Membrane Or Process Of Preparing Patents (Class 521/27)
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Patent number: 8993682Abstract: The present invention provides an electrolyte having high conductivity even under high-temperature low-humidification conditions (e.g. at a temperature of 100 to 120° C. and a humidity of 20 to 50% RH) and thereby makes it possible to realize a higher performance fuel cell. The present invention is a fluoropolymer electrolyte having an equivalent weight (EW) of not less than 250 but not more than 700 and a proton conductivity of not lower than 0.10 S/cm as measured at a temperature of 110° C. and a relative humidity of 50% RH and comprising a COOZ group- or SO3Z group-containing monomer unit, wherein Z represents an alkali metal, an alkaline earth metal, hydrogen atom or NR1R2R3R4 in which R1, R2, R3 and R4 each independently represents an alkyl group containing 1 to 3 carbon atoms or hydrogen atom.Type: GrantFiled: March 12, 2009Date of Patent: March 31, 2015Assignees: Asahi Kasei E-Materials Corporation, Daikin Industries, Ltd.Inventors: Kohei Kita, Takahiko Murai, Naoki Sakamoto, Naoto Miyake, Tadashi Ino, Noriyuki Shinoki, Masaharu Nakazawa, Masahiro Kondo, Takashi Yoshimura
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Patent number: 8986895Abstract: An all-solid-state lithium ion secondary battery containing a novel garnet-type oxide serving as a solid electrolyte. The garnet-type lithium ion-conducting oxide is one represented by the formula Li5+XLa3(ZrX, A2-X)O12, wherein A is at least one selected from the group consisting of Sc, Ti, V, Y, Nb, Hf, Ta, Al, Si, Ga, Ge, and Sn and X satisfies the inequality 1.4?X<2, or is one obtained by substituting an element having an ionic radius different from that of Zr for Zr sites in an garnet-type lithium ion-conducting oxide represented by the formula Li7La3Zr2O12, wherein the normalized intensity of an X-ray diffraction (XRD) pattern with a diffraction peak, as normalized on the basis of the intensity of a diffraction peak, is 9.2 or more.Type: GrantFiled: February 2, 2010Date of Patent: March 24, 2015Assignee: Kabushiki Kaisha Toyota Chuo KenkyushoInventors: Shingo Ohta, Tetsuro Kobayashi, Takahiko Asaoka, Mitsuru Asai
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Patent number: 8980962Abstract: Methods for producing or regenerating an iodinated resin are presented. The methods include converting iodide residues on a surface of and in pores of an iodide loaded anion exchange resin to iodine and iodine intermediates using a source of active halogen to form an iodinated resin having iodine and iodine intermediate residues on the surface of and in the pores of the iodinated resin. The iodinated resins show reduced and stable levels of iodine elution compared to conventional iodinated anion exchange resins and may utilizes less iodine raw materials during the manufacturing process. The iodinated resin can also act as an end-of life indicator in a water purification system that incorporates the iodinated resin to reduce microbial, including bacterial and viral, contamination in drinking water sources. Methods and systems for purifying water are also presented.Type: GrantFiled: February 6, 2013Date of Patent: March 17, 2015Assignee: Water Security CorporationInventors: Sivarooban Theivendran, Terryll Riley Smith, Marian Pettibone
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Publication number: 20150073063Abstract: Disclosed herein are anion-conducting polymers that comprise a cationic benzimidazolium and imidazolium moieties. Methods of forming the polymers and membranes comprising the polymers are also provided.Type: ApplicationFiled: April 4, 2013Publication date: March 12, 2015Applicant: SIMON FRASER UNIVERSITYInventors: Owen Thomas, Steven Holdcroft, Andrew Wright
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Publication number: 20150064609Abstract: Ionomers and ionomer membranes, consisting of a non-fluorinated or partly fluorinated non-, partly or fully-aromatic main chain and a non- or partly-fluorinated side chain with ionic groups or their non-ionic precursors, have a positive impact on the proton conductivity of the ionomers. Various processes produce these polymeric proton conductors.Type: ApplicationFiled: November 12, 2014Publication date: March 5, 2015Inventors: Thomas Häring, Rima Häring
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Publication number: 20150064601Abstract: The present invention aims to provide a hydrocarbon-based polymer electrolyte which is excellent in processability and proton conductivity, especially proton conductivity at low water content, and a membrane thereof. The polymer electrolyte contains, in its main chain, a repeating unit represented by the following formula (1): wherein Ar represents a benzene or naphthalene ring, or a derivative thereof in which one or more of the ring-forming carbon atoms is replaced by a hetero atom; X represents a proton or a cation; a and b are each an integer of 0 to 4, and the sum of a's and b's is 1 or greater; m represents an integer of 1 or greater; and n represents an integer of 0 or greater.Type: ApplicationFiled: November 21, 2012Publication date: March 5, 2015Applicants: KANEKA CORPORATION, UNIVERSITY OF YAMANASHIInventors: Takahiro Miyahara, Masahiro Watanabe, Kenji Miyatake
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Patent number: 8969424Abstract: Embodiments of the present invention provide for anion exchange membranes and processes for their manufacture. The anion exchange membranes described herein are made the polymerization product of at least one functional monomer comprising a tertiary amine which is reacted with a quaternizing agent in the polymerization process.Type: GrantFiled: October 17, 2011Date of Patent: March 3, 2015Assignee: Evoqua Water Technologies LLCInventor: Jenny Lin
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Patent number: 8962215Abstract: An electrolyte membrane which comprises a cation exchange membrane made of a polymer having cation exchange groups and contains cerium ions is used as an electrolyte membrane for a polymer electrolyte fuel cell. In a case where the cation exchange membrane has sulfonic acid groups, the sulfonic acid groups are ion-exchanged, for example, with cerium ions so that cerium ions are contained preferably in an amount of from 0.3 to 20% of —SO3? groups contained in the cation exchange membrane. A membrane for a polymer electrolyte fuel cell capable of power generation in high energy efficiency, having high power generation performance regardless of the dew point of the feed gas and capable of stable power generation over a long period of time, can be provided.Type: GrantFiled: December 22, 2006Date of Patent: February 24, 2015Assignee: Asahi Glass Company, LimitedInventors: Eiji Endoh, Shinji Terazono
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Publication number: 20150025293Abstract: A metal exchanged fluorinated ionomer is a copolymer minimally including repeating units of (i) a polymerized derivative of a perfluorinated cyclic or cyclizable monomer and (ii) a strong acid highly fluorinated vinylether compound in which the acid moiety is exchanged with a cation of a Group 11 metal. Metal exchanged fluorinated ionomers are readily soluble and can be formed into thin, selectively gas permeable membranes by solution deposition methods. These membranes are suitable for separating olefins from gas olefin/paraffin mixtures. Good selectivity and transmembrane flux can be obtained without humidifying the membrane feed gas mixture.Type: ApplicationFiled: July 17, 2014Publication date: January 22, 2015Applicant: CMS TECHNOLOGIES HOLDINGS, INC.Inventors: Andrew Edward Feiring, Jonathan Lazzeri, Sudipto Majumdar
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Publication number: 20150010849Abstract: The present invention is directed to compositions useful for use in separators for use in lithium ion batteries, and membranes, separators, and devices derived therefrom.Type: ApplicationFiled: August 29, 2014Publication date: January 8, 2015Inventors: YOSSEF A. ELABD, KAREN I. WINEY, YUESHENG YE, JAE-HONG CHOI, TSEN-SHAN SHARON SHARICK
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Publication number: 20150010848Abstract: Disclosed is a production method including the steps of: graft-polymerizing a first monomer onto a polymer substrate so as to form a first graft polymer; and graft-polymerizing a second monomer onto the first graft polymer so as to form a second graft polymer. The first monomer contains a polar group. The second monomer contains at least one selected from the group consisting of an ion-conducting group and a site into which an ion-conducting group can be introduced. The second monomer has a higher polarity than the first monomer.Type: ApplicationFiled: March 11, 2013Publication date: January 8, 2015Inventors: Takashi Suzuki, Hideyuki Emori, Hiroyuki Nishii
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Patent number: 8927612Abstract: A composite having ion exchange function, preparation method and use thereof are provided. The composite is formed by compounding ion exchange resin with fluorine-containing polymer porous membrane, wherein the nitrile groups in the ion exchange resin react with the nitrile groups grafted on the fluorine-contained polymer porous membrane to form triazine ring crosslinked structure. The composite has excellent mechanical property and gas impermeability, high ion exchange capacity and high electroconductivity.Type: GrantFiled: June 18, 2010Date of Patent: January 6, 2015Assignee: Shandong Huaxia Shenzhou New Material Co., Ltd.Inventors: Yongming Zhang, Junke Tang, Ping Liu, Heng Zhang, Jun Wang
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Publication number: 20150004527Abstract: A process for producing an ion exchange precursor resin membrane involves co-extruding an ion exchange precursor resin with an incompatible polymer to form a multilayer film having a layer of the ion exchange precursor resin supported on a layer of the incompatible polymer. The layer of incompatible polymer is then removed from the layer of ion exchange precursor resin to provide the ion exchange precursor resin membrane. The ion exchange precursor resin membrane may be converted to an ion exchange resin membrane by hydrolysis, and subsequent acidification if desired. Ion exchange resin membranes and ion exchange precursor resin membranes having a uniform thickness of 25 microns or less may be formed by the process.Type: ApplicationFiled: December 19, 2012Publication date: January 1, 2015Inventors: Asmae Mokrini, Francois Vachon, Jacques Dufour
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Publication number: 20140378561Abstract: A membrane obtainable from curing a composition comprising (i) a curable compound comprising at least two acrylic groups and a quaternary ammonium group; (ii) solvent; and optionally (iii) a curable compound having one ethylenically unsaturated group.Type: ApplicationFiled: July 5, 2012Publication date: December 25, 2014Applicant: FUJIFILM MANUFACTURING EUROPE BVInventors: Bastiaan Van Berchum, Willem Johannes Van Baak, Jacko Hessing
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Publication number: 20140374257Abstract: The present disclosure provides a method for melt processing a sulfonated block copolymer in which the sulfonic acid or sulfonate functional groups are partially or completely neutralized by an amine, and to articles obtained by the method. Moreover, the shaped articles which are obtained by molding a composition comprising the neutralized sulfonated block copolymer may can be converted into shaped articles which comprise the sulfonated block copolymer(s) employed in the preparation of the amine neutralized block copolymer(s). The present disclosure further provides a sulfonated block copolymer comprising which is modified by an amine of formula (Ia) wherein Het together with the nitrogen to which it is bonded represents an optionally substituted 5- or 6-membered hetero cycle.Type: ApplicationFiled: September 10, 2014Publication date: December 25, 2014Inventor: Xiangyun WEI
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Patent number: 8911648Abstract: A reactive polymer-supported porous film for separator, that has sufficient adhesiveness between electrodes and separator and can suitably be used to produce a battery having low internal resistance and high rate performance, a method for producing the porous film, a method for producing a battery using the porous film, and an electrode/porous film assembly are disclosed. The reactive polymer-supported porous film for battery separator includes a porous film substrate having supported thereon a reactive polymer obtained by reacting a crosslinkable polymer having at least one reactive group selected from the group consisting of 3-oxetanyl group and epoxy group in the molecule, with an acid anhydride, thereby partially crosslinking the polymer.Type: GrantFiled: September 12, 2012Date of Patent: December 16, 2014Assignee: Nitto Denko CorporationInventors: Yoshihiro Uetani, Keisuke Kii, Tomoaki Ichikawa, Michio Satsuma, Satoshi Nishikawa, Shinji Bessho
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Patent number: 8906526Abstract: An electrolyte composition that shows low methanol cross-over and exhibits high proton conductivity when used as a solid electrolyte for solid polymer fuel cells or the like, and a solid electrolyte membrane and a solid polymer fuel cell that use the electrolyte composition are provided. This electrolyte composition comprises a perfluorocyclobutane-containing polymer having a specific structure. High proton conductivity is provided by sulfonic acid groups connected to the benzene rings. Reduction of methanol crossover is realized by introduction of a rigid structure with aromatic rings, or a combination o a rigid structure with aromatic rings and a three-dimensional cross-linked structure.Type: GrantFiled: November 11, 2010Date of Patent: December 9, 2014Assignee: Fujitsu LimitedInventors: Nawalage Florence Cooray, Fumio Takei, Masao Tomoi
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Publication number: 20140357740Abstract: A resilient cation exchange membrane including a porous matrix impregnated with a cross-linked homogenous ion-transferring polymer that fills the pores and substantially covers the surfaces of the porous matrix. The cross-linked homogenous ion-transferring polymer formed by polymerizing a homogeneous solution including (i) a hydrophilic ionic monomer selected from a group consisting of 2-acrylamido-2-methyl-1-propanesulfonic acid, 2-acrylamido-2-methyl-1-propanesulfonic acid salts, sodium 4-vinylbenzenesulfonate, and 3-sulfopropyl acrylate potassium, with (ii) a hydrophobic cross-linking oligomer selected from a group consisting of polyurethane oligomer diacrylate, polyester oligomer diacrylate, epoxy oligomer diacrylate, polybutadiene oligomer diacrylate, silicone diacrylate, dimethacrylate counterparts thereof, polyurethane oligomers having three or more vinyl groups, polyester oligomers having three or more vinyl groups, and mixtures thereof.Type: ApplicationFiled: August 20, 2014Publication date: December 4, 2014Inventors: Xiangchun Yin, Zhongyuan Zhou
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Publication number: 20140357739Abstract: A method of forming a hydrophilic polymer is disclosed. The method can include: reacting a monomer comprising an acid group with a Bronsted base to form an ionic liquid; polymerising the ionic liquid with at least one other monomer; and converting the ionic liquid back to the acid group after polymerisation. Also disclosed are hydrophilic polymers and membrane electrode assemblies formed using the above method.Type: ApplicationFiled: May 30, 2014Publication date: December 4, 2014Applicant: ITM Power (Research) LimitedInventors: Daniel Greenhalgh, Rachel Lister
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Publication number: 20140339154Abstract: The present invention generally relates to the field of water treatment, and in particular to industrial processes which generate aqueous solutions containing thiocyanate (SCN). The invention particularly relates to processes for treating aqueous solutions containing SCN and more specifically treatment processes to extract and remove SCN from said aqueous solutions.Type: ApplicationFiled: June 26, 2014Publication date: November 20, 2014Inventors: Spas Dimitrov Kolev, Robert Walter Cattrall, Youngsoo Cho
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Publication number: 20140343177Abstract: A functionalized block copolymer polymerized using vinylbenzylamino derivative monomers for use in such applications as anionic exchange membranes.Type: ApplicationFiled: July 16, 2014Publication date: November 20, 2014Applicant: KRATON POLYMERS U.S. LLCInventors: Carl L. Willis, Adrie A. van der Huizen
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Publication number: 20140335439Abstract: Disclosed are a polymer ion exchange membrane having a self-hydration capability at a high temperature under low humidity, a method of preparing the polymer ion exchange membrane, and a polymer electrolyte fuel cell system including the polymer ion exchange membrane. The polymer electrolyte membrane includes a hydrocarbon-based proton conductive polymercoating layer, and has a nano-crack on the hydrophobic surface and thus may secure ion conductivity and self-hydration capability under low humidity and remarkably improve electrochemical performance of an electrolyte.Type: ApplicationFiled: July 23, 2014Publication date: November 13, 2014Inventors: Young Moo LEE, Chi Hoon Park, Doo Sung Hwang, So Young Lee, Dong Won Shin
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Publication number: 20140326657Abstract: The present disclosure pertains to a semi-permeable film including a polyhedron oligomer silsesquioxane derivative dispersed in a polymer matrix, a method of manufacturing the same, a separation membrane including the semi-permeable film, and a water treatment device including the separation membrane.Type: ApplicationFiled: March 12, 2014Publication date: November 6, 2014Applicant: SAMSUNG ELECTRONICS CO., LTD.Inventors: Hyo KANG, Jun Hyuk MOON, Sung Soo HAN
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Publication number: 20140322628Abstract: To provide a polymer electrolyte membrane that has excellent proton conductivity even under low-humidification conditions, has excellent mechanical strength and chemical stability, and can achieve high output and excellent physical durability when made into a polymer electrolyte fuel cell. The polymer electrolyte membrane includes a block copolymer containing each one or more of: a segment (A1) containing anionic group; and a segment (A2) not containing an ionic group. The polymer electrolyte membrane forms a co-continuous (M1) or lamellar phase-separated (M2) structure, and gives a crystallization heat quantity of 0.1 J/g or larger determined by differential scanning calorimetry, or a degree of crystallinity of 0.5% or larger determined by wide-angle X-ray diffractometry.Type: ApplicationFiled: August 24, 2012Publication date: October 30, 2014Inventors: Hiroaki Umeda, Daisuke Izuhara, Emi Amano
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Patent number: 8859219Abstract: The invention provides a method of treating a polyvinyl difluoride (PVDF) membrane comprising: (a) contacting said membrane with an alcohol and a wetting agent; and (b) drying said membrane.Type: GrantFiled: November 30, 2011Date of Patent: October 14, 2014Assignee: Mabtech ABInventor: Sten Braesch-Andersen
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Patent number: 8859160Abstract: The invention relates to a monomer (6, 14) carrying an imidazole-type heterocycle (3). According to the invention, the chemical structure of said monomer (6, 14) comprises at least one unit of formula (I) wherein R1 comprises an alkenyl grouping and R2 comprises a grouping for protecting one of the nitrogen atoms of the heterocycle. The invention also relates to a monomer carrying a benzimidazole-type heterocycle, and to protected polymers obtained from said monomers, deprotected polymers produced by the protected polymers, a proton exchange membrane based on deprotected polymers, and a fuel cell provided with said membrane. Furthermore, the invention relates to methods for producing the above-mentioned monomers and polymers.Type: GrantFiled: May 29, 2007Date of Patent: October 14, 2014Assignees: Peugeot Citroen Automobiles SA, CNRS (Centre National de la Recherche Scientifique)Inventors: Xavier Glipa, Bruno Ameduri, Louis Delon, Deborah Jones, Jacques Roziere, Guillaume Frutsaert
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Patent number: 8853286Abstract: The present invention is directed to compositions useful for use in separators for use in lithium ion batteries, and membranes, separators, and devices derived therefrom.Type: GrantFiled: September 12, 2013Date of Patent: October 7, 2014Assignees: Drexel University, The Trustees Of The University Of PennsylvaniaInventors: Yossef A. Elabd, Karen I. Winey, Yuesheng Ye, Jae-Hong Choi, Tsen-Shan Sharon Sharick
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Patent number: 8853285Abstract: The present disclosure provides a polymer electrolyte membrane chemically bonded with an ionic liquid. More particularly, the present disclosure provides a polymer electrolyte membrane chemically bonded with an ionic liquid by reacting the ionic liquid with a novel polymer chain terminal. The polymer electrolyte membrane described herein has a high hydrogen ionic conductivity, even in a high-temperature and anhydrous environment. Additionally, the membrane displays electro-chemical and thermal stability. Moreover, the polymer electrolyte membrane may also be applied to a high-temperature and dry-out bio fuel cell.Type: GrantFiled: November 28, 2012Date of Patent: October 7, 2014Assignees: Hyundai Motor Company, Postech Academy-Industry FoundationInventors: Young Teak Kim, In Chul Hwang, Nak Hyun Kwon, Moon Jeong Park, Jae Wan Hong
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Patent number: 8846854Abstract: A copolymer containing, in addition to recurring elements of a sulfonated poly(arylene) containing exclusively recurring structural element(s) of the general formulas —[—Ar1(SO3M)n-X—]— and —[—Ar2(SO3M)n-Y—]—, wherein X and Y, which are identical or different from each other, each represent an electron-acceptor group, Ar1 and Ar2, which are either identical or different from each other, represent an aromatic or heteroaromatic ring system with 5-18 ring atoms; wherein the aromatic or heteroaromatic ring system, in addition to the SO3M and the substituents X and Y, optionally comprises additional substituents which are not electron-donor groups; M represents monovalent cation and n is an integral number between 1 and 4; and wherein X, Y, Ar1, Ar2, M and n can be identical or different in various structural elements, independently of each other, one or several additional elements of at least one additional monomer or macromonomer.Type: GrantFiled: November 16, 2012Date of Patent: September 30, 2014Assignee: Max-Planck-Gesellschaft zur Forderung der Wissenschaften e.V.Inventors: Michael Schuster, Klaus-Dieter Kreuer, Henrik Thalbitzer Andersen, Joachim Maier
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Patent number: 8846133Abstract: The invention relates to a method for the production of a proton-conducting polymer membrane on the basis of polyazoles, comprising the steps of A) converting one or more aromatic tetra-amino compounds having one or more aromatic carboxylic acids, which contain at least two acid groups per carboxylic acid monomer, to form a salt comprising diammonium catious and carboxylate anions, B) mixing the salt from step A) with polyphosporic acid to form a solution and/or dispersion, C) applying a layer using the mixture according to step B) onto a carrier, D) heating the planar formation/layer obtained according to step C) to temperatures of up to 350° C., preferably up to 280° C., to form the polyazole polymers, E) treating the membrane formed in step D) in the presence of moisture at temperatures and for a duration sufficient until it is self-supporting.Type: GrantFiled: December 5, 2009Date of Patent: September 30, 2014Assignee: BASF SEInventor: Klaus Leitner
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Patent number: 8829061Abstract: The present invention generally relates to the field of water treatment, and in particular to industrial processes which generate aqueous solutions containing thiocyanate (SCN). The invention particularly relates to processes for treating aqueous solutions containing SCN and more specifically treatment processes to extract and remove SCN from said aqueous solutions.Type: GrantFiled: August 12, 2011Date of Patent: September 9, 2014Assignee: The University of MelbourneInventors: Spas Dimitrov Kolev, Robert Walter Cattrall, Youngsoo Cho
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Patent number: 8829060Abstract: A membrane comprising a blend of a sulfonated poly(aryl ether) and a phenol compound along with methods for making and using the same. Many additional embodiments are described including applications for such membranes.Type: GrantFiled: February 21, 2012Date of Patent: September 9, 2014Assignee: Dow Global Technologies LLCInventors: William E. Mickols, John C. McKeen
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Patent number: 8829131Abstract: A fluorinated copolymer including at least one recurrent unit of the following formula (I): and at least one recurrent unit of the following formula (II): in which: RF represents a perfluorocarbon chain optionally including one or more oxygen atoms; X represents a halogen atom, OR with R representing a hydrogen atom or a cation; R1 represents a hydrocarbon chain or perfluorocarbon chain; and Z represents a perfluorocarbon chain.Type: GrantFiled: July 13, 2010Date of Patent: September 9, 2014Assignees: Commissariat a l'Energie Atomique et Aux Energies Alternatives, Centre National de la Recherche ScientifiqueInventors: Aurélien Soules, Bruno Ameduri, Bernard Boutevin, Hervé Galiano
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Patent number: 8822091Abstract: The present invention relates to a novel proton-conducting polymer membrane based on polyazoles which can, owing to its excellent chemical and thermal properties, be used for a variety of purposes and is particularly suitable as a polymer-electrolyte membrane (PEM) for the production of membrane electrode units for so-called PEM fuel cells.Type: GrantFiled: December 30, 2004Date of Patent: September 2, 2014Assignee: BASF Fuel Cell GmbHInventors: Oemer Uensal, Gunter Christ, Kathrin Wirth
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Publication number: 20140242368Abstract: A process for producing an ion exchange membrane involves melt-processing a mixture of a perfluorosulfonic acid ionomer in its acid form and a specific azole additive. The additive may be a triazole, alkyl triazole, vinyl triazole, fluoro-alkyl triazole, fluoro-vinyl triazole, pyrazole, alkyl pyrazole, vinyl pyrazole, fluoro-alkyl pyrazole, fluoro-vinyl pyrazole, benzimidazole, alkyl benzimidazole, vinyl benzimidazole, fluoro-alkyl benzimidazole, fluoro-vinyl benzimidazole or any mixture thereof to form a film having a thickness of from 3 to 200 microns. Ion exchange membranes so produced have reduced in-plane-swelling, improved dimensional stability and mechanical properties, and are useful as electrolytes in proton exchange membrane fuel cells.Type: ApplicationFiled: February 24, 2014Publication date: August 28, 2014Applicant: National Research Council of CanadaInventor: Asmae MOKRINI
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Patent number: 8809488Abstract: A film of a carboxylated polymer of formula (I): wherein the sum of x, y and z is an integer from 10 to 10,000 and degree of hydrolysis is 0.05 or greater provides gas separation materials in which the degree of hydrolysis may be used to tune the selectivity of the gases to an optimal required range. Such films may be prepared by casting a film of a polymer of formula (II): wherein n is an integer from 10 to 10,000, and hydrolyzing all or a portion of the —CN groups to form —COOH groups.Type: GrantFiled: March 10, 2010Date of Patent: August 19, 2014Assignee: National Research Council of CanadaInventors: Naiying Du, Michael D. Guiver, Gilles P. Robertson, Jingshe Song
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Patent number: 8809483Abstract: A composition and an anion exchange membranes including a composition and a method of forming a composition including a compound including a poly(phenylene) backbone represented by the following formula: wherein each of R1, R2 and R3 may be the same or different and is H or an unsubstituted or inertly-substituted aromatic moiety; wherein each of Ar1 and Ar2 may be the same or different and is an unsubstituted or inertly-substituted aromatic moiety; wherein each of R6, R7, R8, R9, R10 and R11 is H or a monovalent hydrocarbon group including two to 18 carbon atoms, with the proviso that each R6, R7, R8, R9, R10 and R11 cannot be H; and wherein each of Y6, Y7, Y8, Y9, Y10 and Y11 may be the same or different and is H or a functional group.Type: GrantFiled: September 26, 2012Date of Patent: August 19, 2014Assignee: Sandia CorporationInventor: Michael R. Hibbs
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Publication number: 20140228457Abstract: Articles that contain a solid support with a grafted chain extending from the solid support, methods of making these articles, and various uses of the articles are described. More specifically, the grafted chain has a functional group that can react with or interact with target compound. Alternatively, the functional group on the grafted chain can react with a modifying agent to provide another group that can react with or interact with the target compound. The grafted chains are attached to the solid support through a ring-opened azlactone group. The articles can be used to purify the target compound or to separate the target compound from other molecules in a sample.Type: ApplicationFiled: April 16, 2014Publication date: August 14, 2014Applicant: 3M INNOVATIVE PROPERTIES COMPANYInventors: Simon K. Shannon, Catherine A. Bothof, Babu N. Gaddam, Jerald K. Rasmussen, Richard B. Ross
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Patent number: 8802742Abstract: A functional TFE copolymer fine powder is described, wherein the TFE copolymer is a polymer of TFE and at least one functional comonomer, and wherein the TFE copolymer has functional groups that are pendant to the polymer chain. The functional TFE copolymer fine powder resin is paste extrudable and expandable. Methods for making the functional TFE copolymer are also described. The expanded functional TFE copolymer material may be post-reacted after expansion.Type: GrantFiled: August 29, 2013Date of Patent: August 12, 2014Assignee: W. L. Gore & Associates, Inc.Inventors: Ping Xu, Jack J Hegenbarth, Xin Kang Chen, Rachel Radspinner, Paul D Drumheller, William B Johnson, Wen K Liu
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Patent number: 8802319Abstract: The present invention relates to block copolymer electrolyte composite membranes with improved ionic conductivity. The block copolymer electrolyte composite membrane in accordance with an aspect of the present invention can comprise a plate-like inorganic filler as surface-modified with a sulfonic group; and a block copolymer comprising at least one selected from the group consisting of a sulfonic group, a carbonic acid group, and a phosphoric acid group.Type: GrantFiled: November 7, 2011Date of Patent: August 12, 2014Assignee: Korea Institute of Science and TechnologyInventors: Chong-Min Koo, Soon-Man Hong, Seung-Sang Hwang, Kyung-Youl Baek, Jang-Woo Lee, Jin-Hong Lee, Youn-Duk Park, Kyung-ho Min, Ji-Young Jung
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Patent number: 8796412Abstract: Disclosed are a multi-block copolymer, its producing method and an electrolyte membrane using the same. The multi-block copolymer includes a hydrophobic block having a plurality of repeating units represented as chemical formula 1; and a hydrophilic block having a plurality of repeating units represented as chemical formula 2. The multi-block copolymer is acidified, and can be used to an electrolyte membrane and a fuel cell. The use of the multi-block copolymer as an electrolyte membrane ensures excellent dimensional stability.Type: GrantFiled: May 9, 2013Date of Patent: August 5, 2014Assignee: LG Chem, Ltd.Inventors: Seong-Ho Choi, Won-Ho Lee
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Publication number: 20140213672Abstract: The invention relates to blends and blend membranes from low-molecular hydroxymethylene-oligo-phosphonic acids R—C(PO3H2)x(OH)y and polymers, the group R representing any organic group and the polymers containing the following functional groups: cation exchanger groups or their nonionic precursors of the type SO2X, X?HaI, OH, OMe, NR1R2, OR1 with Me=any metal cation or ammonium cation, R1, R2=H or any aryl- or alkyl group, POX2, COX and/or basic groups such as primary, secondary or tertiary amino groups, imidazole groups, pyridine groups, pyrazole groups etc. and/or OH groups. Low molecular hydroxymethylene-oligo-phosphonic acids R—C(PO3H2)x(OH)y are preferred in which x=2 and y=1. The invention also relates to low-molecular hydroxymethylene-oligo-phosphonic acids R—C(PO3H2)2(OH)1 and polymers, wherein the group R of the hydroxymethylene-oligophosphonic acid contains an aliphatic or aromatic basic group which ionically interacts with the acidic groups of the polymer or of the polymer mixture.Type: ApplicationFiled: January 27, 2014Publication date: July 31, 2014Inventor: Thomas Häring
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Patent number: 8785013Abstract: Compositions containing modified fullerenes and their use, for example, as films for membranes in electrode assemblies for electrochemical cells and fuel cells such as fuel cells are described.Type: GrantFiled: August 17, 2005Date of Patent: July 22, 2014Assignee: E I du Pont de Nemours and CompanyInventors: Paul J. Krusic, Helen S. M. Lu, Zhen-Yu Yang
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Publication number: 20140197032Abstract: Selectively amino- or phosphino-functionalized block copolymers, and their preparation, for use as anion exchange membrane materials. The selectively functionalized block copolymers have at least two end blocks A each of which are substantially free of amino- or phosphino-functional groups, and have at least one interior block D which comprises on average at least one amino- or phosphino-functionalized polymer unit of formula (I) wherein Z is nitrogen or phosphorous; R1 is hydrogen or alkyl; R2 is hydrogen or is tertiary alkyl; R each independently, is hydrogen or is alkyl optionally substituted by a moiety -(A1-NRa)xRb; or two R groups, together with the Z to which they are bonded, form an optionally substituted ring; x is 1, 2 or 3; A1 is straight chain alkylene optionally substituted by one or more methyl and/or ethyl groups; and Ra and Rb, each independently, is hydrogen or alkyl; or a corresponding onium salt.Type: ApplicationFiled: January 13, 2014Publication date: July 17, 2014Applicant: KRATON POLYMERS U.S. LLCInventors: Carl Lesley Willis, Irwan Hidajat, Mike Heniff
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Publication number: 20140200280Abstract: There is provided an anion exchange membrane comprising, as a main element, a block copolymer having a vinyl alcohol polymer block and a cationic-group containing polymer block as components and which is subjected to a crosslinking treatment. An anion exchange membrane is produced by heating a film obtained from a solution of the block copolymer at a temperature of 100° C. or more, crosslinking the film with a dialdehyde compound in water, an alcohol or a mixture of these under an acidic condition and then washing the film with water. Thus, there can be provided an anion exchange membrane in which organic fouling can be prevented and which exhibiting excellent basic properties such as a membrane resistance and an ionic transport number and excellent membrane strength.Type: ApplicationFiled: March 18, 2014Publication date: July 17, 2014Applicant: KURARAY CO., LTD.Inventors: Atsushi Jikihara, Kenichi Kobayashi, Naoki Fujiwara
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Patent number: 8771897Abstract: Disclosed herein is an electrolyte membrane for a fuel cell. The electrolyte membrane includes a blend of polymers with different degrees of sulfonation. The electrolyte membrane can exhibit excellent effects such as improved long-term cell performance and good long-term dimensional stability while at the same time solving the problems of conventional hydrocarbon electrolyte membranes. Further disclosed are a membrane-electrode assembly and a fuel cell including the electrolyte membrane.Type: GrantFiled: July 20, 2011Date of Patent: July 8, 2014Assignee: Korea Institute of Science and TechnologyInventors: Hyoung-Juhn Kim, Soo-Kil Kim, Eun Ae Cho, Jong Hyun Jang, Sung Pil Yoon, In Hwan Oh, Jonghee Han, Seong Ahn Hong, Suk-Woo Nam, Tae Hoon Lim
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Patent number: 8765824Abstract: The present invention is directed to a membrane for ethanol and aromatics separation that is stable in an alcohol containing environment. The membrane is a polyether epoxy resin having an aliphatic substituted epoxide. The invention also teaches a method to control the flux and selectivity of the membrane.Type: GrantFiled: April 13, 2012Date of Patent: July 1, 2014Assignee: ExxonMobil Research and Engineering CompanyInventors: Timothy D. Shaffer, Man Kit Ng, David T. Ferrughelli, George Skic, Randall D. Partridge
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Patent number: 8765905Abstract: The present invention relates to a novel proton-conducting polymer membrane based on polyazoles which can, owing to its excellent chemical and thermal properties, be used for a variety of purposes and is particularly suitable as a polymer-electrolyte membrane (PEM) for the production of membrane electrode units for so-called PEM fuel cells.Type: GrantFiled: December 30, 2004Date of Patent: July 1, 2014Assignee: BASF Fuel Cell GmbHInventors: Oemer Uensal, Ursula Leister, Melanie Schlegel
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Patent number: 8758954Abstract: Membranes and processes for preparing membranes having weakly acidic or weakly basic groups comprising the steps of: (i) applying a curable composition to a support; (ii) curing the composition for less than 30 seconds to form a membrane; and (iii) optionally removing the membrane from the support; wherein the curable composition comprises a crosslinking agent having at least two acrylic groups. The membranes are particularly useful for producing electricity by reverse electrodialysis.Type: GrantFiled: June 19, 2009Date of Patent: June 24, 2014Assignee: Fujifilm Manufacturing Europe B.V.Inventors: Willem Johannes Van Baak, Johannes Adrianus Wilhelmus Van Engelen, Dana Manuela Sterescu
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Patent number: 8754139Abstract: A polymeric membrane includes an active layer on a support. The active layer includes a polymer with a backbone, and the backbone has attached thereto at least one fluoroalcohol moiety.Type: GrantFiled: February 20, 2009Date of Patent: June 17, 2014Assignees: International Business Machines Corporation, Central Glass Co., Ltd.Inventors: Robert David Allen, Na Young-Hye, Ratnam Sooriyakumaran, Masaki Fujiwara, Kazuhiro Yamanaka