c) a third layer comprising a third porous support, a third ionic polymer, and a fourth ionic polymer, the third ionic polymer present in the pores of the third porous support; (ii) a third layer c) is sandwiched between the first layer a) and the second layer b), (iii) the third ionic polymer comprises a network of pores and the fourth ionic polymer resides within the pores of the third ionic polymer, and (iv) one of the third ionic polymer and the fourth ionic polymer is a cationic polymer and the other is an anionic polymer.
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Description

[Technical Field]

[0001] The present invention relates to composite membranes and methods for their preparation and use. Ion exchange membranes are used in electrodialysis, electrodialysis reversal, electrolysis, diffusion dialysis, and several other processes. Typically, the transport of ions through a membrane occurs under the influence of a driving force such as an ion concentration gradient or, alternatively, an electric potential gradient. [Background technology]

[0002] Ion exchange membranes are generally classified as cation exchange membranes or anion exchange membranes depending on their predominant charge. Cation exchange membranes contain negatively charged groups that allow cations to pass but reject anions, while anion exchange membranes contain positively charged groups that allow anions to pass but reject cations. Bipolar ion exchange membranes have both a cation layer and an anion layer.

[0003] Some ion exchange membranes include a porous support that provides mechanical strength. Such membranes are often referred to as "composite membranes" due to the presence of both an ionically charged polymer, which discriminates between oppositely charged ions, and a porous support that provides mechanical strength.

[0004] Composite membranes are known, for example, from US 4,253,900, which describes a bipolar membrane containing a monobead layer of ion-exchange resin. WO 2017 / 205458 and an article by McClure in ECS Transactions, 2015, 69(18), pp. 35-44, describe bipolar membranes containing a bonded layer of interpenetrating polymer nanofibers or microfibers of anion-exchange polymers and cation-exchange polymers. Other examples of composite membranes are described, for example, in EP 3,604,404, in which one of the layers contains ion-exchange resin powder, and in US 4,673,454, which discloses the use of ion-exchange resin in the interfacial layer. It would be desirable to provide composite membranes with improved properties, such as high permselectivity, low electrical resistivity, good mechanical strength, low swelling under aqueous conditions, and stability at extreme pH. Ideally, such membranes could be produced quickly, efficiently, and inexpensively. Summary of the Invention [Means for solving the problem]

[0005] According to a first aspect of the present invention, there is provided a composite membrane comprising: a) a first layer comprising a first porous support and a first ionic polymer present in the pores of the first porous support; b) a second layer comprising a second porous support and a second ionic polymer present in the pores of the second porous support; c) a third layer comprising a third porous support, a third ionic polymer, and a fourth ionic polymer, wherein the third ionic polymer is present in the pores of the third porous support; and Including, (i) one of the first ionic polymer and the second ionic polymer is a cationic polymer and the other is an anionic polymer; (ii) a third layer c) is sandwiched between the first layer a) and the second layer b); (iii) the third ionic polymer comprises a network of pores, and the fourth ionic polymer resides within the pores of the third ionic polymer; (iv) one of the third ionic polymer and the fourth ionic polymer is a cationic polymer, and the other is an anionic polymer; A composite membrane is provided.

[0006] As used herein (including the claims), the verb "comprise" and its conjugations are used in their open-ended sense to mean that the items following the word are included, but not that items not specifically mentioned are excluded. Additionally, reference to an element by the indefinite article "a" or "an" does not exclude the possibility that more than one of the element is present, unless the context clearly requires that one and only one of the element is present. Thus, the indefinite article "a" or "an" typically means "at least one." Also, herein, a third ionic polymer comprising a network of voids is often abbreviated as "third ionic polymer."

[0007] Preferably, the porous support is non-ionic. In a preferred embodiment, the third ionic polymer can be obtained by phase separation of the third ionic polymer from the composition used to prepare it. In this way, a third ionic polymer containing a network of pores can be obtained, and the pores can be used to receive a fourth ionic polymer (or a curable composition used to prepare the fourth ionic polymer) to create the third layer c). In one embodiment, the curable composition used to prepare the fourth ionic polymer is the same as the curable composition used to prepare the first ionic polymer. In this way, a composite membrane can be obtained in which the first ionic polymer is the same as the fourth ionic polymer.

[0008] Preferably, the third ionic polymer comprises a porous first polymer domain comprising a network of ionic groups and pores. Preferably, the fourth ionic polymer comprises a second polymer domain comprising ionic groups having an opposite charge to that of the ionic groups of the first polymer domain. In this embodiment, the second polymer domain is located in the pores of the first polymer domain (i.e., in the pores of the third ionic polymer).

[0009] In a particularly preferred embodiment, the third and fourth ionic polymers are present in the third layer c) as a bicontinuous network comprising the third and fourth ionic polymers. The third and fourth ionic polymers preferably provide two separate, continuous, intermingled, non-mixed, non-encapsulated, non-fibrillar polymer domains, one carrying an anionic charge and the other carrying a cationic charge. Optionally, the third layer c) contains one or more additional polymer domains, each of which carries an anionic or cationic charge.

[0010] In a preferred embodiment, the fourth ionic polymer is chemically identical to the first ionic polymer in the first layer a), hi another preferred embodiment, the third ionic polymer has the same charge and / or is chemically identical to the second ionic polymer in the second layer b).

[0011] In another preferred embodiment, the fourth ionic polymer is chemically identical to the first ionic polymer in the first layer a) and the third ionic polymer is chemically identical to the second ionic polymer in the second layer b).

[0012] The third layer c) preferably comprises at least two continuous and intermingled polymer domains (one domain originating from the third ionic polymer and the other domain originating from the fourth ionic polymer) that have a large contact area with each other. This may be achieved by the third ionic polymer comprising a network of pores and a fourth ionic polymer that is different from the third ionic polymer (e.g., one is cationic and the other anionic) and resides within the pores of the third ionic polymer. As a result of this large contact area between the two (or more) ionic polymers present in the third layer, when the composite membrane is used as a bipolar membrane, H + and OH - The amount of water molecules dissociated into the membrane per unit time increases, thereby increasing the productivity of the composite bipolar membrane.

[0013] The large contact area between the third and fourth ionic polymers present in the third layer is preferably provided by a bicontinuous network, in which the two (or more) polymer domains derived from the third and fourth ionic polymers are oppositely charged (i.e., one domain has an anionic charge and the other has a cationic charge). The advantage of a bicontinuous network is that the newly generated anions (e.g., OH) created at the interface between the third and fourth ionic polymers (i.e., the interface of the two polymer domains) can be easily transported. - ) and cations (e.g., H + ) are separated into individual polymer domains immediately after their formation, preventing ionic recombination. In addition, the adhesion between the third and fourth ionic polymers in the third layer (i.e., the adhesion between the first and second polymer domains) is extremely strong as a result of entanglement and the large contact area between the third and fourth ionic polymers in the third layer c). The strong adhesion between the third and fourth ionic polymers is due to the formation of large water-filled blisters at the interface between the positively and negatively charged polymers of the bipolar membrane, where OH - and H +Prevents / reduces the so-called balloon effect, where ions can recombine to form water.

[0014] The composite membrane of the present invention preferably comprises an interface (first interface) between the first layer a) and the third layer c), and an interface (second interface) between the third layer c) and the second layer b), and preferably both the first interface and the second interface are uninterrupted, with no gaps and / or spaces between the first layer a) and the third layer c), and no gaps and / or spaces between the third layer c) and the second layer b).

[0015] In one embodiment, the third layer c) comprises a blend morphology of two continuous polymer domains, derived from the third and fourth ionic polymers, respectively, one of which (derived from the fourth ionic polymer) is located within the other (derived from the third ionic polymer), forming a co-continuous network (of the fourth ionic polymer within the third ionic polymer).

[0016] Preferably, each of the first and second polymer domains is contiguous and substantially comprises a single covalently bonded carbon backbone interconnecting it to itself. Preferably, the polymer domains are non-encapsulated, non-segregated, non-interrupted, and non-fibrillar (eg, not produced by electrospinning).

[0017] The bicontinuous network preferably comprises two (or more) continuous polymer domains in the same volume. In other words, the two (or more) continuous polymer domains coexist in the same volume in close proximity and are not uniformly mixed, so that each phase can be independently identified. Thus, the third and fourth ionic polymers are separate and not uniformly mixed with each other, and can be independently identified from each other, for example, by cutting the third layer c) and examining the cross section of the third layer c) using a scanning electron microscope. Thus, the third layer c) is very different from the layer formed by simply intermixing two oppositely charged polymers or by mixing two different curable compositions and then curing the mixture.

[0018] In the present invention, the third layer c) comprises a porous support in whose porous structure the third ionic polymer comprises a network of pores, and the fourth ionic polymer present within those pores preferably provides a (co-continuous network of) two polymer domains, one carrying an anionic charge and the other carrying a cationic charge. The two (or more) polymer domains (one originating from the third ionic polymer and the other originating from the fourth ionic polymer present within the network of pores of the third ionic polymer) occupy the pores of the porous support and preferably comprise a seamless (third) interface (the first and second interfaces between the third layer c) and the first and second layers a) and b), respectively. Thus, the composite membrane preferably includes an interface between the third layer c) and the first layer a), an interface between the third layer c) and the second layer b), and a third interface within the third layer c) between the third ionic polymer and the fourth ionic polymer. Preferably, this third interface is uninterrupted and does not have any gaps and / or spaces between the third ionic polymer and the fourth ionic polymer. Preferably, this third interface is not an interface between an ionic polymer and fused / compressed fibers, beads, or particles.

[0019] Preferably, the volume ratio of the third ionic polymer to the fourth ionic polymer in the third layer c) is such that the volume ratio of the anionic polymer to the cationic polymer in the third layer c) is from 0.1 to 0.9, more preferably from 0.2 to 0.8, in particular from 0.3 to 0.7, for example about 0.4, about 0.5, or about 0.6.

[0020] In one embodiment, the third ionic polymer is obtained by a method including polymerization-induced phase separation, more preferably, for example, photopolymerization-induced phase separation of the third ionic polymer from the composition used to prepare the polymer. This preference arises because such a method is particularly good at providing a third ionic polymer that can accept a fourth (oppositely charged) ionic polymer. In this method, the third ionic polymer is preferably formed by a photopolymerization reaction.

[0021] Preferably, the third ionic polymer comprises a network of pores with an average pore size of less than 5 μm, more preferably less than 2 μm, and particularly less than 1.2 μm. The pores between the third ionic polymers may then be filled with a curable composition, which may then be cured to provide a fourth ionic polymer within the network of pores of the third ionic polymer. In a preferred embodiment, the network of pores of the third ionic polymer is substantially or completely filled with the fourth ionic polymer. As a result, a third layer is produced in which the third porous support is filled with the third ionic polymer and the network of pores of the third ionic polymer is filled with the (oppositely charged) fourth ionic polymer. Thus, the third and fourth ionic polymers may provide a continuous network comprising two polymer domains, one derived from the third ionic polymer and the other derived from the fourth ionic polymer. In a preferred embodiment, this continuous network does not contain any other polymers (except any polymers present in the porous support). In one embodiment, there is a covalent bond connecting the third and fourth ionic polymers together. In practice, the network of pores in the porous third ionic polymer may comprise more than one ionic polymer; for example, the network of pores in the third ionic polymer may comprise a first ionic polymer (derived from the first curable composition) and optionally a second ionic polymer (derived from the second curable composition), such that the first polymer acts as the fourth ionic polymer, partially filling the pores of the third ionic polymer, and the second ionic polymer fills the remaining pores. Furthermore, if desired, the network of pores in the porous third ionic polymer may comprise one or more additional polymers.

[0022] According to a second aspect of the present invention, there is provided a method for preparing a composite membrane according to the first aspect of the present invention, comprising the following steps: I. Providing a first porous support, a second porous support, and a third porous support; II. Providing a first hardenable composition comprising a hardenable ionic compound, a second hardenable composition comprising a hardenable ionic compound of opposite charge to the hardenable compounds present in the first hardenable composition, a third hardenable composition comprising a hardenable ionic compound, and a fourth hardenable composition comprising a hardenable ionic compound of opposite charge to the hardenable compounds present in the third hardenable composition; III. Impregnating a third porous support with a third curable composition; IV. curing the third curable composition present in the third porous support to form a layer (hereinafter abbreviated as "base layer" for brevity) comprising a third porous support and a third ionic polymer comprising a network of pores; V. Impregnating the network of pores of the third ionic polymer with a fourth curable composition; VI. Contacting a first curable composition with a first side of a substrate; VII. Contacting a second curable composition with a second side of the substrate; VIII. curing, in any order or simultaneously, the first curable composition, the second curable composition, and the fourth curable composition, thereby forming a first ionic polymer, a second ionic polymer, and a fourth ionic polymer, respectively; Including, (a) when the first curable composition is cured, the first curable composition comprises a first porous support; (b) when the second curable composition is cured, the second curable composition comprises a second porous support; A method is provided.

[0023] The method of the second aspect of the present invention may be carried out in a number of different ways, including but not limited to those described in more detail below. In one embodiment of the method, the first curable composition, when applied to the first side of the substrate, comprises a first porous support. For example, the first porous support may be impregnated with the first curable composition, and then the impregnated support thus prepared may be contacted with the substrate. In one embodiment, at least some of the excess first curable composition present in the first porous support enters the network of pores in the substrate. When the first composition is then cured to form a first ionic polymer, the first porous support is strongly adhered to the substrate by the first ionic polymer. Furthermore, curing of the first curable composition within the network of pores in the substrate also forms a fourth polymer, thereby partially or entirely forming the third layer c). In this embodiment, the first polymer present in the pores of the substrate and the first polymer forming the first layer a) are covalently bonded, thereby forming a very strong bond between the first layer a) and the third layer c).

[0024] In an alternative embodiment, the first porous support is applied to the first curable composition after the first curable composition is applied to the first side of the substrate, e.g., the substrate is coated with the first curable composition (whereby the pores of the substrate are at least partially impregnated with the first curable composition), and then the first porous support is contacted with the first curable composition present on the substrate.

[0025] As in the previous embodiment, the first composition is cured to form a first ionic polymer, and the first porous support is strongly adhered to the base layer by the multiple covalent bonds within the first ionic polymer.

[0026] Similarly, in one embodiment, the second curable composition, when applied to the second side of the substrate, comprises a second porous support. For example, the second porous support may be impregnated with the second curable composition, and then the thus-prepared impregnated support may be contacted with the substrate. In one embodiment, at least some of the excess second curable composition present in the second porous support fills the remaining pores in the substrate. Preferably, after contacting the second curable composition with the substrate, no air remains at the interface between the substrate and the second curable composition. Then, when the second composition is cured to form the second ionic polymer, the second porous support is strongly adhered to the substrate by the second ionic polymer.

[0027] In an alternative embodiment, after the second curable composition is applied to the second side of the base layer, the second porous support is applied to the second curable composition. For example, the base layer is coated with the second curable composition, and then the second porous support is contacted with the second curable composition present on the base layer. As in the previous embodiment, when the second composition is cured to form the second ionic polymer, the second porous support is strongly adhered to the base layer by the second ionic polymer.

[0028] In one embodiment, the first curable composition comprising the first porous support is cured before the second composition comprising the second porous support is cured. Alternatively, the first curable composition comprising the first porous support and the second composition comprising the second porous support may be cured simultaneously.

[0029] In one embodiment, the first curable composition comprising the first porous support and the second curable composition comprising the second porous support are applied simultaneously or in either order to the first side of the substrate and the second side of the substrate, respectively. Preferably, the first curable composition comprising the first porous support is applied to the first side of the substrate before the second curable composition comprising the second porous support is applied to the second side of the substrate, or the first curable composition comprising the first porous support and the second curable composition comprising the second porous support are applied simultaneously to the first side of the substrate and the second side of the substrate, respectively.

[0030] In another embodiment, a first side of the substrate has a coating of a first curable composition and a second side of the substrate has a coating of a second curable composition, and the first porous support and the second porous support are applied simultaneously or in either order to the first side of the substrate coated with the first curable composition and the second side of the substrate coated with the second curable composition, respectively.

[0031] In yet another embodiment, the fourth curable composition is not the same as the first curable composition and is applied to the first side of the substrate (either already including the first porous support or not) and cured before the first curable composition is applied to the first side of the substrate.

[0032] As a result, a composite membrane is formed comprising the third ionic polymer and the fourth ionic polymer in the third layer, the first ionic polymer in the first layer, and the second ionic polymer in the second layer.

[0033] In the present invention, the third ionic polymer preferably does not include thread-like structures (such as fibers) other than the porous support. Furthermore, the third ionic polymer preferably does not include (fused) beads and encapsulated structures.

[0034] The third layer c) can be obtained by a method comprising forming a third ionic polymer comprising a network of voids from the third curable composition by polymerization-induced phase separation, as described above, then impregnating the network of voids with a fourth curable composition suitable for forming a fourth polymer, and curing the fourth curable composition within the network of voids of the third ionic polymer and, optionally, on the surface of the third ionic polymer to simultaneously produce one of the other layers (i.e., layer a)) at the same time as producing the third layer c). [Brief explanation of the drawings]

[0035] [Figure 1A] FIG. 1 illustrates a cross section through a typical composite membrane described in the prior art. [Figure 1B] FIG. 1 illustrates a cross section through a composite membrane according to the present invention. [Figure 2] FIG. 1 illustrates an embodiment of a method for preparing a composite membrane according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0036] In FIG. 1A, layer 1 is a polymer layer, layer 3 is a central layer containing fibrous elements, and layer 2 is another polymer layer. In Figure 1B, Layer 1 is a first layer a) comprising a first ionic polymer and a porous support (not shown). Layer 3 is a third layer c) comprising a third and fourth ionic polymer, black and white, respectively. The third ionic polymer (black) is located within the pores of the third porous support (not shown), and the fourth ionic polymer (white) is within the pores of the third ionic polymer (black). Layer 2 is a second layer b) comprising a second porous support (not shown).

[0037] In FIG. 2, the production section includes an unwinding station (1), a curable composition application station (2), a weighing station (3), a curing station (4), a drying station (5), a curable composition application station (6), an unwinding station (7), a laminating station (8), a curing station (9), and a membrane recovery station (10).

[0038] In one embodiment, the porous supports present in the first layer a), the second layer b) and the third layer c) are chemically and physically identical. In another embodiment, the porous supports present in two of layers a), b), and c) are chemically and physically identical to one another, and the porous supports present in the remaining of layers a), b), and c) are chemically and / or physically different from the porous supports present in the other two layers.

[0039] In further embodiments, the porous support present in each of layers a), b), and c) is chemically and / or physically different from the porous support present in the other two of layers a), b), and c), the preference depending on the intended use of the composite membrane.

[0040] Examples of porous supports that may be included in layers a), b), and / or c) include synthetic woven and nonwoven fabrics and extruded films, such as wet-laid and dry-laid nonwoven materials, spunbond fabrics, meltblown fabrics, and nanofiber webs made from polyethylene, polypropylene, polyacrylonitrile, polyvinyl chloride, polyphenylene sulfide, polyesters, polyamides, polyaryletherketones such as polyetheretherketone, and copolymers thereof. The porous support may also be a porous membrane, such as a polysulfone membrane, a polyethersulfone membrane, a polyphenylene sulfone membrane, a polyphenylene sulfide membrane, a polyimide membrane, a polyetherimide membrane, a polyamide membrane, a polyamideimide membrane, a polyacrylonitrile membrane, a polycarbonate membrane, a polyacrylate membrane, a cellulose acetate membrane, a polypropylene membrane, a poly(4-methyl-1-pentene) membrane, a polyvinylidene fluoride membrane, a polytetrafluoroethylene membrane, a polyhexafluoropropylene membrane, and a polychlorotrifluoroethylene membrane, and derivatives thereof.

[0041] Preferably, the porous supports present in the first layer a), the second layer b) and the third layer c) each independently have an average thickness between 10 and 200 μm, more preferably between 20 and 150 μm, especially between 50 and 100 μm.

[0042] Preferably, the porous support has a porosity between 30 and 95%. The porosity of the support may be determined by a porometer, for example a Porolux™ 1000 manufactured by IB-FT GmbH, Germany.

[0043] One or more of the porous supports may be treated to modify its surface energy, for example to a value greater than 45 mN / m, preferably greater than 55 mN / m. Suitable treatments include, for example, corona discharge treatment, plasma glow discharge treatment, flame treatment, ultraviolet radiation treatment, or chemical treatment to improve wettability of and adhesion to the porous support.

[0044] Commercially available porous supports are available from several sources, for example, Freudenberg Filtration Technologies (Novatexx materials), Lydall Performance Materials, Celgard LLC, APorous Inc., SWM (Conwed Plastics, DelStar Technologies), Teijin Limited, Hirose, Mitsubishi Paper Mills, Ltd., and Sefar AG.

[0045] Preferably, each substrate is independently a polymeric substrate. Preferred substrates include synthetic woven and nonwoven fabrics or extruded films that do not have covalently attached ionic groups. Preferably, the first layer a), the second layer b), and the third layer c) of the composite membrane each independently have an average thickness between 10 μm and 200 μm, more preferably between 20 and 150 μm, especially between 50 and 100 μm.

[0046] Preferably, the composite membrane has an average thickness between 30 μm and 600 μm, more preferably between 60 and 450 μm, especially between 150 and 300 μm. Preferably, the composite membrane of the present invention is a composite bipolar membrane.

[0047] Preferably, the first ionic polymer is (a1) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group; (b1) 1 to 88 wt % of a curable compound containing at least two ethylenically unsaturated groups and optionally an ionic group; (c1) 0 to 10 wt% of a radical initiator; (d1) 0 to 55 wt% solvent The curable composition may be obtained by a method comprising the step of curing a first curable composition comprising:

[0048] Preferably, the second ionic polymer is (a2) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group of opposite charge to the curable compound present in the first curable composition; (b2) 1 to 88 wt. % of a curable compound comprising at least two ethylenically unsaturated groups and, optionally, an ionic group (of opposite charge to the curable compound present in the first curable composition); and (c2) 0 to 10 wt% of a radical initiator; (d2) 0 to 55 wt% solvent The curable composition may be obtained by a method comprising the step of curing a second curable composition comprising:

[0049] As mentioned above, the third ionic polymer is preferably obtained from a process comprising polymerization-induced phase separation of the third ionic polymer from the third curable composition used to prepare it. This process is particularly useful for providing the third ionic polymer in a form comprising a network of pores capable of receiving a fourth curable composition (which may be the same as or different from the first curable composition) to prepare a fourth ionic polymer within the network of pores (and optionally, if desired, also on the surface of the third ionic polymer to provide the first layer a) very efficiently).

[0050] In this way, a network of pores present in the third ionic polymer is prepared, which can then be impregnated with a fourth curable composition suitable for forming a fourth polymer and cured within the pores of the third ionic polymer and, optionally, on the surface of the third ionic polymer to simultaneously create layer a) at the same time as creating third layer c).

[0051] Preferably, the third ionic polymer comprising a network of pores is (a3) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group; (b3) 1 to 70 wt % of a curable compound containing at least two ethylenically unsaturated groups and optionally an ionic group; and (c3) 0 to 10 wt% of a radical initiator; (d3) 20 to 98 wt% solvent The composition may be obtained by a method comprising the step of curing a third curable composition comprising:

[0052] Preferably, component (a3) ​​in the third curable composition has an ionic group of opposite charge to the curable compound present in the first curable composition. Preferably, the fourth ionic polymer is obtainable by a method comprising curing a fourth curable composition that fits within the definition given for the first curable composition. The fourth curable composition may be the same as or different from the first curable composition. Preferably, the fourth curable composition comprises a curable compound having one ethylenically unsaturated group and an ionic group of opposite charge to the curable compound present in the third curable composition. Thus, the fourth ionic polymer is (a4) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group of opposite charge to the curable compound present in the third curable composition; (b4) 1 to 88 wt. % of a curable compound comprising at least two ethylenically unsaturated groups and optionally an ionic group (of opposite charge to the curable compounds present in the third curable composition); (c4) 0 to 10 wt% of a radical initiator; (d4) 0 to 55 wt% solvent The fourth curable composition may be obtained by a method comprising the step of curing a fourth curable composition comprising:

[0053] Each component present in the curable composition may be a mixture of several compounds that fit within the respective definitions. The amount of each of components (a1), (a2), and (a4) independently is preferably 0 to 40 wt %.

[0054] The amount of component (a3) ​​is preferably 0 to 30 wt %, particularly preferably 0 to 20 wt %. The amount of each of the components (b1), (b2) and (b4) is independently preferably 5 to 80 wt %, especially 10 to 70 wt %.

[0055] The amount of component (b3) is preferably 9 to 65 wt%, in particular 14 to 59 wt%, more in particular 19 to 49 wt%. The curable composition preferably comprises a radical initiator (components (c1), (c2), (c3)) and (c4) if the composition is intended to be cured by UV, visible light, or thermally. Alternative methods for curing include electron beam and gamma irradiation, which do not require a radical initiator. Therefore, the amount of components (c1), (c2), (c3), and (c4) present in the relevant composition is preferably 0 to 2 wt %, more preferably 0.001 to 2 wt %, and especially 0.005 to 0.9 wt %, for curing by UV, visible light, or thermally.

[0056] The amounts of components (d1), (d2) and (d4) present in the relevant compositions are preferably between 20 and 45 wt%. Preferably, the solvents used as components (d1), (d2), and (d3) are inert, i.e., they do not react with any of the other components of the curable composition. The amount of component (d3) is preferably 30 to 90 wt%, especially 40 to 85 wt%, more especially 49 to 78 wt%.

[0057] Component (d3) is preferably a single solvent. Component (d3) optionally comprises two or more inert solvents, at least one of which is a solvent for the other components of the curable composition, and at least one of which is a non-solvent for the third ionic polymer formed from curing the composition, e.g., by phase separation to form a third ionic polymer comprising a network of pores capable of accepting a fourth curable composition.

[0058] Examples of inert solvents include water, alcoholic solvents, etheric solvents, amide solvents, ketone solvents, sulfoxide solvents, sulfone solvents, nitrile solvents, and organic phosphorus solvents. Examples of alcoholic solvents that may be used as component (d3) or in component (d3) (especially in combination with water) include methanol, ethanol, isopropanol, n-butanol, ethylene glycol, propylene glycol, diethylene glycol, dipropylene glycol, and mixtures containing two or more thereof. Water is particularly preferred.

[0059] In addition, preferred inert organic solvents that may be used in component (d3) include dimethyl sulfoxide, dimethylimidazolidinone, sulfolane, N-methylpyrrolidone, dimethylformamide, acetonitrile, acetone, 1,4-dioxane, 1,3-dioxolane, tetramethylurea, hexamethylphosphoramide, hexamethylphosphorotriamide, pyridine, propionitrile, butanone, cyclohexanone, tetrahydrofuran, tetrahydropyran, 2-methyltetrahydrofuran, ethylene glycol diacetate, cyclopentyl methyl ether, methyl ethyl ketone, ethyl acetate, y-butyrolactone, and mixtures containing two or more thereof. Dimethyl sulfoxide, N-methylpyrrolidone, dimethylformamide, dimethylimidazolidinone, sulfolane, acetone, cyclopentyl methyl ether, methyl ethyl ketone, acetonitrile, tetrahydrofuran, 2-methyltetrahydrofuran, and mixtures containing two or more thereof are preferred.

[0060] In one embodiment, component (d3) comprises at least one solvent from list (i) below and at least one solvent from list (ii) below. List (i): iso-propanol, methanol, ethanol, acetone, tetramethylurea, hexamethylphosphoramide, hexamethylphosphorotriamide, butanone, cyclohexanone, methyl ethyl ketone, tetrahydrofuran, tetrahydropyran, 2-methyltetrahydrofuran, cyclopentyl methyl ether, propionitrile, acetonitrile, 1,4-dioxane, 1,3-dioxolane, ethyl acetate, y-butyrolactone, and List (ii): Water, glycerol, ethylene glycol, dimethyl sulfoxide, sulfolane, dimethylimidazolidinone, sulfolane, N-methylpyrrolidone, N,N-dimethylformamide, N-methylmorpholine, acetonitrile, acetone, 1,4-dioxane, 1,3-dioxolane, tetramethylurea, hexamethylphosphoramide, hexamethylphosphorotriamide, pyridine, propionitrile, butanone, cyclohexanone, tetrahydrofuran, tetrahydropyran, 2-methyltetrahydrofuran, ethylene glycol diacetate, cyclopentyl methyl ether, methyl ethyl ketone, ethyl acetate, y-butyrolactone.

[0061] In one embodiment, component (d3) comprises water and one or other additional solvents from list (i). Preferably, one of the first and second curable compositions contains a curable compound having an ethylenically unsaturated group and an anionic group, and the other contains a curable compound having an ethylenically unsaturated group and a cationic group. Furthermore, preferably, one of the third and fourth curable compositions contains a curable compound having an ethylenically unsaturated group and an anionic group, and the other contains a curable compound having an ethylenically unsaturated group and a cationic group.

[0062] Examples of curable compounds having ethylenically unsaturated groups and anionic or cationic groups include the following compounds of formula (A), (B), (CL), (SM), (MA), (MB-α), (C), (ACL-A), (ACL-B), (ACL-C), and / or (AM-B):

[0063] [ka]

[0064] [In formulas (A) and (B), R A1 ~R A3 each independently represents a hydrogen atom or an alkyl group, and R B1 ~R B7 each independently represents an alkyl group or an aryl group, Z A1 ~Z A3 each independently represents -O- or -NRa-, where Ra represents a hydrogen atom or an alkyl group; L A1 ~L A3 each independently represents a divalent linking group which is an alkylene group, an arylene group, or a combination thereof; R X represents a divalent linking group which is an alkylene group, an alkenylene group, an alkynylene group, an arylene group, or a combination thereof; X A1 ~X A3 each independently represents an organic or inorganic anion, preferably a halide ion or an aliphatic or aromatic carboxylate ion.

[0065] Examples of compounds of formula (A) or formula (B) include:

[0066] [ka]

[0067] [ka]

[0068] Examples include: Synthetic methods can be found, for example, in US2015 / 0353721, US2016 / 0367980, and US2014 / 0378561.

[0069] [ka]

[0070] [In formulas (CL) and (SM), L 1 represents an alkylene group or an alkenylene group, R a , R b , R c , and R d each independently represents a linear or branched alkyl group or an aryl group; R a and R b , and / or R c and R d may be bonded to each other to form a ring, R 1 , R 2 , and R 3 each independently represents a linear or branched alkyl group or an aryl group; R 1 and R 2 , or R 1 , R 2 and R 3 may be bonded to each other to form an aliphatic heterocycle, n1, n2, and n3 each independently represent an integer of 1 to 10; X1 - , X2 - , and X3 - each independently represents an organic or inorganic anion. Examples of formulas (CL) and (SM) include:

[0071] [ka]

[0072] Examples include: Synthetic methods can be found in EP3184558 and US2016 / 0001238.

[0073] [ka]

[0074] [In formula (MA) and formula (MB-α), R A1 represents a hydrogen atom or an alkyl group, Z 1 represents -O- or -NRa- (wherein Ra represents a hydrogen atom or an alkyl group); M + represents an organic or inorganic cation, preferably a hydrogen ion or an alkali metal ion, R A2 represents a hydrogen atom or an alkyl group, R A4 represents an organic group that contains a sulfonic acid group and has no ethylenically unsaturated group, Z 2 represents -NRa- (wherein Ra represents a hydrogen atom or an alkyl group, preferably a hydrogen atom). Examples of formulas (MA) and (MB-α) include:

[0075] [ka]

[0076] Examples include: Synthesis methods can be found, for example, in US2015 / 0353696.

[0077] [ka]

[0078] Synthesis methods can be found, for example, in US2016 / 0369017.

[0079] [ka]

[0080] [In formula (C), L 1 represents an alkylene group, n represents an integer of 1 to 3, preferably 1 or 2; m represents an integer of 1 or 2; L 2 represents an n-valent linking group, R 1 represents a hydrogen atom or an alkyl group, R 2 is -SO3 - M + or -SO3R 3 represents multiple R 2 In the case of each R 2 independently, -SO3M + or -SO3R 3 represents M + represents a hydrogen ion, an inorganic ion, or an organic ion, and R 3 represents an alkyl group or an aryl group] Examples of formula (C) include:

[0081] [ka]

[0082] Examples include: Synthetic methods can be found in EP3187516.

[0083] [ka]

[0084] [In the formulas (ACL-A), (ACL-B), (ACL-C), and (AM-B), R and R' each independently represent a hydrogen atom or an alkyl group; LL represents a single bond or a divalent linking group; LL 1 , L.L. 1 ',LL 2 , and L.L. 2each of A and A' independently represents a sulfo group in the free acid or salt form; m represents 1 or 2] Examples of formulas (ACL-A), (ACL-B), (ACL-C), and (AM-B) are:

[0085] [ka]

[0086] Examples include: Synthesis methods can be found in US2016 / 0362526. Other suitable monomers include:

[0087] [ka]

[0088] Examples include: The curable composition may be cured by any suitable method, including thermal curing, photocuring, electron beam (EB) irradiation, gamma irradiation, and combinations of the foregoing. However, the curable composition is preferably cured by photocuring, for example, by irradiating the curable composition with visible ultraviolet light, thereby curing and polymerizing the curable components present in the composition.

[0089] Examples of suitable thermal initiators that may be included in the curable composition include 2,2'-azobis(2-methylpropionitrile) (AIBN), 4,4'-azobis(4-cyanovaleric acid), 2,2'-azobis(2,4-dimethylvaleronitrile), 2,2'-azobis(2-methylbutyronitrile), 1,1'-azobis(cyclohexane-1-carbonitrile), 2,2'-azobis(4-methoxy-2,4-dimethylvaleronitrile), 1,1'-azobis(cyclohexane-1-carbonitrile), 1,1 ... Nitrile), Dimethyl 2,2'-azobis(2-methylpropionate), 2,2'-azobis[N-(2-propenyl)-2-methylpropionamide, 1-[(1-cyano-1-methylethyl)azo]formamide, 2,2'-azobis(N-butyl-2-methylpropionamide), 2,2'-azobis(N-cyclohexyl-2-methylpropionamide), 2,2'-azobis(2-methylpropionamidine) ) dihydrochloride, 2,2'-azobis[2-(2-imidazolin-2-yl)propane] dihydrochloride, 2,2'-azobis[2-(2-imidazolin-2-yl)propane] disulfate dihydrate, 2,2'-azobis[N-(2-carboxyethyl)-2-methylpropionamidine] hydrate, 2,2'-azobis{2-[1-(2-hydroxyethyl)-2-imidazolin-2-yl]propane} dihydrate Examples of suitable azobis include 2,2'-azobis[2-(2-imidazolin-2-yl)propane], 2,2'-azobis(1-imino-1-pyrrolidino-2-ethylpropane) dihydrochloride, 2,2'-azobis{2-methyl-N-[1,1-bis(hydroxymethyl)-2-hydroxyethyl]propionamide}, and 2,2'-azobis[2-methyl-N-(2-hydroxyethyl)propionamide].

[0090] Examples of suitable photoinitiators that may be included in the curable composition include aromatic ketones, acylphosphine compounds, aromatic onium salt compounds, organic peroxides, thio compounds, hexaarylbiimidazole compounds, ketoxime ester compounds, borate compounds, azinium compounds, metallocene compounds, active ester compounds, compounds having a carbon-halogen bond, and alkylamine compounds. Preferred examples of aromatic ketones, acylphosphine oxide compounds, and thio compounds include compounds having a benzophenone skeleton or a thioxanthone skeleton, as described in "RADIATION CURING IN POLYMER SCIENCE AND TECHNOLOGY," pp. 77-117 (1993).More preferred examples thereof include alpha-thiobenzophenone compounds described in JP1972-6416B (JP-S47-6416B), benzoin ether compounds described in JP1972-3981B (JP-S47-3981B), alpha-substituted benzoin compounds described in JP1972-22326B (JP-S47-22326B), and alpha-substituted benzoin compounds described in JP1972-23664B (JP-S47-23664B). 4B), aroylphosphonic acid esters described in JP1982-30704A (JP-S57-30704A), dialkoxybenzophenones described in JP1985-26483B (JP-S60-26483B), benzoin esters described in JP1985-26403B (JP-S60-26403B) and JP1987-81345A (JPS62-81345A), alpha-aminobenzophenones described in JP 1989-34242B (JPH01-34242B), U.S. Pat. No. 4,318,791A, and EP 0284561A1, p-di(dimethylaminobenzoyl)benzene described in JP 1990-211452A (JP-H02-211452A), thio-substituted benzophenones described in JP 1986-194062A (JPS61-194062A), and benzophenones described in JP 1989-34242B (JPH01-34242B), U.S. Pat. No. 4,318,791A, and EP 0284561A1, p-di(dimethylaminobenzoyl)benzene described in JP 1990-211452A (JP-H02-211452A), and thio-substituted benzophenones described in JP 1986-194062A (JPS61-194062A). Examples of suitable photoinitiators include aromatic ketones, acylphosphine sulfides described in JP1990-9597B (JP-H02-9597B), acylphosphines described in JP1990-9596B (JP-H02-9596B), thioxanthones described in JP1988-61950B (JP-S63-61950B), and coumarins described in JP1984-42864B (JP-S59-42864B). In addition, photoinitiators described in JP2008-105379A and JP2009-114290A are also preferred. In addition, photoinitiators described in Kato Kiyomi's "Ultraviolet Curing System" on pages 65-148 (Research Center Co., Ltd., 1989) may also be used.

[0091] Particularly preferred photoinitiators include Norrish Type II photoinitiators that have an absorption maximum at wavelengths greater than 380 nm when measured in one or more of the following solvents: water, ethanol, and toluene at a temperature of 23° C. Examples include xanthene, flavin, curcumin, porphyrin, anthraquinone, phenoxazine, camphorquinone, phenazine, acridine, phenothiazine, xanthone, thioxanthone, thioxanthene, acridone, flavone, coumarin, fluorenone, quinoline, quinolone, naphthaquinone, quinolinone, arylmethane, azo, benzophenone, carotenoid, cyanine, phthalocyanine, dipyrrin, squarine, stilbene, styryl, triazine, or anthocyanin-derivatized photoinitiators.

[0092] The curable composition may be continuously applied to a moving porous support by a manufacturing section that preferably includes a curable composition application station, one or more curing stations equipped with an irradiation source for curing the composition, a membrane recovery station, and means for moving the porous support from the curable composition application station to the curing station and to the membrane recovery station.

[0093] The curable composition application station may be located upstream relative to the curing station, which may be located upstream relative to the membrane recovery station. Examples of application techniques include slot die coating, slide coating, air knife coating, roller coating, screen printing, and dipping. Depending on the technique used and the desired final specifications, it may be necessary to remove excess coating from the substrate, for example, by roll-to-roll squeeze, roll-to-blade or blade-to-roll squeeze, blade-to-blade squeeze, or removal using a coating bar. Visible UV curing provides 40-2000 mJ / cm. 2The thermal cure preferably occurs at a temperature range between 20°C and 100°C for 0 to 20 hours.

[0094] In some cases, additional drying may be required, where temperatures between 40°C and 200°C may be employed. The composite membranes of the present invention may be manufactured by several alternative methods, including those described in more detail below.

[0095] In the method according to the second aspect of the present invention, step IV. preferably comprises polymerization-induced phase separation (particularly photopolymerization-induced phase separation) of the third ionic polymer from the third composition. In one embodiment, the composite film includes a catalyst. The catalyst or a precursor thereof may be included in one or more of the first curable composition, the second curable composition, the third curable composition, and the fourth curable composition. For example, but not limited to, dipping, air knife coating, micro-roller coating, spraying, chemical (vapor deposition) deposition, or physical (vapor deposition) deposition can be used to apply the catalyst or a precursor thereof to the third ionic polymer (e.g., as a post-treatment step) (i.e., after completing step IV and before starting step V).

[0096] Examples of suitable catalysts include metal salts, metal oxides, organometallic compounds, monomers, polymers, or copolymers. Examples include, but are not limited to, FeCl3, FeCl2, AlCl3, MgCl2, RuCl3, CrCl3, Fe(OH)3, Sn(OH)2, Sn(OH)4, SnCl2, SnCl4, SnO, SnO2, Al2O3, NiO, Zr(HPO4)2, MoS2, graphene oxide, Fe-polyvinyl alcohol complex, polyvinyl alcohol (PVA), polyethylene glycol (PEG), polyethyleneimine (PEI), polyacrylic acid (PAA), copolymer of acrylic acid and maleic anhydride (PAAMA), and hyperbranched aliphatic polyesters. Any of these catalysts may be present in a range of up to 5 wt% of the membrane weight, such as 0.001 wt% or 1 wt%.

[0097] The composite membranes of the present invention may be used for a variety of applications, including electrodialysis and acid / base generation. The composite membranes of the present invention may also be used as bipolar membranes, particularly because they have good durability in acidic and basic media, low swelling, and can be manufactured inexpensively, quickly, and efficiently.

[0098] In an exemplary embodiment of the present invention, the composite membrane is prepared by the method depicted schematically in FIG. The moving third porous support is unwound at an unwinder (1), the third porous support is impregnated with a third curable composition at a curable composition application station (2), excess third curable composition is removed at a metering station (3), for example, by a squeeze bar, and the impregnated third porous support is cured at a curing station (4), thereby forming a third ionic polymer (abbreviated herein as "base layer") containing a network of pores within the pores of the third porous support. Optionally, the solvent is removed at a drying station (5). Then, at a curable composition application station (6), a first curable composition (which also serves as a fourth curable composition) and a second curable composition are simultaneously applied to the first and second sides of the base layer, optionally such that either or both of the first and second curable compositions impregnate the network of pores of the third ionic polymer present in the base layer. The first and second porous supports are unwound at an unwinder station (7) and contacted with the first and second sides of the base layer, respectively, at a lamination station (8), thereby impregnating the first and second porous supports with the first and second curable compositions, respectively. At a curing station (9), the first and second curable compositions are cured, thereby forming a first layer a), a second layer b), and a third layer c) sandwiched therebetween. Finally, the formed composite membrane, including the third layer c) sandwiched between the first layer a) and the second layer b), is collected at a membrane collection station (10).

[0099] In a preferred embodiment, the steps of applying the fourth curable composition to the base layer and applying the first curable composition are combined by simply applying an excess of the fourth curable composition to the base layer such that the fourth curable composition impregnates the pores on one side of the base layer and forms a curable layer thereon. Then, when the fourth curable composition is cured, a fourth ionic polymer is formed on one side of the base layer to provide first layer a) (whereby the fourth curable composition also acts as the first curable composition to form first layer a)).

[0100] Optionally, the method further comprises pretreating one or more of the porous supports to enhance their wetting properties. Alternatively, commercially available porous supports may be used that have already been treated to enhance their wetting properties.

[0101] For the avoidance of doubt, step VIII. may be used to form layer a) on one side of the base layer, layer b) on the other side of the base layer (or on the other side of layer c) if both layers a) and c) are formed by curing the first curable composition), and optionally layer c) as well (if curing of the first composition did not already form layer c)).

[0102] In a preferred embodiment, the fourth curable composition is identical to the first curable composition, and step VI is performed prior to step V, where the first porous support is impregnated with the first curable composition. Prior to step VII, the first curable composition is cured. Part of step VIII is performed, which involves curing the first curable composition (also referred to as the fourth curable composition) present in the pores of the base layer, thereby forming layer a) and, partially or completely, layer c). Subsequently, the second porous support is impregnated with the second curable composition, and step VII is performed. All remaining pores in the base layer are filled with the second curable composition. Finally, part of step VIII is performed, where the second curable composition is cured, thereby forming layer b) on the side of layer c) opposite layer a).

[0103] In another preferred embodiment, the fourth curable composition is the same as the first curable composition, and step VI. is performed prior to step V., thereby impregnating the pores of the base layer and forming a layer of the first curable composition on the base layer. This is followed by a step of applying the first curable composition to the first porous support, thereby impregnating the first porous support with the first curable composition. Subsequently, the first curable composition is cured. A portion of step VIII. is then performed, which includes curing the first curable composition (also referred to as the fourth curable composition) present in the pores of the base layer, thereby forming layer a) and, partially or completely, layer c). This is followed by step VII., whereby all remaining pores in the base layer are filled with the second curable composition, after which the second curable composition is applied to the second porous support, thereby impregnating the second porous support with the second curable composition. Finally, a portion of step VIII. is carried out in which the second curable composition is cured, thereby forming layer b) on the side of layer c) opposite layer a).

[0104] In yet another preferred embodiment, after step III, the third porous support impregnated with the third curable composition is placed between transparent foils, followed by squeezing, for example, between rollers or blades, to remove any excess third curable composition. After step IV, the transparent foils are removed. Further steps are preferably as described above in connection with the preferred embodiment.

[0105] In a further preferred embodiment, step IV is carried out under an inert atmosphere, such as nitrogen, carbon dioxide, or argon gas. The other steps are as described above in connection with the preferred embodiment.

[0106] The invention will now be described in more detail by the following non-limiting examples in which all parts and percentages are by weight unless otherwise specified. [Example]

[0107] [Table 1]

[0108] [Table 2]

[0109] [Table 3]

[0110] Preparation method 1 Step I. The first, second, and third porous supports are listed in Table 3 above.

[0111] Step II. A first and second curable composition were prepared by mixing the components shown in Table 2 above. The first curable composition was also used as a fourth curable composition. A third curable composition was prepared by mixing the components shown in Table 2 above.

[0112] Step III. A 100 μm thick layer of the third curable composition was applied to a PET foil sheet using a Mayer bar. A third porous substrate (FO2223-10C) was applied to the layer of the third curable composition, thereby impregnating the third curable composition. A second PET foil sheet was applied to the impregnated third porous substrate, sandwiching the impregnated third porous substrate between the two foils. A roller was used to gently squeeze all air out of the porous substrate.

[0113] Step IV. To cure the third curable composition present in the third porous support, the impregnated third porous support sandwiched between two foils was irradiated using a Light Hammer LH10 from Fusion UV Systems equipped with a D bulb operating at 60% intensity at a speed of 5 m / min. After curing, the PET foil was removed and the cured product was dried in air at room temperature to obtain a base layer (i.e., a third porous support comprising a third ionic polymer with a network of open pores).

[0114] The substrate was immersed in a catalyst solution containing 1.35 wt% tin(II) chloride in a slightly acidic aqueous solution and allowed to dry at room temperature, followed by immersion in a 0.12 N NaOH solution to precipitate the catalyst and drying at room temperature.

[0115] Steps V and VI The first curable composition was applied to the PET foil using a 100 μm Mayer bar. A first porous support was then applied to the layer of the first curable composition on the PET, thereby impregnating the first porous support with the first curable composition. After 5 seconds, a 24 μm Mayer bar was used to remove excess first curable composition from the first porous support, leaving an approximately 24 μm thick layer of the first curable composition on the surface of the impregnated first porous support. The base layer prepared in step IV above was placed on top of the layer of first curable composition, whereby the base layer was impregnated with the first curable composition to form a base layer-first porous support composite containing the first curable monomer both in the first porous support and in the pores of the third ionic polymer.

[0116] Step VIII (partially) One side of the thus prepared substrate-first porous support composite (the substrate side bearing the first porous support) was irradiated using a Light Hammer LH10 from Fusion UV Systems equipped with a D bulb operating at 50% intensity at a speed of 5 m / min. The resulting cured film was a laminate of layer a) and layer c) in which the pores of the third ionic polymer had been filled with the cured first curable composition.

[0117] Step VII. A 100 μm layer of the second curable composition was applied to the side of the laminate of layers a) and c) opposite layer a) using a Mayer bar, and a second porous support was applied to the layer of second curable composition. After 5 seconds, a 4 μm Mayer bar was used to remove excess second curable composition.

[0118] Step VIII. (Partial) To cure the second curable composition, the product of Step VII was irradiated on both sides using a Light Hammer LH10 from Fusion UV Systems equipped with a D bulb operating at 50% intensity at a speed of 5 m / min. Finally, the PET foil was removed to obtain a bipolar composite membrane according to the first embodiment of the present invention, comprising a first layer a), a second layer b), and a third layer c) sandwiched between the first layer a) and the second layer b).

[0119] Preparation method 2 Steps I and II were carried out as described above for Method 1.

[0120] Step III. A 60 μm thick layer of the third curable composition was applied to the third porous substrate, which was placed on a PET foil sheet, using a Mayer bar. A 4 μm Mayer bar was used to remove excess coating, ensuring that the third porous substrate was impregnated with the third curable composition. A second PET foil sheet was applied to the impregnated third porous substrate, sandwiching the impregnated third porous substrate between the two foils. A roller was used to gently squeeze all air out of the porous substrate.

[0121] Step IV. The impregnated third porous support sandwiched between the two foils was irradiated using a Light Hammer LH10 from Fusion UV Systems equipped with a D bulb operating at 60% intensity at a speed of 5 m / min. After curing, the PET foil was removed and the cured product was dried in air at room temperature to obtain the base layer (i.e., the third porous support comprising the third ionic polymer with a network of open pores).

[0122] The substrate was immersed in a catalyst solution containing 1.35 wt% tin(II) chloride in a slightly acidic aqueous solution and allowed to dry at room temperature, followed by immersion in a 0.12 N NaOH solution to precipitate the catalyst and drying at room temperature.

[0123] Steps V and VI A 60 μm Mayer bar was used to apply the first curable composition to a first porous support placed on PET foil. A 4 μm bar was used to remove excess first curable composition, thereby completely impregnating the first porous support with the first curable composition. A 24 μm Mayer bar was used to apply a second layer of the first curable composition to the impregnated first porous support, leaving an approximately 24 μm layer of the first curable composition on the surface of the impregnated first porous support. The catalyst-containing base layer from step IV above was placed on top of the first curable composition layer, whereby the base layer was impregnated with the first curable composition to obtain a base layer-first porous support composite containing the first curable monomer both in the first porous support and in the pores of the third ionic polymer.

[0124] Step VIII (partially) One side of the substrate-first porous support composite (the side of the substrate bearing the first porous support) was irradiated using a Light Hammer LH10 from Fusion UV Systems, equipped with a D bulb operating at 50% intensity at a speed of 5 m / min. The resulting cured film was a laminate of layer a) and layer c) in which the pores of the third ionic polymer had been filled with the cured first curable composition.

[0125] Step VII The second curable composition was applied to the second porous substrate using a 60 μm Mayer bar to obtain an impregnated second porous substrate. The impregnated second porous substrate was then applied to the opposite side of layer a) of a laminate of layers a) and c). After 5 seconds, excess second curable composition was removed using a 4 μm Mayer bar.

[0126] Step VIII (partially) To cure the second curable composition, the product of Step VII was irradiated on both sides using a Light Hammer LH10 from Fusion UV Systems equipped with a D bulb operating at 50% intensity at a speed of 5 m / min. Finally, the PET foil was removed to obtain a bipolar composite membrane according to the first embodiment of the present invention, comprising a first layer a), a second layer b), and a third layer c) sandwiched between the first layer a) and the second layer b).

[0127] Substrates prepared using either Method 1 or Method 2 were analyzed to determine mean flow pore (MFP) diameter, and the results are shown in Table 4 below. The mean flow pore size of pores (18.5 mm diameter samples) in the third ionic polymer present in substrates prepared using either Method 1 or Method 2 was determined using a Porolux™ porometer. Substrate samples were pre-wetted with "Porefill™" fluid for approximately 15 seconds and placed in a sample holder. Between measurements, the pores were evacuated using increasing N2 pressure up to 6 bar until all fluid was removed.

[0128] [Table 4]

[0129] Example 1 was prepared using Method 1 and Example 2 was prepared using Method 2.

[0130] Characterization of composite membranes The volume ratio is the ratio of the volume of the third ionic polymer to the volume of the fourth ionic polymer in the third layer (c), which is the same as the first ionic polymer in these examples. The volume ratio was determined by embedding the sample of Example 1 in resin and cutting thin sections using a microtome. The thin sections were analyzed using an atomic force microscope (AFM) equipped with an infrared probe. Line spectra were matched over 80 μm, and IR spectra were recorded every 3 μm, followed by principal component analysis using the IR spectra. The resulting image showed the third ionic polymer and the fourth ionic polymer as separate polymers, with the third ionic polymer identified in green and the fourth ionic polymer identified in blue. The third and fourth ionic polymers were found to be a bicontinuous network in the third layer (c).

[0131] The ratio of the two polymers (i.e., the volume ratio of the third ionic polymer to the fourth ionic polymer in the third layer c) was estimated by their colors and is given in Table 5 below.

[0132] The electrochemical properties of the bipolar composite membranes from Examples 1 and 2, as well as their bipolar characteristics, were compared with those of a commercially available bipolar membrane (BPM) by determining their so-called IU curves (which derive the voltage at a specific current density). This evaluation showed that the voltage of the bipolar composite membrane of the present invention was 800 A / cm 2 It was found that the voltage at this current density was lower than that of a commercially available BPM. The results are shown in Table 5 below.

[0133] [Table 5]

[0134] Synthesis of anionic monomers with crosslinkers and their precursors Cl-SS

[0135] [ka]

[0136] In a double-walled reactor actively cooled to 5°C, thionyl chloride (109 mL, 178.46 g, 1.5 mol, 3 moleq) was added dropwise to a solution of 4-vinylbenzenesulfonic acid lithium salt (95.08 g, 0.500 mol, 1 moleq) and 4OH-TEMPO (50 mg, 500 ppm) in DMF (300 mL). After the addition was complete, the solution was slowly heated to room temperature and stirred for an additional 16 h. The reaction mixture was then poured into 1 L of cold 1 M KCl in a separatory funnel. The bottom layer was removed and dissolved in 500 mL of diethyl ether. This solution was washed with 1 M KCl solution (300 mL). The organic layer was dried over sodium sulfate, filtered, and concentrated in vacuo to give a yellow oil. The crude product (CL-SS) was used in the next step without further purification. The typical yield is 89.5 g (88%). HPLC-MS purity >98%; 1 H-NMR: <2 wt% DMF, 0% diethyl ether. Cl-DVBS

[0137] [ka]

[0138] In a double-walled reactor actively cooled to 5°C, thionyl chloride (75 mL, 123.1 g, 1.034 mol, 3 moleq) was added dropwise to a solution of divinylbenzenesulfonate sodium salt (80 g, 0.345 mol, 1 moleq) and 4OH-TEMPO (50 mg, 500 ppm) in DMF (300 mL). After the addition was complete, the solution was slowly heated to room temperature and stirred for an additional 16 h. The reaction mixture was then poured into 1 L of cold 1 M KCl in a separatory funnel. The bottom layer was removed and dissolved in 500 mL of diethyl ether. This solution was washed with 1 M KCl solution (300 mL). The organic layer was dried over sodium sulfate, filtered, and concentrated in vacuo to give a yellow oil. The crude product (Cl-DVBS) was used in the next step without further purification. Typical yield: 62 g (79%). HPLC-MS purity: >98%. 1 H-NMR: <2 wt% DMF, 0% diethyl ether. NH2-SS

[0139] [ka]

[0140] In a double-walled reactor actively cooled to 5°C, thionyl chloride (109 mL, 178.46 g, 1.5 mol, 3 moleq) was added dropwise to a solution of 4-vinylbenzenesulfonic acid lithium salt (95.08 g, 0.500 mol, 1 moleq) and 4OH-TEMPO (50 mg, 500 ppm) in DMF (300 mL). After the addition was complete, the solution was slowly heated to room temperature and stirred for an additional 16 h. The reaction mixture was then poured into 1 L of cold 1 M KCl via a separatory funnel. The bottom layer was removed and added dropwise to a solution of 25% ammonium hydroxide in water (250 mL, 3.67 mol, 15 moleq) and 4OH-TEMPO (50 mg, 500 ppm) in a double-walled reactor actively cooled to 5°C. After the addition was complete, the solution was stirred for 1 h. The solution was then heated to room temperature and stirred for 1 h. The reaction mixture was then cooled back to 5°C and the product was filtered off and washed with 50 mL of cold water. The product (NH2-SS) was dried in vacuo at 30°C overnight and used without further purification. Typical yield is 66.8 g (73%). HPLC-MS purity >95%. Synthesis of XL-D

[0141] [ka]

[0142] Prior to synthesis, methanesulfonamide was dried overnight in a vacuum oven (30°C, vac). To a solution of dried methanesulfonamide (8.32 g, 0.087 mol, 1 mol eq) and 4OH-TEMPO (30 mg, 500 ppm) in THF (100 mL) was added LiH (1.53 g, 0.192 mol, 2.2 mol eq) as a solid in one portion. The reaction mixture was stirred for 30 min at room temperature. Then, a solution of Cl-DVBS (20 g, 0.087 mol, 1 mol eq) in THF (50 mL) was added to the reaction mixture. After the addition, the reaction mixture was heated to 60°C (water bath temperature). After 2 days, the reaction mixture was filtered through Celite to remove excess LiH. The filtrate was concentrated in vacuo to give a pale yellow foam. The resulting foam was dissolved in 500 mL of ethyl acetate. Celite was added, and the resulting slurry was stirred for 5 min. The Celite was then filtered off and washed with 100 mL of ethyl acetate. This Celite step was then repeated. The solvent was then evaporated in vacuo, and the resulting white foam was washed with 500 mL of diethyl ether overnight. The resulting white powder was filtered off and dried in a vacuum oven at 30° C. for 16 hours to obtain a hygroscopic white solid. The typical achieved yield is 15.5 g (60%). HPLC-MS purity >95%; 1 H-NMR: <3 wt% residual solvent; 2 wt% divinylbenzenesulfonate; ICP-OES: 24-30 g Li / kg product. Synthesis of XL-2

[0143] [ka]

[0144] Prior to synthesis, styrenesulfonamide (NH2-SS) was dried overnight in a vacuum oven (30 °C, vac). To a solution of dried styrenesulfonamide (16.90 g, 0.092 mol, 2.05 mol eq) and 4OH-TEMPO (30 mg, 500 ppm) in THF (100 mL) was added LiH (1.50 g, 0.189 mol, 4.2 mol eq) as a solid in one portion. The reaction mixture was stirred for 30 min at room temperature. Then, a solution of 1,3-benzenedisulfonyl chloride (12.38 g, 0.045 mol, 1 mol eq) in THF (50 mL) was added to the reaction mixture. After the addition, the reaction mixture was heated to 60 °C (water bath temperature). After 2 days, the reaction mixture was filtered through Celite to remove excess LiH. The filtrate was concentrated in vacuo to give a pale yellow foam. The resulting foam was dissolved in 500 mL of ethyl acetate. Celite was added and the resulting slurry was stirred for 5 minutes. The Celite was then filtered off and washed with 100 mL of ethyl acetate. This Celite procedure was then repeated. The solvent was then evaporated in vacuo and the resulting white foam was washed with 500 mL of diethyl ether overnight. The resulting white powder was filtered off and dried in a vacuum oven at 30°C for 16 hours to give a hygroscopic white solid. The typical achieved yield is 14.5 g (54%). HPLC-MS purity >96%; 1 H-NMR: <2 wt% residual solvent; <2 wt% styrenesulfonamide; ICP-OES: 35-40 g Li / kg product. Synthesis of MM-M

[0145] [ka]

[0146] Prior to synthesis, methanesulfonamide was dried overnight in a vacuum oven at 30°C. To a solution of dried methanesulfonamide (0.100 mol, 1 mol eq) and 4OH-TEMPO (30 mg, 500 ppm) in THF (100 mL), LiH (0.300 mol, 3 mol eq) was added as a solid in one portion. The reaction mixture was stirred for 30 min at room temperature. Then, a solution of vinylbenzylsulfonyl chloride (Cl-SS) (0.100 mol, 1 mol eq) in THF (50 mL) was added, and the reaction mixture was heated to 60°C (water bath temperature) for 16 h. The resulting solution was filtered through Celite, and the resulting foam was dissolved in 500 mL of ethyl acetate. Celite was added, and the resulting slurry was stirred for 5 min. The Celite was then filtered off and washed with 100 mL of ethyl acetate. The solvent was then evaporated in vacuo, and the resulting white foam was triturated with 500 mL of diethyl ether overnight. The resulting product was collected by filtration and isolated as a white, hygroscopic powder (80% yield, >94% purity). The present invention includes the following aspects. [1] A composite membrane comprising: a) a first layer comprising a first porous support and a first ionic polymer present in the pores of the first porous support; b) a second layer comprising a second porous support and a second ionic polymer present in the pores of the second porous support; c) a third layer comprising a third porous support, a third ionic polymer, and a fourth ionic polymer, wherein the third ionic polymer is present in the pores of the third porous support; and Including, (i) one of the first ionic polymer and the second ionic polymer is a cationic polymer and the other is an anionic polymer; (ii) a third layer c) is sandwiched between the first layer a) and the second layer b); (iii) the third ionic polymer comprises a network of pores, and the fourth ionic polymer resides within the pores of the third ionic polymer; (iv) one of the third ionic polymer and the fourth ionic polymer is a cationic polymer, and the other is an anionic polymer; Composite membrane. [2] 2. The composite membrane of claim 1, wherein the third ionic polymer is obtainable by a method comprising phase separating the third ionic polymer from a composition used to prepare the third ionic polymer. [3] 3. The composite membrane according to 2, wherein the phase separation is polymerization-induced phase separation. [4] 4. The composite membrane of any one of claims 1 to 3, wherein the first curable composition is the same as the fourth curable composition. [5] 5. The composite membrane of any one of 1 to 4, wherein the third ionic polymer has the same charge as the second ionic polymer. [6] 6. A composite membrane according to any one of 1 to 5, wherein the third and fourth ionic polymers are present in the third layer c) as a bicontinuous network comprising the third and fourth ionic polymers. [7] 7. A composite membrane according to any one of 1 to 6, wherein the porous supports present in the first layer a), the second layer b), and the third layer c) are chemically and physically identical. [8] 8. A composite membrane according to any one of claims 1 to 7, wherein the porous supports present in two of layers a), b), and c) are chemically and physically identical to one another, and the porous supports present in the remaining of layers a), b), and c) are chemically and / or physically different from the porous supports present in the other two layers. [9] 8. The composite membrane of any one of claims 1 to 7, wherein the porous support present in each of layers a), b), and c) is chemically and / or physically different from the porous support present in the other two of layers a), b), and c).

[10] 10. The composite membrane of any of 1 to 9, wherein the first layer a), the second layer b), and the third layer c) each independently have an average thickness between 10 μm and 200 μm.

[11] 11. The composite membrane of any of 1 to 10, comprising an interface (first interface) between a first layer a) and a third layer c), and an interface (second interface) between the third layer c) and a second layer b), wherein both the first interface and the second interface are uninterrupted, and there are no gaps and / or spaces between the first layer a) and the third layer c), and there are no gaps and / or spaces between the third layer c) and the second layer b).

[12] 12. The composite membrane of any one of claims 1 to 11, comprising an interface between the third ionic polymer and the fourth ionic polymer that is uninterrupted and without any gaps and / or spaces between the third ionic polymer and the fourth ionic polymer.

[13] The first ionic polymer (a1) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group; (b1) 1 to 88 wt % of a curable compound containing at least two ethylenically unsaturated groups and optionally an ionic group; (c1) 0 to 10 wt% of a radical initiator; (d1) 0 to 55 wt% solvent 13. A composite membrane according to any of 1 to 12, obtainable by a process comprising the step of curing a first curable composition comprising:

[14] The second ionic polymer (a2) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group of opposite charge to the curable compound present in the first curable composition; (b2) 1 to 88 wt % of a curable compound containing at least two ethylenically unsaturated groups and optionally an ionic group; and (c2) 0 to 10 wt% of a radical initiator; (d2) 0 to 55 wt% solvent 14. A composite membrane according to any of 1 to 13, obtainable by a process comprising the step of curing a second curable composition comprising:

[15] a third ionic polymer; (a3) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group; (b3) 1 to 70 wt % of a curable compound containing at least two ethylenically unsaturated groups and optionally an ionic group; and (c3) 0 to 10 wt% of a radical initiator; (d3) 20 to 98 wt% solvent 15. A composite membrane according to any of 1 to 14, obtainable by a process comprising the step of curing a third curable composition comprising:

[16] a fourth ionic polymer (a4) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group of opposite charge to the curable compound present in the third curable composition; (b4) 1 to 88 wt % of a curable compound containing at least two ethylenically unsaturated groups and optionally an ionic group; and (c4) 0 to 10 wt% of a radical initiator; (d4) 0 to 55 wt% solvent 16. A composite membrane according to any one of 1 to 15, obtainable by a process comprising the step of curing a fourth curable composition comprising:

[17] 17. A composite membrane according to any one of 1 to 16, which is a composite bipolar membrane.

[18] 18. The composite membrane of any one of claims 1 to 17, wherein the volume ratio of the third ionic polymer to the fourth ionic polymer is from 0.1 to 0.9.

[19] 1. A method for preparing a composite membrane, comprising the steps of: I. Providing a first porous support, a second porous support, and a third porous support; II. Providing a first hardenable composition comprising a hardenable ionic compound, a second hardenable composition comprising a hardenable ionic compound of opposite charge to the hardenable compounds present in the first hardenable composition, a third hardenable composition comprising a hardenable ionic compound, and a fourth hardenable composition comprising a hardenable ionic compound of opposite charge to the hardenable compounds present in the third hardenable composition; III. Impregnating a third porous support with a third curable composition; IV. curing the third curable composition present in the third porous support to form a third porous support and a layer ("base layer") comprising a third ionic polymer comprising a network of pores; V. Impregnating the network of pores of the third ionic polymer with a fourth curable composition; VI. Contacting a first curable composition with a first side of a substrate; VII. Contacting a second curable composition with a second side of the substrate; VIII. curing, in any order or simultaneously, the first curable composition, the second curable composition, and the fourth curable composition, thereby forming a first ionic polymer, a second ionic polymer, and a fourth ionic polymer, respectively; Including, (a) when the first curable composition is cured, the first curable composition comprises a first porous support; (b) when the second curable composition is cured, the second curable composition comprises a second porous support; method.

[20] 20. The method of claim 19, wherein the first curable composition, when applied to the first side of the substrate, comprises a first porous support.

[21] 20. The method of claim 19, wherein a first curable composition is applied to the first side of the substrate, and then a first porous support is applied to the first curable composition.

[22] 22. The method of any one of 19 to 21, wherein the second curable composition, when applied to the second side of the base layer, comprises a second porous support.

[23] 22. The method of any one of claims 19 to 21, wherein after a second curable composition is applied to the second side of the base layer, a second porous support is applied to the second curable composition.

[24] 24. The method of any one of claims 19 to 23, wherein the first curable composition comprising the first porous support is cured before the second composition comprising the second porous support is cured.

[25] 23. The method of any one of 18 to 22, wherein a first curable composition comprising a first porous support and a second composition comprising a second porous support are cured simultaneously.

[26] 26. The method of any one of claims 19 to 25, wherein the first curable composition is the same as the fourth curable composition.

Claims

1. A composite membrane comprising: a) a first layer comprising a first porous support and a first ionic polymer present in the pores of the first porous support; b) a second layer comprising a second porous support and a second ionic polymer present in the pores of the second porous support; c) a third layer comprising a third porous support, a third ionic polymer, and a fourth ionic polymer, wherein the third ionic polymer is present in the pores of the third porous support; and Including, (i) one of the first ionic polymer and the second ionic polymer is a cationic polymer and the other is an anionic polymer; (ii) a third layer c) is sandwiched between the first layer a) and the second layer b); (iii) the third ionic polymer comprises a network of pores, and the fourth ionic polymer resides within the pores of the third ionic polymer; (iv) one of the third ionic polymer and the fourth ionic polymer is a cationic polymer, and the other is an anionic polymer; Composite membrane.

2. 10. The composite membrane of claim 1, wherein the third ionic polymer is obtainable by a process comprising polymerization-induced phase separation of the third ionic polymer from a composition used to prepare the third ionic polymer.

3. 3. The composite membrane of claim 1, wherein the network of pores comprises a first ionic polymer and a second ionic polymer, such that the first ionic polymer acts as a fourth ionic polymer to partially fill the pores of the third ionic polymer, and the second ionic polymer fills the remaining pores.

4. 4. The composite membrane of claim 1, wherein the third and fourth ionic polymers are present in the third layer c) and comprise two continuous polymer domains derived from the third and fourth ionic polymers, one domain derived from the fourth ionic polymer being located within the other domain derived from the third ionic polymer, forming a bicontinuous network of the fourth ionic polymer within the third ionic polymer.

5. 5. The composite membrane of claim 1, wherein the first layer a), the second layer b), and the third layer c) each independently have an average thickness between 10 μm and 200 μm.

6. 6. The composite membrane of claim 1, comprising a first interface between the first layer a) and the third layer c) and a second interface between the third layer c) and the second layer b), wherein both the first interface and the second interface are continuous, without any gaps and / or spaces between the first layer a) and the third layer c), and without any gaps and / or spaces between the third layer c) and the second layer b).

7. 7. The composite membrane of claim 1, comprising a third interface within the third layer between the third ionic polymer and the fourth ionic polymer that is uninterrupted, without any gaps and / or spaces between the third ionic polymer and the fourth ionic polymer.

8. (i) the first ionic polymer is (a1) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group; (b1) 1 to 88 wt % of a curable compound comprising at least two ethylenically unsaturated groups and an ionic group; (c1) 0 to 10 wt % of a radical initiator; (d1) 0 to 55 wt % of a solvent; and wherein the curable composition is obtained by a process comprising the step of curing a first curable composition comprising: (ii) the second ionic polymer is (a2) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group of opposite charge to the curable compound present in the first curable composition; (b2) 1 to 88 wt % of a curable compound comprising at least two ethylenically unsaturated groups and an ionic group of opposite charge to the curable compound present in the first curable composition; (c2) 0 to 10 wt % of a radical initiator; (d2) 0 to 55 wt % of a solvent; and wherein the curable composition is obtained by a process comprising the step of curing a second curable composition comprising: (iii) the third ionic polymer is (a3) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group; (b3) 1 to 70 wt % of a curable compound comprising at least two ethylenically unsaturated groups and an ionic group; (c3) 0 to 10 wt % of a radical initiator; (d3) 20 to 98 wt % of a solvent; and wherein the third curable composition comprises: (iv) a fourth ionic polymer (a4) 0 to 60 wt % of a curable compound having one ethylenically unsaturated group and an ionic group of opposite charge to the curable compound present in the third curable composition; (b4) 1 to 88 wt % of a curable compound comprising at least two ethylenically unsaturated groups and an ionic group of opposite charge to the curable compound present in the third curable composition; (c4) 0 to 10 wt % of a radical initiator; (d4) 0 to 55 wt % of a solvent; 8. A composite membrane according to any one of claims 1 to 7, obtainable by a process comprising the step of curing a fourth curable composition comprising:

9. 9. The composite membrane of claim 1, which is a composite bipolar membrane.

10. 1. A method for preparing a composite membrane, comprising the steps of: I. Providing a first porous support, a second porous support, and a third porous support; II. Providing a first hardenable composition comprising a curable ionic compound, a second hardenable composition comprising a curable ionic compound of opposite charge to the curable compounds present in the first hardenable composition, a third hardenable composition comprising a curable ionic compound, and a fourth hardenable composition comprising a curable ionic compound of opposite charge to the curable compounds present in the third hardenable composition; III. Impregnating a third porous support with a third curable composition; IV. curing the third curable composition present in the third porous support to form a base layer comprising a third porous support and a third ionic polymer comprising a network of pores; V. Impregnating the network of pores of the third ionic polymer with a fourth curable composition; VI. Contacting a first curable composition with a first side of a substrate; VII. Contacting a second curable composition with a second side of the substrate; VIII. Curing, in any order or simultaneously, the first curable composition, the second curable composition, and the fourth curable composition, thereby forming a first ionic polymer, a second ionic polymer, and a fourth ionic polymer, respectively; Including, (a) when the first curable composition is cured, the first curable composition comprises a first porous support; (b) when the second curable composition is cured, the second curable composition comprises a second porous support; (c) one of the first curable composition and the second curable composition comprises a curable compound having an ethylenically unsaturated group and an anionic group, and the other comprises a curable compound having an ethylenically unsaturated group and a cationic group; (d) one of the third curable composition and the fourth curable composition contains a curable compound having an ethylenically unsaturated group and an anionic group, and the other contains a curable compound having an ethylenically unsaturated group and a cationic group; method.

11. the first curable composition, when applied to the first side of the substrate, comprises a first porous support; or a first curable composition is applied to the first side of the substrate, and then a first porous support is applied to the first curable composition; The method of claim 10.

12. a second curable composition, when applied to the second side of the substrate, comprising a second porous support; or a second curable composition is applied to the second side of the substrate, and then a second porous support is applied to the second curable composition; 12. The method according to claim 10 or 11.

13. the first curable composition comprising the first porous support is cured before the second composition comprising the second porous support is cured; Or, a first curable composition comprising a first porous support and a second composition comprising a second porous support are cured simultaneously; 13. The method according to any one of claims 10 to 12.

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