Chemically modified substrates

Carbene and nitrene crosslinking modifiers are used to permanently alter the surface properties of polymeric materials, addressing damage issues in existing methods and enhancing adhesion and durability for specific applications.

JP7724271B2Active Publication Date: 2025-08-15CELGARD LLC
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Patent Information

Application Number
JP2023187020
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2011-10-17
Filing Date
2023-10-31
Publication Date
2025-08-15
Estimated Expiration
2032-07-18

AI Technical Summary

Technical Problem

Existing methods for modifying the surface properties of polymeric materials are often temporary and can cause mechanical or chemical damage, limiting their effectiveness for various end-use applications.

Method used

The use of carbene and nitrene crosslinking modifiers to chemically modify functionalized polymers, forming a modified functionalized polymer that can covalently bond with the polymer substrate, altering its surface properties for specific applications.

Benefits of technology

This method results in permanent modification of the polymer surface, enhancing adhesion, wettability, and durability, particularly in applications like adhesive bonding, lamination, and improving the performance of polyolefin microporous membranes and textile fibers.

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Abstract

To provide new, improved or modified polymer materials, membranes, substrates and the like, and new, improved or modified methods for permanently modifying the physical and / or chemical nature of surfaces of a polymer substrate for a variety of end uses or applications.SOLUTION: An improved method comprises using a carbene and / or nitrene modifier to chemically modify a functionalized polymer to form a chemical species which can chemically react with the surface of a polymer substrate and alter its chemical reactivity. In the method, the polymer substrate and further this invention can be used to produce chemically modified membranes, fibers, hollow fibers, textiles and the like, for example, to produce polyolefin microporous battery separators or membranes having improved hydrophilicity or wettability, having crosslinking in the polyolefin which can improve high temperature stability, and the like.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to surface-modified polymeric materials, modified functionalized polymers, functional polymers, chemically modified substrates comprising modified functionalized polymers, surface-modified polymeric materials, modified functionalized polymers, functional polymers, and / or chemically modified substrates comprising modified functionalized polymers. It also relates to methods of using the substrates, methods of modifying functionalized polymers to chemically react with the surface of a substrate, and / or methods of using modified functionalized polymers, and / or methods of using such chemically modified substrates. At least certain embodiments of the present invention are directed to modified functionalized polymers, functional polymers, and methods of modifying functionalized polymers to chemically modify porous and / or non-porous polymeric substrates, and / or methods of using such modified substrates. At least selected embodiments are directed to modified functionalized polymers, functional polymers, and methods of modifying functionalized polymers to chemically modify porous and / or microporous polymeric substrates, and methods of using such modified substrates. At least certain embodiments are directed to modifying certain functionalized polymers so that they can effect changes in the surface properties of a substrate. In accordance with at least selected and possibly preferred embodiments, the present invention is directed to the chemical modification of functionalized polymers using carbene and / or nitrene crosslinking modifiers to form modified functionalized polymers that can chemically modify the surface of a substrate and effect changes to the surface properties of the substrate for an intended use. In accordance with at least selected and possibly preferred embodiments, the present invention is directed to the use of carbene and / or nitrene crosslinking modifiers (component B) to covalently modify the polymer surface with the functionalized polymer (component A). Such modification can alter the chemical reactivity of the polymer surface, enabling the modified substrate to have specifically designed functionality for an intended end use or application. [Background technology]

[0002] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to and the benefit of U.S. Provisional Patent Application No. 61 / 508,725, filed July 18, 2011, and U.S. Provisional Patent Application No. 61 / 547,812, filed October 17, 2011, both of which are incorporated herein in their entireties.

[0003] Various methods exist for modifying the physical or chemical properties of the surface of polymeric materials. Some known modifications of the surface of polymeric materials are often temporary and fail to permanently modify the polymer substrate for various end-use applications.

[0004] One such known method is the treatment or pretreatment of the surface of a polymer substrate, for example, using ultraviolet, plasma, or corona treatment. Such treatments can be too harsh, especially for thin films and certain polymer classes. The use of these techniques can pose a risk of mechanical or chemical damage to the surface of the polymer substrate. In some cases, the damage can interfere with the performance of the modified polymer substrate for its intended end-use application. Summary of the Invention [Problem to be solved by the invention]

[0005] Thus, there exists a need for improved methods of modifying the physical and / or chemical properties of the surface of polymeric materials. Specifically, for various end-use applications, surface-modified polymeric materials, modified functionalized polymers, functional polymers, such materials, and the like. There is a need for improved or new methods of permanently modifying polymeric substrates.

[0006] The present invention aims to provide or at least address the need for improved methods for modifying the physical and / or chemical properties of the surface of polymeric materials, for improved or novel methods of permanently modifying polymeric substrates for use in a variety of end-use applications, surface-modified polymeric materials, modified functionalized polymers, functional polymers, such materials, and the like. [Means for solving the problem]

[0007] At least certain embodiments of the present invention can address the above-mentioned needs and are directed to modified functionalized polymers, functional polymers, and chemically modified substrates comprising the modified functionalized polymers, methods of modifying the functionalized polymers to chemically react with the surface of a substrate, and / or methods of using the modified functionalized polymers, and / or methods of using such chemically modified substrates.

[0008] More specifically, at least certain embodiments are directed to modifying certain functionalized polymers so that they can effect changes in the surface properties of a substrate. According to at least selected preferred embodiments, the present invention is directed to using, preferably, carbines, nitrenes, and combined carbine and nitrene crosslinking modifiers (Component B or Modifier Component B), or the like, to chemically modify the functionalized polymer (Component A or Functionalized Component A) to form a modified functionalized polymer AB that can chemically modify the surface of a polymer substrate and effect changes in the surface properties of the polymer substrate for a desired application, product, process, or end use. Carbenes (RC:) are any number of highly reactive molecules containing a divalent carbon atom, i.e., a carbon atom utilizing only two of the four bonds that can form with other atoms without an associated ionic charge. Nitrenes (RN:) are the nitrogen analogs of carbenes, possessing only six valence electrons. Nitrenes and carbenes are reactive intermediates that can react with functional component A to form specific chemical species that can react with the polymer substrate, referred to herein as the "modified functionalized polymer AB," to provide specific chemical functional adhesion to the polymer substrate and tailor the chemical structure or properties of the specific polymer substrate for the intended end use.

[0009] The chemical reaction of the modified functionalized polymer AB having specific chemical functionality with the polymer surface of the substrate can result in permanent modification (chemical modification) of the polymer surface of the substrate. More specifically, the reaction of the functionalizing component A with the modifier component B can produce the modified functionalized polymer AB, which can act as an adhesion promoter / demoter agent.

[0010] Chemical reaction of the modified functionalized polymer AB, which has specific chemical functionality, with the polymer surface of the substrate can result in permanent modification of the substrate polymer surface. More specifically, reaction of the functionalizing component A with the modifier component B can produce a modified functionalized polymer AB that can act as an adhesion promoter / suppressor, which then chemically bonds with the surface of the polymer substrate and alters the surface energy of the polymer substrate to result in enhanced adhesion in adhesive or lamination applications.

[0011] Even more specifically, the modified functionalized polymer AB can covalently modify a polymer substrate having a low or high surface energy that prevents direct adhesion of the functionalized component A. More specifically, the modified functionalized polymer AB can modify a polymer substrate having a polarity that limits and / or prevents direct adhesion of the functionalized polymer A. Even more specifically, the modified functionalized polymer AB can modify a polymer substrate having a hydrophilic or hydrophobic surface that limits and / or prevents direct adhesion of the functionalized component A. Even more specifically, the modified functionalized polymer AB can modify a polymer substrate having a hydrophilic or hydrophobic surface that limits and / or prevents direct adhesion of the functionalized component A. The polymer substrate can be modified to have an oleophilic or oleophobic surface.

[0012] Even more specifically, the modified functionalized polymer AB can modify a polymer substrate by altering its surface energy. More specifically, the modified functionalized polymer AB can be used to increase or decrease the effective surface energy of a polymer substrate, for example, to improve its compatibility with a coating film, material, adjacent layer, or the like.

[0013] More specifically, the modified functionalized polymer AB can modify a polymer substrate with a polarity that limits and / or prevents direct adhesion of the functional polymer A, can modify a polymer substrate with a hydrophilic or hydrophobic surface that limits and / or prevents direct adhesion of the functional component A, or can modify a polymer substrate with an oleophilic or oleophobic surface that limits and / or prevents adhesion of the functional component A.

[0014] At least certain selected embodiments of the present invention address the aforementioned needs and are directed to modified functionalized polymers, functional polymers, and chemically modified substrates comprising the modified functionalized polymers, methods of modifying the functionalized polymers to chemically react with the surface of a substrate and / or methods of using the modified functionalized polymers, and / or methods of using such chemically modified substrates. At least certain embodiments are directed to modified functionalized polymers, functional polymers, and methods of modifying the functionalized polymers to chemically modify porous and non-porous polymeric substrates, and methods of using such modified substrates. At least certain embodiments are directed to modified functionalized polymers, functional polymers, and methods of modifying the functionalized polymers to chemically modify porous and microporous polymeric substrates, and methods of using such modified substrates.

[0015] At least certain selected embodiments of the present invention address the need for modifying the surface of a porous polymer substrate. At least certain selected embodiments of the present invention address the need and / or provide modified porous polymeric membrane substrates, methods of making modified polymeric porous membrane substrates, and / or methods of using modified polymeric porous membrane substrates, chemically modified polyolefin microporous membranes, methods of making chemically modified polyolefin microporous membranes, and / or methods of using chemically modified polyolefin microporous membranes, chemically modified polyolefin microporous battery separators or battery separator membranes, methods of making chemically modified polyolefin microporous battery separators or battery separator membranes, and / or methods of using chemically modified polyolefin microporous battery separators. the chemical modification of a polyolefin microporous battery separator or separator membrane by reaction of a modified functionalized polymer AB containing a carbene and / or nitrene intermediate that forms a carbon-carbon or covalent bond with the polyolefin with the carbon-hydrogen bonds of the polyolefin; a method for improving the hydrophilicity or wettability of a polyolefin microporous battery separator or separator membrane in a lithium ion rechargeable battery; and / or a method for introducing crosslinks into a polyolefin microporous battery separator or separator membrane; and / or the like.

[0016] In accordance with at least selected possibly preferred embodiments of the present invention, chemical modification of at least a portion of the surface of a polyolefin microporous separator or membrane can be achieved, for example, by the carbon-hydrogen bonding of a polyolefin with a functionalized polymer A containing a carbene intermediate and / or nitrene intermediate. This chemical reaction or treatment based on a functionalized polymer A containing a carbene intermediate and / or nitrene intermediate (Component A or functionalized component A) provides a method for more permanently improving the wettability of a polyolefin microporous separator in a lithium-ion rechargeable battery. In addition, crosslinking of the polyolefin can be achieved using the preferred reaction of a functionalized polymer A containing a carbene intermediate and / or nitrene intermediate with the C-C and C-H bonds of at least one surface layer of the polyolefin microporous separator membrane. Functionalities can be introduced that may be used to improve the high temperature stability of the polyolefin microporous separator or membrane.

[0017] According to at least certain selected embodiments, the present invention addresses the need for modifying the surface of a porous polymer substrate. At least selected embodiments of the present invention address this need and are directed to modified porous polymer membrane substrates, methods of making modified polymer porous membrane substrates, and methods of using modified polymer porous membrane substrates. More specifically, the present invention is directed to chemically modified polyolefin microporous membranes, methods of making chemically modified polyolefin microporous membranes, and methods of using chemically modified polyolefin microporous membranes. Even more specifically, the present invention is directed to chemically modified polyolefin microporous waterproof / breathable textile membranes, methods of making chemically modified polyolefin microporous waterproof / breathable textile membranes, and methods of using chemically modified polyolefin microporous waterproof / breathable textile membranes. In accordance with at least selected preferred embodiments, the present invention is directed to chemical modification of polyolefin microporous waterproof / breathable textile membranes by reaction of modified functionalized polymers AB containing carbene and / or nitrene intermediates with the carbon-hydrogen bonds of the polyolefin, methods for reducing the surface energy or imparting oleophobic properties to waterproof / breathable textile membranes so as to improve the fouling resistance of the waterproof / breathable textile membranes and / or improve the durability of the waterproofing of the membranes, and / or the like.

[0018] According to certain selected embodiments, the present invention addresses the need for modifying the surface of polymeric textile fibers. At least selected embodiments of the present invention address this need and are directed to modified polymeric textile fibers, methods of making modified polymeric textile fibers, and methods of using modified polymeric textile fibers. More specifically, the present invention is directed to chemically modified polyolefin textile fibers, methods of making chemically modified polyolefin textile fibers, and methods of using chemically modified polyolefin textile fibers. According to at least selected and possibly preferred embodiments, the present invention is directed to chemical modification of polymeric textile fibers by reaction of modified functionalized polymers AB containing carbene and / or nitrene intermediates with the carbon-hydrogen bonds of the polymeric textile fibers, methods of reducing the surface energy or imparting oleophobic properties to the polymeric textile fibers to improve the fouling resistance of the polymeric textile fibers and / or improve the durability of the waterproofing of the textile fibers, and / or the like.

[0019] At least some objects, embodiments, aspects, and / or examples of the present invention are directed to surface-modified polymeric materials, modified functionalized polymers, functional polymers, chemically modified substrates comprising modified functionalized polymers, methods of making and / or using surface-modified polymeric materials, modified functionalized polymers, functional polymers, and / or chemically modified substrates comprising modified functionalized polymers, methods of modifying functionalized polymers to chemically react with the surface of a substrate, and / or methods of using modified functionalized polymers, and / or methods of using such chemically modified substrates. At least some embodiments are directed to modified functionalized polymers, functional polymers, and methods of modifying functionalized polymers to chemically modify porous and / or non-porous polymeric substrates, and / or methods of using such modified substrates. At least selected embodiments are directed to modified functionalized polymers, functional polymers, and methods of modifying functionalized polymers to chemically modify porous and / or microporous polymeric substrates, and methods of using such modified substrates. At least some embodiments are directed to modifying certain functionalized polymers so that they can effect changes in the surface properties of a substrate. In accordance with at least selected and possibly preferred embodiments, the present invention is directed to the use of carbene and / or nitrene crosslinking modifiers to chemically modify a functionalized polymer to form a modified functionalized polymer capable of chemically modifying the surface of a substrate and effecting changes to the surface properties of the substrate for an intended application. In accordance with at least selected and possibly preferred embodiments, the present invention is directed to the use of carbene and / or nitrene crosslinking modifiers (component B) to covalently modify a polymer surface with a functionalized polymer (component A). Such modification results in a polymer surface The chemical reactivity of the substrate can be altered, allowing the modified substrate to have specifically designed functionality for the intended end use or application.

[0020] At least certain objects, embodiments, aspects, and / or examples of the present invention are directed to improved or new methods for permanently modifying polymeric substrates, surface-modified polymeric materials, modified functionalized polymers, functional polymers, uses of such materials, and / or the like for various end uses or applications.

[0021] Other objects, embodiments, aspects, or examples of the invention may be shown or described in the drawings, the detailed description, or the claims. [Brief explanation of the drawings]

[0022] [Figure 1] Stylized reaction diagrams of nitrene generation, carbine generation, and insertion mechanisms or reactions according to at least selected possibly preferred embodiments of the present invention. For example, Figure 1 illustrates chemical reactions showing R / R' groups being modified to tailor surface characteristics of polyolefins, such as the surface of a polyolefin substrate, e.g., the R / R' groups can be modified to tailor surface characteristics such as wetting. [Figure 2] 1 is a schematic representation of a surface-modified polymeric material or a chemically modified substrate comprising a modified functionalized polymer, in accordance with at least selected possibly preferred embodiments of the present invention. [Figure 3] 1 is a schematic representation of a coated or treated surface-modified polymeric material, or a coated or treated chemically modified substrate, modified, for example, with a modified functionalized polymer that facilitates a desired coating or treatment (such as by increasing or decreasing the surface energy of the polymeric material or substrate surface), in accordance with at least selected possibly preferred embodiments of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0023] At least certain embodiments of the present invention may address the above needs and / or are directed to new, improved or modified surface-modified polymeric materials, modified functionalized polymers, functional polymers, and / or chemically modified substrates comprising the modified functionalized polymers, and / or methods of modifying functionalized polymers, and / or methods of using the modified functionalized polymers to chemically react with the surface of a substrate, and / or methods of using such chemically modified substrates.

[0024] More specifically, certain embodiments are directed to modifying certain functionalized polymers such that they can effect changes in the surface properties of a substrate. In accordance with at least selected preferred embodiments, the present invention is preferably directed to using a carbene cross-linking modifier and / or a nitrene cross-linking modifier (component B or modifier component B) to chemically modify a functionalized polymer (component A or functional or functionalized component A) that can then chemically modify the surface of a polymer substrate to form a modified functionalized polymer AB for an intended application.

[0025] Carbenes (RC:) are a class of highly reactive molecules of any member that contain a divalent carbon atom, i.e., a carbon atom that utilizes only two of the four bonds that can be formed with other atoms. Nitrenes (RN:) are the nitrogen analogs of carbenes, possessing only six valence electrons. Nitrenes and carbenes are reactive intermediates that possess inherent reactivity toward both functionalized and nominally non-functionalized substrates. While there may be methods capable of modifying certain functionalized polymer substrates, the present invention provides methods well suited to modifying those polymer substrates that are non-functionalized, i.e., that do not contain functional groups. Most polyolefins are essentially "non-functionalized" such that they do not readily tolerate modification without significant effects on the mechanical or chemical stability of the material. Carbene and / or nitrene-based intermediates allow for the modification of non-functionalized substrates without the violent decomposition that typically occurs in many conventional surface modification techniques. This provides an opportunity to modify polyolefins. Furthermore, the use of the carbene, nitrene, or combined carbene and nitrene-based intermediates of the present invention may provide an opportunity to apply most, if not all, polymer substrates, regardless of functional group-specific chemical modification. The reactive carbene and / or nitrene-based intermediates of the present invention have the advantage of being able to insert into the carbon-hydrogen chemical bond of polyolefin polymer substrates. The unique chemical reactivity of the carbene and / or nitrene-based intermediates allows the functionalized component AB to react with "non-functionalized" materials, providing a means for component A to adhere to the polymer substrate.

[0026] In accordance with one embodiment of the present invention, a modifier component B with multiple carbene and / or nitrene intermediates or precursors can be mixed with one or more desired functional components A' to form a unique chemical species referred to herein as a "multi-reactive site modified functionalized polymer AB." With the appropriate ratios and formulation conditions, this coacervate can further react with a given polymer substrate, which can in fact be polyolefinized, or some other synthetic or naturally occurring polymeric material for the intended end use, to provide a specific desired chemical functionality for adhesion to the polymer substrate, specifically tailoring the chemical structure of the polymer substrate.

[0027] Chemical reaction of a modified functionalized polymer AB, bearing specific chemical functionality, with the polymer surface of a substrate can result in permanent covalent modification of the desired polymer surface with the chemical functionality of component A. In accordance with the present invention, one example is a polyolefin substrate modified with a poly(ethylene oxide) polymer or oligomer (exemplary component A). Component B, bearing multiple carbene- and / or nitrene-generating species, can act as a tether between the polyolefin surface and the poly(ethylene oxide) component A. The resulting composite material (polyolefin substrate with functionalized component AB) has bulk properties similar to the polyolefin substrate but with the surface properties of poly(ethylene oxide). For example, depending on the quality and extent of modification, a post-modified polyolefin surface may appear to have a significantly higher surface energy than standard polyolefin, approximating that of a typical poly(ethylene oxide) substrate surface. Applications of such functionalized component AB modified polymer substrates of the present invention include, for example, improved wettability of battery separator materials, anti-fouling, and adhesion promotion for certain coatings, materials, layers, or treatments, among others.

[0028] Other polymeric materials that can be used as component A in the functionalized component AB-modified polymer substrate can preferably include materials with different surface properties than the base substrate. For example, certain anti-fouling applications may require a fluorinated functional component A. Fluorinated polymers or oligomers can be used as functional component A to obtain a polymeric substrate surface with similar properties to the fluorinated material related to hydrophobic or oleophobic properties without suffering from the same bulk mechanical disadvantages as the bulk fluorinated material.

[0029] This concept, according to one embodiment of the present invention, may be extended to other substrates, such as polyamide substrates commonly used in carpets or textiles. Some known finishes for polyamide substrates typically have little chemical functionality to promote adhesion. Other typical covalent modifications may prove detrimental to the bulk properties of the material, resulting in degraded end-use properties of the polyamide substrate. The carbene and / or nitrene tether concept of the present invention may add standard textile finishes to these types of polyamide substrates.

[0030] In accordance with at least selected embodiments of the present invention, microporous polyolefin membrane substrates can be modified with selected functionalizing components AB to exclude a variety of materials, such as alcohols, aliphatics, and aromatic compounds. Microporous polyolefin membranes tend to absorb significant amounts of oil within their pores. Using the present functionalizing component AB treatment or modification, it is possible to eliminate or limit the amount of oil absorbed within the pores. The surface of microporous polyolefin membranes can be modified to exclude materials such as alcohols, aliphatics, or aromatic compounds, thereby creating modified substrates for use in advanced separations.

[0031] In accordance with at least selected embodiments of the present invention, there are also applications for using functionalized component AB to reduce the surface energy of microporous polyolefin membranes. The comfort of waterproof outerwear can be significantly improved by creating more breathable garments that allow moisture from the wearer's body to evaporate through the waterproof outerwear material. This functionality is commonly referred to as "waterproof / breathable" outerwear. Many waterproof / breathable garments incorporate nonporous materials that rely on molecular transport of water molecules to achieve breathability. There is a need to provide improved breathability by faithfully incorporating porous membranes that allow water vapor molecules to evaporate via diffusion into the air, thereby significantly improving breathability and enhancing wearer comfort. One disadvantage of some microporous membranes is that they become clogged by natural body oils or other oils, compromising the waterproof performance of the membrane. This disadvantage can be overcome by using the present invention to modify the surface of a microporous membrane, for example, with a fluorinated compound to render the membrane surface oleophobic and resistant to fouling by natural body oils or other oils.

[0032] In accordance with at least selected embodiments of the present invention, there are also applications for reducing the surface energy of polymeric textile fibers and / or materials using functionalized component AB. Waterproofing and / or stain resistance of polymeric textile fibers and materials is often achieved by the application of permanent water repellent ("DWR") coatings and finishes. These DWR coatings and finishes have poor durability and gradually wear off with repeated washing and / or use. Some textile fibers and / or materials, such as those made of acrylic, are not easily treated with DWR coatings and are often not used in applications where water and / or stain resistance is important. At least certain methods or embodiments of the present invention may be used to modify polymeric textile fibers and / or materials, for example, using fluorinated compounds to make the polymeric textile fibers and / or materials permanently waterproof and / or stain resistant.

[0033] Furthermore, according to at least selected embodiments of the present invention, the functionalized component AB may be used to reduce the surface energy of the polyolefin film used in the wall of a particular fragrance container device. Some fragrance container devices function via the sustained release of fragrance material through the wall or walls of the fragrance container device. The fragrance container device may typically be constructed of polyolefin, often polyethylene. However, the release rate of the fragrance through the polyolefin film wall of the fragrance container device may be limited by the non-porous nature of the polyolefin film. Therefore, the fragrance container device must be fabricated in a larger size, and / or the concentration of the fragrance in the fragrance container device must be increased to achieve the desired release rate of the fragrance.

[0034] There is an economic need to achieve desired fragrance release rate and at the same time use less fragrance in such fragrance container device.For this reason, the use of microporous polymer membrane as the wall material of fragrance container device or container can more rapidly promote the migration of fragrance through the membrane wall of fragrance container device.However, the use of microporous polyolefin membrane in fragrance container device application is limited by the tendency of fragrance oil to leak through the membrane wall of the container.This disadvantage can be overcome by the use of the present invention, for example, by using fluorinated functionalized polymer AB to modify the surface energy of the microporous membrane, so that the membrane or wall of fragrance container device becomes oleophobic and is resistant to fragrance oil leakage.

[0035] In accordance with at least selected embodiments of the present invention, the modified functionalized polymer AB modifies a polymer substrate having a low or high surface energy that prevents direct adhesion of the functionalized component A. More specifically, the modified functionalized polymer AB can covalently modify a polymer substrate having a polarity that limits and / or prevents direct adhesion of the functionalized polymer A. Even more specifically, the modified functionalized polymer AB can modify a polymer substrate having a hydrophilic or hydrophobic surface that limits and / or prevents direct adhesion of the functionalized component A. Even more specifically, the modified functionalized polymer AB can modify a polymer substrate having an oleophilic or oleophobic surface that limits and / or prevents adhesion of the functionalized component A.

[0036] At least certain embodiments of the present invention are directed to the placement of specific chemical functionality in modified polymer A to enable the functionalized polymer A to act as an adhesion promoter or inhibitor for chemical reaction with the surface of a substrate. In accordance with at least selected, possibly preferred, embodiments, the present invention is directed to modifying functionalized polymer A with carbene and / or nitrene intermediates that contain cross-linking groups. The incorporation of cross-linking functional groups enables the functionalized polymer component A to act as an adhesion promoter or inhibitor polymer that can chemically modify the surface of a substrate, permanently or non-temporarily altering the surface of the substrate.

[0037] At least some embodiments are directed to modifying certain functionalized polymers in order to alter the surface energy of polymer substrates, which can result in enhanced adhesion for adhesive or lamination applications, particularly where other adhesion promotion techniques may harm the mechanical or chemical stability of the substrate.

[0038] At least certain embodiments are directed to modifying certain functionalized polymers with a single carbene component B and / or a single nitrene component B, or with a mixture of multifunctional carbene components B and / or multifunctional nitrene components B, to include bio-derived polymers and small molecules for end-use applications that may require biological detection or assays. Proteins, DNA, RNA, naturally occurring polysaccharides, or other bio-relevant materials may be used for these types of applications.

[0039] Surface modification of a polymeric substrate can be carried out for the purpose of changing its functionality. For example, a nominally inert polymeric substrate can be modified by endowing the substrate surface with functional groups added by modified functional component AB, which are designed to participate in a secondary post-treatment reaction that modifies the polymeric substrate. Such a change alters the functionality of the polymeric substrate for a desired end-use application. An example of such a post-treatment reaction is a textile end-use application in which the surface of a textile substrate is reacted with modified component AB, which can accept standard textile dyeing chemistries and procedures to produce a substantially different finish.

[0040] The polymer substrate can be composed of any synthetic or natural polymer or copolymer, blend and / or mixture thereof, such as olefin, styrene, silicone, urethane, acrylate, ester, vinyl, cellulose, amide, aramid, ether, or copolymer. In addition, the polymer substrate can also be a crosslinked network material such as phenol-formaldehyde resin, or a rubber-based material such as butadiene, isoprene, and neoprene. In addition, the polymer substrate can be a halogen-containing polymer such as polytetrafluoroethylene (PTFE), polyvinylidene fluoride (PVDF), polyvinylidene dichloride (PVDC), and polyvinyl chloride (PVC).

[0041] The chemical structure of the functional polymer A contains the desired surface functional groups required for the polymer substrate in the end-use application. The functional polymer A can be composed of similar polymers as the polymer substrate. In addition, the functional polymer A can be composed of polyamines, polyols, polyamides, and blends, mixtures, or copolymers of the same.

[0042] In accordance with at least selected preferred embodiments, the present invention is directed to the use of a multifunctional material (f>2.0) having pendant functional groups tailored to generate carbene and / or nitrene species in situ as Component B. Component A and Component B are chemically reacted to produce an active chemical species capable of reacting with the surface of the polymer substrate, allowing the modified polymer substrate to be useful in its intended end-use application.

[0043] The ratio of Components A and B may be varied to produce optimized performance characteristics in the end-use application. Typical application ratios of Component A / Component B may range from about 1.0 to 200.0, depending on the desired surface properties, the intended end-use application of the polymer substrate, and the reactivity of Components A and B.

[0044] We are interested in modifying certain functionalized polymers to include bio-derived polymers and small molecules for applications that may require biological detection or assays. Proteins, DNA, RNA, naturally occurring polysaccharides, or other bio-related materials may be used for these types of applications.

[0045] At least certain embodiments are directed to modifying the surface of a polymeric substrate with a mixture of multifunctional carbene precursors and / or multifunctional nitrene precursors, Component B, that are reacted with a desired, Component A, functional synthetic polymer, small molecule, or bioactive surface modifier.

[0046] Surface modification of a polymer substrate may be performed for the purpose of changing its functionality. For example, a nominally inert polymer substrate may be modified by imparting additional functional groups to the substrate surface with a functional Component A, or indirectly by modifying a "Component A-modified polymer substrate" in a secondary post-treatment reaction. Such a change alters the functionality of the polymer substrate for the intended end-use application. An example of such a post-treatment reaction is a textile end-use application in which the surface of a textile substrate is reacted with modified Component AB, which can accept standard textile dyeing chemistries and procedures to produce a substantially different finish.

[0047] At least selected embodiments of the present invention are directed to modified porous membranes, methods of making modified porous membranes, and methods of using modified porous membranes. More specifically, the present invention is directed to chemically modified polyolefin microporous membranes, methods of making chemically modified polyolefin microporous membranes, and methods of using chemically modified polyolefin microporous membranes. Even more specifically, the present invention is directed to chemically modified polyolefin microporous battery separators or battery separator membranes, methods of making chemically modified polyolefin microporous battery separators or battery separator membranes, and methods of using chemically modified polyolefin microporous battery separators or battery separator membranes.

[0048] In accordance with at least selected preferred embodiments, the present invention is directed to the chemical modification of polyolefin microporous battery separators or separator membranes by chemical reaction of carbene and / or nitrene intermediates with the carbon-hydrogen bonds of polyolefins, methods for improving the hydrophilicity or wettability of polyolefin microporous battery separators or separator membranes in lithium ion rechargeable batteries, methods for introducing crosslinks into polyolefin microporous battery separators or separator membranes, and / or the like.

[0049] In accordance with at least selected preferred embodiments of the present invention, chemical modification of at least a portion of the surface of a polyolefin microporous separator or separator membrane can be achieved by chemical reaction of a carbene intermediate and / or a nitrene intermediate with the carbon-hydrogen bonds of the polyolefin. This chemical reaction or treatment based on a carbene intermediate and / or a nitrene intermediate provides a method for more permanently improving the wettability of a polyolefin microporous separator in a lithium-ion rechargeable battery. In addition, the carbene intermediate and / or the nitrene intermediate can be used to more permanently improve the wettability of a polyolefin microporous separator in a lithium-ion rechargeable battery. The preferred reaction of the intermediate with C—C and C—H bonds in at least one surface layer of the polyolefin microporous separator membrane may be used to introduce crosslinks into the polyolefin, which may improve the high temperature stability of the polyolefin microporous separator or membrane.

[0050] Exemplary battery separators may be monolayer, multilayer, or multi-layer battery separators made from one or more layers or stacks of polyolefin porous membranes or films. Microporous membranes may be symmetric or asymmetric. Membranes may be made from one or more polyolefin polymers or blends, including, but not limited to, polyethylene (PE, including LDPE, LLDPE, and HDPE), ultra-high molecular weight polyethylene (UHMWPE), polypropylene (PP), polymethylpentene (PMP), copolymers of any of the foregoing, and mixtures thereof. Membranes may be made by any suitable process, including, but not limited to, the dry stretching process (also known as the CELGARD process), the solvent process (also known as gel extrusion, phase separation, extraction, or wet process), or the netting (or aperture) process, in which a film is cast on a chilled roll (the roll has a pattern embossed on the film), and the embossed film is then stretched (MD / TD), thereby forming large pores along the embossed pattern. The membrane preferably has the necessary characteristics to operate as a battery separator in a battery, such as a lithium battery, more preferably a rechargeable lithium-ion battery, or the like. The chemically modified membrane of the present invention may be a triple layer membrane (e.g., PP / PE / PP or PE / PP / PE), such as a triple barrier separator, or other multilayer membrane or outer layer of a separator.

[0051] Polyolefins may be a class or group of thermoplastic polymers derived from simple olefins. Polyolefins generally include polyethylene, polypropylene, polybutylene, polymethylpentene, and copolymers thereof. Polyolefin products generally include fibers and films, including microporous films and microporous hollow fibers. Microporous refers to products with multiple pores with effective diameters of less than 1 micron. Hydrophobic polyolefins refer to polyolefins with surface energies comparable to or lower than those of polyethylene.

[0052] In accordance with at least some embodiments, polyolefin products may be made more hydrophilic or hydrated by chemical modification of at least a portion of the surface of the polyolefin product, such as a microporous separator or membrane, by chemical reaction of a carbene intermediate and / or a nitrene intermediate with the carbon-hydrogen bonds of the polyolefin. Additionally, the preferred reaction of a carbene intermediate and / or a nitrene intermediate with C—C and C—H bonds in at least one surface layer of the polyolefin product may be used to introduce crosslinks into the polyolefin, which may improve high-temperature stability, strength, and / or the like. The aforementioned hydrophilic polyolefin products may be used in any application where hydrophilic polyolefins are needed or desirable, such as, for example, air filtration, air purification, water filtration, water washing, water purification, medical devices, separation devices, semiconductor manufacturing, battery cell separators, ultrafiltration devices, etc.

[0053] For battery or cell separators, the chemical treatment is applied to one or preferably both sides of a microporous polyolefin membrane, and this treated separator is particularly suitable for lithium ion secondary batteries.

[0054] For separation, filtration, cleaning, and purification equipment, high flux rates are obtainable through the use of the modified materials, especially when microporous polyolefin hollow fiber or flat sheet membranes are used.

[0055] Microporous membranes are typically hydrophobic polyolefin polymers. Examples include polyethylene, polypropylene, and blends, mixtures, or copolymers thereof. The method of making the membrane is not critical and may include, for example, "dry" stretch (or Celgard) or "solvent" stretch (or phase inversion) methods. Such membranes may have a thickness of less than about 75 microns. For some applications, dry-laid polypropylene membranes may be preferred.

[0056] Chemical modification of polyolefin carbon-hydrogen and other bonds as a means of permanently modifying their hydrophobic properties can be difficult due to the limited number of available chemical reactions. Both carbon-hydrogen and carbon-carbon bonds are very stable, making it difficult to permanently modify polyolefins such as polypropylene and polyethylene. Polyolefins such as polypropylene and polyethylene are commonly used in microporous separator membranes in lithium-ion rechargeable batteries. An important performance characteristic of polyolefin microporous separator membranes is their easy wettability by nonaqueous electrolyte solvents typically used in lithium-ion rechargeable batteries. Currently, various surfactants are applied as coatings to change the hydrophobic properties of polyolefin microporous separator membranes and improve their wettability by nonaqueous electrolyte solvents. Some surfactant coatings may only provide temporary wettability because they only physically adsorb to the surface of the polyolefin microporous separator membrane.

[0057] According to the present invention, a more permanent solution to providing wettability may utilize a chemical reaction that covalently bonds a surface modifier to a polyolefin microporous separator membrane. One of the few reactions that can react with carbon-hydrogen (C-H) bonds in polyolefins involves the use of carbene and / or nitrene intermediates. Carbene and nitrene intermediates are reactive intermediates of carbon and nitrogen, respectively, that have the ability to insert into C-H bonds of polyolefins with or without the presence of a transition metal catalyst. Figure 1 depicts the structures of carbene and nitrene intermediates upon heating or ignition.

[0058] Transition metal catalysts are typically expensive and should be recovered quickly to maintain an economical process. Several precursors exist that can provide the carbene intermediate via heating, ignition, or via chemical reaction.

[0059] Carbene intermediates can be formed via thermolysis or photolysis of diazo compounds. Chemical reactions between strong bases and compounds prone to α-elimination (methylene chloride, chloroform, bromoform, etc.) can also produce carbene intermediates. Nitrenes are typically formed via thermolysis or photolysis of azides (especially important aryl azides and sulfonyl azides) and via thermolysis of isocyanates. Thermolysis may tend to have more efficient insertion than other production methods.

[0060] Once the reactive intermediate is formed, its lifetime is typically very short. When introduced to the surface of a polyolefin separator membrane in an appropriate time frame, an insertion reaction can occur, as shown in Figure 1. Polyolefins with new functionality inserted into C-H bonds can be achieved via radical abstraction and recombination or via concerted reactions. The surface properties of polyolefins can be modified by the selection of R and R' functional groups in the carbene and / or nitrene intermediates.

[0061] For example, when diazo materials are made with long poly(ethylene gycol) tails, the resulting surface modification exhibits enhanced hydrophilicity, resulting in highly polar materials that provide enhanced wetting properties for polyolefin separator membranes.

[0062] Producing a variety of hydrophilic molecules involves ethylene glycol oligomers and polymers. Further modifications include, but are not limited to, hydroxyethyl acrylate, methacrylate, polyethyleneamine, modified cellulose or chitosan, which may be in oligomeric or polymeric form.

[0063] Carbene and / or nitrene surface treatments can also be achieved with a wide variety of small molecule functional groups. Carboxylic acids, alcohols, thiols, amines (primary, secondary, tertiary, and quaternary), guanidines, ethers, esters, and carbonates are functional groups that can produce more or less hydrophilic properties on polyolefin microporous separator membranes.

[0064] A significant increase in the wettability of polypropylene microporous separator membranes by highly polar electrolytes may be achieved through the current chemical modification of polypropylene microporous separator membranes, allowing a wide range of current and future electrolytes to be used in lithium-ion rechargeable batteries.

[0065] For example, the wetting properties of substrates can be significantly modified based on the substitution of molecular additives. Perfluoro groups can impart superhydrophobic properties, while poly(ethylene glycol) addition can increase water wettability. The feel of the material can be enhanced by using poly(dimethylsiloxane) to create a more tactile substrate. Furthermore, surface or bulk cross-linking and treatment of materials with multifunctional carbine and / or nitrene precursors results in enhanced cross-web toughness.

[0066] The use of carbene and / or nitrene intermediates, which involve multiple chemical reactions, can also insert specific structures designed to induce cross-linking of the polyolefin microporous separator membrane. The cross-linking of the polyolefin material is fixed together with the polymer molecules, providing the additional benefit of enhancing battery safety through the reinforcement of the cross-web toughness of the microporous polyolefin separator membrane.

[0067] As an example, molecules combining more than one carbene precursor and / or nitrene precursor can be applied to the porous separator membrane after pore formation to create a crosslinked surface. Crosslinking of the polyolefin microporous separator membrane surface can be important in high-temperature end-use applications. By creating a lightly crosslinked surface, the temperature at which the polyolefin microporous separator membrane loses its structural integrity can be increased and adjusted to a specific temperature range based on the crosslink density. This can be achieved as the crosslinked material can retain the molten bulk material without crosslinks. As the density of surface crosslinks increases, their ability to act as an exoskeleton to maintain the structural integrity of the polyolefin microporous separator membrane improves.

[0068] Additionally, cross-linking molecules linking more than one carbene and / or nitrene precursor can be added to a polyolefin polymer resin during the extrusion process to form a non-porous precursor separator membrane, which is then stretched to form the pores of a microporous polyolefin membrane, resulting in a microporous polyolefin membrane with improved high temperature tensile strength and melt integrity.

[0069] In at least selected embodiments, the separator may be a nonwoven material, such as a nonwoven fabric made from fibers, which may be chemically modified to improve the high temperature melt integrity of the nonwoven fabric and / or improve the wettability of the nonwoven fabric.

[0070] In accordance with at least certain aspects of the present invention, there are provided surface-modified polymeric materials, modified functionalized polymers, functional polymers, chemically modified substrates comprising modified functionalized polymers, methods of making and / or using surface-modified polymeric materials, modified functionalized polymers, functional polymers, and / or chemically modified substrates comprising modified functionalized polymers, methods of forming functionalized polymers, ... Methods for modifying functionalized polymers and / or methods using modified functionalized polymers, and / or methods using such chemically modified substrates are provided. At least some embodiments or subjects are directed to modified functionalized polymers, functional polymers, and methods for modifying functionalized polymers to chemically modify porous and / or non-porous polymeric substrates, and / or methods using such modified substrates. At least selected embodiments or subjects are directed to modified functionalized polymers, functional polymers, and methods for modifying functionalized polymers to chemically modify porous and / or microporous polymeric substrates, and methods using such modified substrates. At least some embodiments or subjects are directed to modifying certain functionalized polymers so that they can effect changes in the surface properties of the substrate. In accordance with at least selected and possibly preferred embodiments, the present invention is directed to using carbene crosslinking modifiers and / or nitrene crosslinking modifiers to chemically modify the surface of a substrate for an intended use, forming a modified functionalized polymer that can effect changes in the surface properties of the substrate. In accordance with at least selected and possibly preferred embodiments, the present invention is directed to the use of carbene crosslinking modifiers (Component B) and / or nitrene crosslinking modifiers (Component B) to covalently modify a polymer surface with a functionalized polymer (Component A). Such modification can alter the chemical reactivity of the polymer surface, allowing the modified substrate to have specifically designed functionality for a desired end use or application.

[0071] Referring to Figure 1, the nitrene generation, carbene generation, and insertion mechanisms are shown in accordance with at least selected and possibly preferred embodiments of the present invention. The R, R', and / or R / R' groups can be modified to tailor the surface characteristics of the polyolefin, such as the surface of a polyolefin substrate; for example, the R / R' groups can be modified to tailor surface characteristics such as wetting.

[0072] Referring to FIG. 2, there is shown a surface-modified polymeric material, or chemically modified substrate comprising a modified functionalized polymer, in accordance with at least selected possibly preferred embodiments of the present invention.

[0073] Referring to Figure 3, there is shown, in accordance with at least selected and possibly preferred embodiments of the present invention, a coated or treated surface-modified polymeric material, or a coated or treated chemically modified substrate, modified, for example, with a modified functionalized polymer that facilitates a desired coating or treatment (such as by increasing or decreasing the surface energy of the polymeric material or substrate surface).

[0074] The present invention relates to new and improved polymeric materials, membranes, substrates, and the like, as well as new and improved methods for permanently modifying the physical and / or chemical properties of polymeric substrate surfaces for various end uses or applications. For example, one improved method uses carbene and / or nitrene modifiers to chemically modify functionalized polymers to form species that chemically react with the surface of the polymeric substrate and change its chemical reactivity. Such methods may include an intercalation mechanism for modifying the polymeric substrate to increase or decrease its surface energy, polarity, hydrophilicity or hydrophobicity, oleophilicity or oleophobicity, and / or the like, for example, to improve compatibility with coatings, materials, adjacent layers, and / or the like. Furthermore, the present invention can be used to produce chemically modified membranes, fibers, hollow fibers, woven fabrics, and the like, such as polyolefin microporous battery separators or membranes with crosslinking on at least the surface of the polyolefin, which can have improved hydrophilicity or wettability, improved high-temperature stability, and / or the like.

[0075] According to at least selected oleophobicity related embodiments:

[0076] 1. A polymer surface (film, fiber, or bulk material) is modified with a mixture of a multifunctional carbene precursor (Component B) and / or a nitrene precursor (Component B), and the desired functional synthetic polymer (Component A). a. The polymer surface may be any synthetic or natural polymer or copolymer from the following polymer classes: olefin, styrene, silicone, urethane, acrylate, ester, vinyl, cellulose, amide, aramid, ether, and the like. They may also be crosslinked network materials such as phenol-formaldehyde resins or rubber-based materials such as butadiene, isoprene, and neoprene. In addition, modification of other halogen-containing polymers such as PTFE, PVDF, PVDC, and PVC can be achieved. b. Component A is typically a material found in hydrophobic or oleophobic treatment applications. Materials such as fluorinated acrylic copolymers, which are used extensively in textile processing or chitin-based materials, may provide suitable resistance to oils. Additionally, Component A may be a composite material with additional nanoparticles that create nanoscale roughness for enhanced resistance. c. Component B is a multifunctional material (f>2.0) with pendant functional groups tailored to generate carbene and / or nitrene species in situ. 2. These deposits may be derived from organic or aqueous solutions and are generated by heat treatment or exposure to ultraviolet light. The modification may be applied to the surface in an amount sufficient to provide the surface properties required for the intended application. Typical application amounts may range from about 0.05 g / m² to 1.0 g / m² or more, depending on the substrate surface area, solution viscosity, and cure rate, among other factors. b. The ratio of components A and B may be varied to produce optimal properties. Typical A / B coverage ratios may range from about 0.5 to 200.0 or more, depending on the desired surface properties and the reactivity of A and B.

[0077] In accordance with at least selected aspects or embodiments, the present invention provides or is directed to a modified polymeric substrate, a surface-modified polymeric material, a modified functionalized polymer, a functional polymer, or a chemically modified substrate comprising a modified functionalized polymer, as shown or described herein.

[0078] The aforementioned invention, wherein the modified polymer substrate is a chemically modified polymer substrate.

[0079] The foregoing invention, wherein the modified polymer substrate is at least one of a porous polymer substrate, a non-porous polymer substrate, a porous hollow fiber, a non-porous hollow fiber, a porous battery separator or membrane, a film, a chemically modified polymer substrate, a fiber, a fabric, a polyolefin material, a polyolefin blend, a polypropylene material, a polyethylene material, a polymer surface, a composite, a combination thereof, and the like.

[0080] The foregoing invention, wherein the modified polymer substrate is chemically modified by chemical reaction of at least one of a carbene intermediate and a nitrene intermediate with the carbon-hydrogen bonds of the polymer substrate to covalently bond at least one modified functionalized polymer thereto.

[0081] Chemically modified substrates including surface-modified polymeric materials, modified functionalized polymers, functional polymers, or modified functionalized polymers, films, hollow fibers, fibers, fabrics, composites, layers, surfaces, chemically modified polyolefin microporous membranes, chemically modified polyolefin microporous battery separators or battery separator membranes, microporous battery separators or battery separator membranes, rib materials, and combinations thereof, as shown or described herein, and methods for improving the wettability of said polyolefin microporous battery separators in lithium ion rechargeable batteries. , a method for introducing crosslinks into said polyolefin microporous separator, and / or a method for making or using the same.

[0082] The aforementioned method comprising at least one of the steps of chemically modifying a polyolefin microporous battery separator membrane by chemical reaction of at least one of a carbene intermediate and a nitrene intermediate with carbon-hydrogen bonds of the polyolefin, improving the wettability of the polyolefin microporous battery separator adapted for use in a lithium ion rechargeable battery, introducing crosslinking bonds within the polyolefin microporous battery separator, and / or equivalent steps.

[0083] 1. An improvement in a battery separator comprising a polyolefin microporous membrane having at least a portion of at least one chemically modified surface.

[0084] The aforementioned separator, wherein the chemically modified polyolefin has a surface energy equal to or greater than that of polyethylene.

[0085] The foregoing separator, wherein the chemical modification increases the surface energy of the polyolefin to at least about 48 dynes / cm.

[0086] The foregoing separator, wherein the polyolefin microporous membrane is chemically modified to increase the surface energy of the membrane.

[0087] The foregoing separator, wherein the polyolefin is selected from the group consisting of polyethylene, polypropylene, blends, mixtures, and copolymers thereof.

[0088] In a battery comprising an anode, a cathode, an electrolyte, and a separator, the improvement includes the separator as described above.

[0089] 1. An improvement in a fabric comprising a polyolefin microporous membrane, said polyolefin microporous membrane having at least a portion of at least one chemically modified surface.

[0090] The foregoing textile, wherein the chemically modified polyolefin membrane has a surface modification comprising cellulosic materials for the purposes of secondary standard textile processing, such as dyeing or other finishing steps.

[0091] The aforementioned fabric, wherein the chemically modified polyolefin film has a surface energy that is equal to or lower than the surface energy of polytetrafluoroethylene.

[0092] The foregoing fabric, wherein the chemical modification reduces the surface energy of the polyolefin film to a maximum of about 20 dynes / cm.

[0093] A textile laminate containing at least one synthetic or natural material combined with the aforementioned polyolefin film.

[0094] 1. An oleophobically modified woven polyolefin membrane comprising a microporous polyolefin membrane that has been chemically modified to reduce the surface energy of the membrane, wherein the polyolefin is selected from the group consisting of polyethylene, polypropylene, and copolymers thereof, and the chemically modified polyolefin has a surface modification consisting of an oleophobic polymer or combination of polymers, and / or the like.

[0095] Chemical reactions of at least one of the carbene and nitrene intermediates A microporous polymer membrane having at least one surface or portion that has been modified to have at least one modified functionalized polymer covalently bonded thereto, providing a permanent chemical modification that provides at least one of improved wettability, reduced wettability, hydrophilicity, hydrophobicity, oleophobicity, resistance to fouling by biological materials, resistance to wetting by organic solvents, resistance to wetting by methanol, ethanol, 1-propanol, acetone, and other polar solvents, and resistance to wetting by aliphatic and aromatic solvents.

[0096] Potentially preferred porous membranes (porous polymer substrates) are disclosed in U.S. Published Patent Application Nos. 2007 / 0196638A1, published August 23, 2007, and 2011 / 0223486A1, published September 15, 2011, both of which are incorporated herein by reference. Potentially preferred Component B materials, such as carbine precursors, are disclosed in WO Published Patent Application Nos. 2010 / 100410A1, published September 10, 2010, and 2010 / 100413A2, published September 10, 2010, both of which are incorporated herein by reference. Potentially preferred Component A materials, such as fluorocopolymers, are disclosed in U.S. Published Patent Application No. 2012 / 0070648A1, published March 22, 2012, both of which are incorporated herein by reference.

[0097] Many other modifications and variations of the present invention will be possible to those skilled in the art in light of the teachings herein, and it is therefore understood that, within the scope of the appended claims, the present invention may be practiced other than as specifically described herein.

Claims

1. 1. A chemically modified substrate comprising: a microporous polyolefin substrate having a surface; a functionalizing component and a cross-linking component coated on the surface of the substrate; the chemically modified substrate is selected from the group consisting of a film, a hollow fiber, a fiber, a membrane, a porous membrane, a microporous membrane, and a battery separator; A chemically modified substrate, wherein said cross-linking moiety is obtained by reacting a nitrene with said functionalizing moiety.

2. 2. The chemically modified substrate of claim 1, wherein the weight content ratio of the functionalizing component to the cross-linking component is 0.5:1 to 200.0:

1.

3. The chemically modified substrate of claim 1 , further comprising a coating film overlying the functionalized component.

4. 10. The chemically modified substrate of claim 1, wherein the chemically modified substrate comprises a polymer selected from the group consisting of olefins, styrenes, urethanes, acrylates, esters, vinyls, celluloses, amides, aramid ethers, copolymers, blends and / or mixtures thereof.

5. 10. The chemically modified substrate of claim 1, wherein the chemically modified substrate comprises a polymer selected from the group consisting of phenol formaldehyde and a rubber material.

6. The chemically modified substrate of claim 1 , wherein the chemically modified substrate comprises a halogen-containing polymer.

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