Oxygen Is A Ring Member Of The Hetero Ring Patents (Class 429/311)
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Patent number: 11094937Abstract: The present invention relates to a negative electrode and a secondary battery including the same, and particularly, to a negative electrode which includes a current collector; a first active material layer disposed on the current collector and including at least one concave portion exposing a portion of the current collector; a stress-relaxing portion disposed in the concave portion; and a second active material layer disposed on the first active material layer and the stress-relaxing portion and separated from the current collector, and a secondary battery including the same.Type: GrantFiled: July 14, 2017Date of Patent: August 17, 2021Assignee: LG Chem, Ltd.Inventors: Jung Pil Lee, Hee Won Lee
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Patent number: 10879564Abstract: Polar cyclicsiloxane materials with various functionalities are disclosed. When combined with lithium salts, such materials can be useful as electrolyte materials in lithium battery cells. They may be used alone as electrolytes or as additives in other polymer electrolytes. Various lithium battery cell configurations that can employ such polar cyclicsiloxane materials are also described.Type: GrantFiled: February 27, 2018Date of Patent: December 29, 2020Assignee: ROBERT BOSCH GMBHInventors: Kulandaivelu Sivanandan, Natasha Bugna Teran, Hany Basam Eitouni
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Patent number: 10734678Abstract: The present invention relates to a composition for a gel polymer electrolyte and a lithium secondary battery including the same, and more specifically, an objective of the present invention is to provide a secondary battery in which, since an isocyanate-containing monomer is introduced to a composition for a gel polymer electrolyte to induce a urethane reaction with LiOH on a surface of a lithium transition metal oxide to form a coating layer including a urethane bond-containing oligomer on the surface of the lithium transition metal oxide, and thereby side reactions caused by HF in the battery are minimized, capacity characteristics are improved, and adhesion between a positive electrode and a separator is enhanced to minimize the swelling phenomenon of the battery.Type: GrantFiled: February 20, 2017Date of Patent: August 4, 2020Assignee: LG Chem, Ltd.Inventors: Jeong Woo Oh, Kyoung Ho Ahn, Chul Haeng Lee, Yi Jin Jung, Sol Ji Park
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Patent number: 9105940Abstract: An electrolyte membrane for a lithium battery, the electrolyte membrane including: a matrix including a polymerization product of a (meth)acrylate monomer composition; and a porous metal-organic framework dispersed in the matrix, wherein the metal-organic framework includes a crystalline compound including a metal ion or metal ion cluster which is chemically bound to an organic ligand, and a liquid electrolyte including a lithium salt and a nonaqueous organic solvent.Type: GrantFiled: February 22, 2011Date of Patent: August 11, 2015Assignee: SAMSUNG ELECTRONICS CO., LTD.Inventors: Jeong-hee Lee, Seoung-jae Im, Sang-ho Park
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Patent number: 9017881Abstract: Provided are an electrolyte comprising an amide compound of a specific structure, in which an alkoxy group is substituted with an amine group, and an ionizable lithium salt, and an electrochemical device containing the same. The electrolyte may have excellent thermal and chemical stability and a wide electrochemical window. Also, the electrolyte may have a sufficiently low viscosity and a high ionic conductivity, and thus, may be usefully applied as an electrolyte of electrochemical devices using various anode materials.Type: GrantFiled: September 2, 2011Date of Patent: April 28, 2015Assignee: LG Chem, Ltd.Inventors: Byoung-Bae Lee, Jae-Seung Oh, Ji-Won Park, Hyo-Jin Lee, Dong-Su Kim, Yeon-Suk Hong
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Publication number: 20150030937Abstract: Nonaqueous electrolyte for high energy Li-ion batteries or batteries with lithium metal anode, in which the composition of additives are introduced to increase specific characteristics of lithium batteries including stability of the parameters during cycling and security of the battery operations, when the composition of the additives comprises the compounds from the class of esters, low molecular weight silicon quaternary ammonium salts, and macromolecular polymer organosilicon quaternary ammonium salts.Type: ApplicationFiled: February 27, 2014Publication date: January 29, 2015Applicant: ENERIZE CORPORATIONInventors: Elena Shembel, Irina M. Maksyuta, Volodymyr Redko, Tymofiy V. Pastushkin
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Publication number: 20140349196Abstract: The present invention provides an electrolyte component containing one or more salts including lithium bis(oxalate)borate (LiBOB), a solvent, propylene carbonate (PC) and a crystallisable polymer wherein said LiBOB is present as a weight percentage of 0.5% or more, said propylene carbonate is present as a weight percentage of between 5% and 90% and the crystallisable polymer is present at a weight percentage of greater than 1%. It also provides a galvanic cell formed from the above and a process for forming same.Type: ApplicationFiled: December 7, 2012Publication date: November 27, 2014Inventors: Ian Ward, Hugh Hubbard, Simon Charles Wellings, Jerry Barker
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Patent number: 8845764Abstract: An object is to provide a power storage device with improved cycle characteristics and a method of manufacturing the power storage device. Another object is to provide an application mode of the power storage device for which the above power storage device is used. In the method of manufacturing the power storage device, an active material layer is formed over a current collector, a solid electrolyte layer is formed over the active material layer after a natural oxide film over the active material layer is removed, and a liquid electrolyte is provided so as to be in contact with the solid electrolyte layer. Accordingly, decomposition and deterioration of the electrolyte solution which are caused by the contact between the active material layer and the electrolyte solution can be prevented, and cycle characteristics of the power storage device can be improved.Type: GrantFiled: June 8, 2011Date of Patent: September 30, 2014Assignee: Semiconductor Energy Laboratory Co., Ltd.Inventor: Kazutaka Kuriki
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Publication number: 20140080015Abstract: In a method for making an anion electrolyte membrane, an inorganic nano-powder is uniformly dispersed in an organic solvent to form a mixture. A fluorinated poly(aryl ether) ionomer is dissolved in the mixture to form a first solution. An active component is further dissolved in the first solution to form a second solution. A crosslinking catalyst is added to the second solution to form a membrane casting solution. The membrane casting solution is coated on a substrate to form a membrane, and the coated substrate is heated. Then, the membrane is peeled from the substrate.Type: ApplicationFiled: September 11, 2013Publication date: March 20, 2014Applicants: HONG FU JIN PRECISION INDUSTRY (ShenZhen) Co., LTD., TSINGHUA UNIVERSITYInventors: YU-MING SHANG, YAO-WU WANG, XIAO-FENG XIE, MIN XU, JIN-HAI WANG, SHU-BO WANG
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Patent number: 8568920Abstract: An organic electrolytic solution including a lithium salt, an organic solvent, and a linear or cyclic polymerizable monomer that is negatively charged due to localization of electrons on the monomer, and a lithium battery employing the same. Since the organic electrolytic solution prevents decomposition of an electrolyte and elution from or precipitation of metal ions, the lithium battery employing the organic electrolytic solution has excellent lifetime characteristics and cycle characteristics.Type: GrantFiled: May 7, 2010Date of Patent: October 29, 2013Assignee: Samsung SDI Co., Ltd.Inventors: Dong-joon Lee, Young-gyoon Ryu, Dong-min Im, Seok-soo Lee
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Publication number: 20130236764Abstract: Presented herein is a rechargeable lithium battery that includes a cathode, a liquid electrolyte, a solid electrolyte, and an anode. The anode is at least partially coated or plated with the solid electrolyte. The cathode may be porous and infiltrated by the liquid electrolyte. The cathode may also include a binder having a solid graft copolymer electrolyte (GCE). In certain embodiments, the liquid electrolyte is a gel that includes a PIL and a GCE. The battery achieves a high energy density and operates safely over a wide range of temperatures.Type: ApplicationFiled: March 7, 2013Publication date: September 12, 2013Applicant: MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventor: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
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Patent number: 8512899Abstract: The present invention concerns polymers obtained by anionic initiation and bearing functions that can be activated by cationic initiations that are not reactive in the presence of anionic polymerization initiators. The presence of such cationic initiation functions allow an efficient cross-linking of the polymer after molding, particularly in the form of a thin film. It is thus possible to obtain polymers with well-defined properties in terms of molecular weight and cross-linking density. The polymers of the present invention are capable of dissolving ionic compounds inducing a conductivity for the preparation of solid electrolytes.Type: GrantFiled: May 9, 2008Date of Patent: August 20, 2013Assignee: Hydro-QuebecInventors: Christophe Michot, Alain Vallee, Paul-Etienne Harvey, Michel Gauthier, Michel Armand
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Publication number: 20130157144Abstract: A solid electrolyte includes an interpenetrating polymer network, a plasticizer and a lithium salt. The plasticizer and the lithium salt are dispersed in the interpenetrating polymer network. The interpenetrating polymer network includes ?CH2—CH2—O?n segments, and is formed by polymerizing a first monomer R1—O?CH2—CH2—O?nR2 with a second monomer R3—O?CH2—CH2—O?mR4 under an initiator. The “R1”, “R2” or “R3” respectively includes —C?C— group or —C?C— group. The “R4” includes an alkyl group or a hydrogen atom. The “m” and “n” are integers. A molecular weight of the first monomer or a molecular weight of the second monomer is greater than or equal to 100, and less than or equal to 800. The first monomer is less than or equal to 50% of the second monomer by weight. The lithium salt is less than or equal to 10% the second monomer by weight. A lithium based battery using the solid electrolyte is also provided.Type: ApplicationFiled: October 16, 2012Publication date: June 20, 2013Inventors: LI WANG, XIANG-MING HE, JIAN-JUN LI, JIAN GAO, CHANG-YIN JIANG
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Publication number: 20130157145Abstract: A method for making a solid electrolyte includes the following steps. A first monomer, a second monomer, an initiator and a lithium salt are provided. Wherein the first monomer is R1—O?CH2—CH2—O?nR2, the second monomer is R3—O?CH2—CH2—O?mR4, each “R1”, “R2” and “R3” includes —C?C— group or —C?C— group, “R4” is an alkyl group or a hydrogen (H), and “m” and “n” represents an integer number, molecular weights of the first and second monomers are greater than or equal to 100, and less than or equal to 800. The first and second monomers, the initiator and the lithium salt are mixed to form a mixture, and a weight ratio of the first monomer to the second monomer is less than or equal to 50%. The first and second monomers are polymerized to form an interpenetrating polymer network, and the lithium salt is transformed into a solid solution and dispersing in the interpenetrating polymer network.Type: ApplicationFiled: October 16, 2012Publication date: June 20, 2013Inventors: LI WANG, XIANG-MING HE, JIAN-JUN LI, JIAN GAO, CHANG-YIN JIANG
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Publication number: 20130040207Abstract: A copolymer suitable for use in forming a solid polymer electrolyte film comprising a first monomer represented by Formula (1): wherein n is 2 to 1,000; m is 2 to 1,000; x and y are individually 1 to 100; p is 0 to 10; and q is 1 to 10, R1 is an alkyl group having 1 to 10 carbon atoms, and A is an alkyl acryloyl group an acryloyl group, alkyl acryloyl group, methacryloyl group, alkyl methacryloyl group, a vinyl group, an allyl group, a styryl group, or a combination of two or more thereof; and a second monomer chosen from a hydroxyl-substituted alkyl acrylate, a hydroxyl-substituted alkyl methacrylate, or a combination of two or more thereof. The copolymer may be used to form a solid polymer electrolyte composition comprising (i) the copolymer, (ii) a plasticizer, and (iii) a salt. The solid polymer electrolyte may be used to form a solid polymer electrolyte film, which may be suitable for use in electrochemical devices.Type: ApplicationFiled: August 12, 2011Publication date: February 14, 2013Inventors: Neeraj Gupta, Anantharaman Dhanabalan, Nagendiran Shanmugam, Vivek Khare
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Publication number: 20120208091Abstract: Polymer-based solid electrolytes and preparation methods thereof are provided. The polymer-based solid electrolyte comprises a polymer, an electrolyte, and a solvent. The polymer of the solid electrolyte can be polyvinyl alcohol (PVA) or sulfonated polyetheretherketone (SPEEK). The electrolyte is a lithium salt.Type: ApplicationFiled: February 16, 2012Publication date: August 16, 2012Applicant: TAIWAN TEXTILE RESEARCH INSTITUTEInventors: Chung-Bo Tsai, Yan-Ru Chen, Wen-Hsien Ho, Kuo-Feng Chiu, Shih-Hsuan Su
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Publication number: 20120196188Abstract: A polymer ion exchange membrane for acidic electrolyte flow battery. The membrane is nitrogen heterocycles aromatic polymer, especially polybenzimidazole type polymer. A nitrogen heterocycles in the membrane interact with acid in the electrolyte to form donor-receptor proton transport network, so as to keep the proton transport performance of the membrane. The preparation condition for the membrane is mild, and the process is simplicity. The preparation method is suitable for mass production. The membrane is used in acidic electrolyte flow battery, especially in vanadium flow energy storage battery. The membrane has excellent mechanical stability and thermostability. In vanadium redox flow battery, the membrane has excellent proton conduct performance and excellent resistance to the permeation of vanadium ions.Type: ApplicationFiled: June 25, 2010Publication date: August 2, 2012Applicants: Dalian Institute of Chemical Physics, Chinese Academy of Sciences, DALIAN RONGKE POWER CO., LTD.Inventors: Huamin Zhang, Xianfeng Li, Hua Dai, Cheng Bi
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Publication number: 20120141881Abstract: An optimal architecture for a polymer electrolyte battery, wherein one or more layers of electrolyte (e.g., solid block-copolymer) are situated between two electrodes, is disclosed. An anolyte layer, adjacent the anode, is chosen to be chemically and electrochemically stable against the anode active material. A catholyte layer, adjacent the cathode, is chosen to be chemically and electrochemically stable against the cathode active material.Type: ApplicationFiled: August 13, 2010Publication date: June 7, 2012Applicant: SEEO, INCInventors: Michael Geier, Ilan Gur, Mohit Singh, William Hudson
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Publication number: 20120129045Abstract: A polymer-based electrolyte material for use in lithium ion batteries that exhibits high bulk ion conductivity at ambient and sub-ambient temperatures. The polymer electrolyte comprises a polymer matrix and a liquid electrolyte which is an organic solvent containing a free lithium salt. The polymer matrix is cross-linked and can be formed of cross-linkable ionic monomers, particularly ionic LLC surfactant monomers.Type: ApplicationFiled: September 20, 2011Publication date: May 24, 2012Inventors: Douglas L. GIN, Robert L. Kerr, Brian J. Elliott
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Publication number: 20120052397Abstract: Electrolyte materials for use in electrochemical cells, electrochemical cells comprising the same, and methods of making such materials and cells, are generally described. In some embodiments, the materials, processes, and uses described herein relate to electrochemical cells comprising sulfur and lithium such as, for example, lithium sulfur batteries. The electrolyte can comprise a polymeric material and, in some cases, an absorbed auxiliary material. For example, the electrolyte material can be capable of forming a gel, and the auxiliary material can comprise an electrolyte solvent. In some instances, the electrolyte material can comprise at least one organic (co)polymer selected from polyethersulfones, polyvinylalcohols (PVOH) and branched polyimides (HPI). The non-fluid material in the electrolyte, when configured for use, can, alone or in combination with the optional absorbed auxiliary material, have a yield strength greater than that of lithium metal, in some embodiments.Type: ApplicationFiled: August 24, 2011Publication date: March 1, 2012Applicants: BASF SE, Sion Power CorporationInventors: Yuriy V. Mikhaylik, Igor Kovalev, John D. Affinito, Helmut Moehwald, Rudiger Schmidt, Anna Cristadoro, Ingrid Haupt, Raimund Pietruschka
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Patent number: 8124283Abstract: The present invention relates to a cyclic siloxane-based compound and a solid polymer electrolyte composition containing the same as a crosslinking agent. The cyclic siloxane-based compound having a novel structure in which polyalkylene oxide acrylate groups are introduced into a cyclic siloxane compound and a solid polymer electrolyte composition containing the cyclic siloxane-based compound as a crosslinking agent along with other electrolyte components such as a plasticizer, lithium salt and a curing initiator. Since the solid polymer electrolyte composition of the present invention improves ion conductivity and electrochemical stability at room temperature, it can be useful as polymer electrolyte for electrolyte films, small-sized to high-capacity lithium-polymer secondary batteries, etc. Also, physical properties of the polymer electrolyte can be controlled easily by controlling the length of the polyalkylene oxide group in the cyclic siloxane-based crosslinking agent.Type: GrantFiled: March 20, 2006Date of Patent: February 28, 2012Assignee: Korea Research Institute of Chemical TechnologyInventors: Yongku Kang, Changjin Lee, Jun Kyoung Lee, Joung In Lee
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Patent number: 8114511Abstract: A composite porous membrane comprises a porous matrix and a polymer. The porous matrix contains a fiber woven fabric, a fiber nonwoven fabric, a porous metal material, or a porous inorganic material, and the polymer forms a three-dimensional network structure in the porous matrix. The composite porous membrane may be obtained by impregnating the porous matrix with a solution of the polymer, and by solidifying while stretching the polymer. Preferred examples of the porous matrix include glass fiber nonwoven fabrics, and preferred examples of the polymer include polybenzimidazoles.Type: GrantFiled: February 28, 2008Date of Patent: February 14, 2012Assignee: Honda Motor Co., Ltd.Inventor: Hiroshi Akita
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Publication number: 20110318647Abstract: Provided are an electrolyte comprising an amide compound of a specific structure, in which an alkoxy group is substituted with an amine group, and an ionizable lithium salt, and an electrochemical device containing the same. The electrolyte may have excellent thermal and chemical stability and a wide electrochemical window. Also, the electrolyte may have a sufficiently low viscosity and a high ionic conductivity, and thus, may be usefully applied as an electrolyte of electrochemical devices using various anode materials.Type: ApplicationFiled: September 2, 2011Publication date: December 29, 2011Applicant: LG CHEM, LTD.Inventors: Byoung-Bae Lee, Jae-Seung Oh, Ji-Won Park, Hyo-Jin Lee, Dong-Su Kim, Yeon-Suk Hong
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Publication number: 20110305958Abstract: An object is to provide a power storage device with improved cycle characteristics and a method of manufacturing the power storage device. Another object is to provide an application mode of the power storage device for which the above power storage device is used. In the method of manufacturing the power storage device, an active material layer is formed over a current collector, a solid electrolyte layer is formed over the active material layer after a natural oxide film over the active material layer is removed, and a liquid electrolyte is provided so as to be in contact with the solid electrolyte layer. Accordingly, decomposition and deterioration of the electrolyte solution which are caused by the contact between the active material layer and the electrolyte solution can be prevented, and cycle characteristics of the power storage device can be improved.Type: ApplicationFiled: June 8, 2011Publication date: December 15, 2011Applicant: SEMICONDUCTOR ENERGY LABORATORY CO., LTD.Inventor: Kazutaka KURIKI
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Publication number: 20110281175Abstract: An electrode/electrolyte assembly that has a well-integrated interface between an electrode and a solid polymer electrolyte film, which provides continuous, ionically-conducting and electronically insulating paths between the films is provided. A slurry is made containing active electrolyte material, a liquefied, ionically-conductive first polymer electrolyte with dissolved lithium salt, and conductive additive. The binder may have been liquefied by dissolving in a volatile solvent or by melting. The slurry is cast or extruded as a thin film and dried or cooled to form an electrode layer that has some inherent porosity. A liquefied second polymer electrolyte that includes a salt is cast over the electrode film. Some of the liquefied second polymer electrolyte fills at least some of the pores in the electrode film and the rest forms an electrolyte layer on top of the electrode film.Type: ApplicationFiled: November 6, 2009Publication date: November 17, 2011Applicant: Seeo, IncInventors: William Hudson, Mohit Singh, Michael Geier
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Publication number: 20110136017Abstract: A novel anode for a lithium battery cell is provided. The anode contains silicon nanoparticles embedded in a solid polymer electrolyte. The electrolyte can also act as a binder for the silicon nanoparticles. A plurality of voids is dispersed throughout the solid polymer electrolyte. The anode may also contain electronically conductive carbon particles. Upon charging of the cell, the silicon nanoparticles expand as take up lithium ions. The solid polymer electrolyte can deform reversibly in response to the expansion of the nanoparticles and transfer the volume expansion to the voids.Type: ApplicationFiled: July 31, 2009Publication date: June 9, 2011Applicant: SEEO, INCInventors: Mohit Singh, William Hudson
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Patent number: 7820323Abstract: The carboxyl borate represents a novel liquid that upon reaction with lithium halide produces a lithium ion electrochemical device electrolyte upon dissolution in an aprotic solvent mixture.Type: GrantFiled: September 7, 2006Date of Patent: October 26, 2010Assignee: The United States of America as represented by the Secretary of the ArmyInventors: Shengshui Zhang, Conrad Xu, T. Richard Jow
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Publication number: 20100216023Abstract: An energy storage device structure comprises a first electrode layer, an electrolyte layer and a second electrode layer. At least one of the electrode layers comprise a metallic foil base layer and a layer of carbon nanotubes grown on the base layer, the carbon nanotube layer being arranged to face the electrolyte layer. The structure may be made in such a way that its width and length are much larger than its thickness, so that it can rolled up or folded and then hermetically sealed to form an energy storage unit. The layer of carbon nanotubes is grown on the metallic foil base layer by a chemical vapor deposition process at a temperature no higher than 550° C. The carbon nanotubes in the carbon nanotube layer are at least partially aligned in a direction that is perpendicular to the surface of the metallic base layer.Type: ApplicationFiled: September 29, 2009Publication date: August 26, 2010Inventors: Di Wei, Alan Colli, Markku Antti Kyosti Rouvala, Husnu Emrah Unalan, Pritesh Hiralal, Gahan Amaratunga, Nalin Rupesinghe
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Publication number: 20090202917Abstract: The invention provides composite graphite particles, comprising a core material consisting of graphite having a interlayer distance d(002) of 0.337 nm or less and a surface layer consisting of graphite in which the intensity ratio ID/IG (R value) between the peak intensities (ID) in a range of 1300 to 1400 cm?1 and ( IG) in a range of 1580 to 1620 cm?1 as measured by Raman scattering spectroscopy is 0.3 or higher, wherein the peak intensity ratio I110/I004 between the peak intensities (I110)of face (110) and (I004)of face (004) obtained by XRD measurement on the graphite crystal is 0.15 or higher when the graphite has been mixed with a binder and pressure-molded to a density of 1.55 to 1.Type: ApplicationFiled: December 20, 2006Publication date: August 13, 2009Applicant: Showa Denko K.K.Inventors: Chiaki Sotowa, Masataka Takeuchi
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Patent number: 7504473Abstract: Novel chain polymers comprising weakly basic anionic moieties chemically bound into a polyether backbone at controllable anionic separations are presented. Preferred polymers comprise orthoborate anions capped with dibasic acid residues, preferably oxalato or malonato acid residues. The conductivity of these polymers is found to be high relative to that of most conventional salt-in-polymer electrolytes. The conductivity at high temperatures and wide electrochemical window make these materials especially suitable as electrolytes for rechargeable lithium batteries.Type: GrantFiled: June 16, 2001Date of Patent: March 17, 2009Assignee: Arizona Board of Regents for and on behalf of Arizona State UniversityInventors: Charles A. Angell, Wu Xu
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Patent number: 7229717Abstract: A battery with a high capacity and superior cycle characteristics, and an anode active material used for it are provided. An anode active material contains tin as a first element, a second element, and a third element. The second element is at least one from the group consisting of boron, carbon, aluminum, and phosphorus, and the third element is at least one from the group consisting of silicon, magnesium, titanium, vanadium, chromium, manganese, iron, cobalt, nickel, copper, zinc, gallium, zirconium, niobium, molybdenum, silver, indium, cerium, hafnium, tantalum, tungsten, and bismuth. The content of the second element in the anode active material is from 9.8 wt % to 49 wt %.Type: GrantFiled: September 21, 2005Date of Patent: June 12, 2007Assignee: Sony CorporationInventors: Akira Yamaguchi, Satoshi Mizutani, Hiroshi Inoue, Koji Sekai
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Patent number: 6916679Abstract: A novel method for production of and an apparatus for an encapsulated solid-state electrochemical device is disclosed. The present invention provides for electrical devices, such as, for example, thin-film batteries with sensitive chemistries that can survive environmental exposure while providing external electrical contact to the internal cell chemistry. The method of packaging of the present invention may include bonding one or more protective multi-layer laminates to the environmentally sensitive surfaces of an electronic device. The present invention may provide the advantage of avoiding entrapped air beneath the laminates.Type: GrantFiled: August 9, 2002Date of Patent: July 12, 2005Assignee: Infinite Power Solutions, Inc.Inventors: Shawn W. Snyder, Pawan K. Bhat, Shefall Jaiswal
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Patent number: 6878491Abstract: A polyether copolymer having a weight-average molecular weight of 104 to 107, formed from 3 to 30% by mol of a repeating unit derived from propylene oxide, 96 to 69% by mol of a repeating unit derived from ethylene oxide, and 0.01 to 15% by mol of a crosslinkable repeating unit derived from a reactive oxirane compound, gives a provide a crosslinked solid polymer electrolyte which is superior in processability, moldability, mechanical strength, flexibility and heat resistance, and has markedly improved ionic conductivity.Type: GrantFiled: October 13, 1999Date of Patent: April 12, 2005Assignee: Daiso Co., Ltd.Inventors: Katsuhito Miura, Masanori Yanagida, Hiroki Higobashi, Shouhei Matsui
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Patent number: 6849362Abstract: A polymer electrolyte composition for improving overcharge safety and a lithium battery using the same are provided. The polymer electrolyte composition includes acrylate, epoxy or isocyanate at both of its terminals, and includes a compound containing an aromatic group such as thiophene, biphenyl or furan in an amount of 0.1% to 20% by weight based on the amount of the overall organic electrolytic solution. The polymer electrolyte composition further includes at least one of polyethylene glycol diacrylate (PEGDA), polyethylene glycol dimethacrylate (PEGDMA), and a mixture thereof. A lithium polymer battery using the polymer electrolyte composition can be suppressed from danger of ignition or explosion when the battery is overcharged due to some uncontrolled conditions, such as failure of a charger. Moreover, an additional cutoff device is not necessary, while still exhibiting good life cycle characteristics of the battery.Type: GrantFiled: October 23, 2002Date of Patent: February 1, 2005Assignee: Samsung SDI Co., Ltd.Inventor: Hyeong-Gon Noh
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Patent number: 6841299Abstract: An electrolyte composition excellent in charge-transporting property that can be prepared with ease, and a non-aqueous electrolyte secondary cell that comprises the electrolyte composition to exhibit excellent cell characteristics while preventing leakage or depletion of the electrolyte composition. The electrolyte composition comprises: a particular molten salt; a polymer prepared by a reaction between an electrophile having at least two unsaturated bonds polarized by an electron-withdrawing group and a nucleophile having a plurality of nucleophilic groups; and a metal salt containing a Group IA metal ion or a Group IIA metal ion.Type: GrantFiled: December 21, 2001Date of Patent: January 11, 2005Assignee: Fuji Photo Film Co., Ltd.Inventor: Koji Wariishi
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Publication number: 20040259000Abstract: A battery capable of improving battery characteristics such as cycle characteristics is provided. The battery includes a spirally wound electrode body including a cathode and an anode spirally wound with a separator in between. The capacity of the anode includes a capacity component by insertion and extraction of light metal and a capacity component by precipitation and dissolution of the light metal, and is represented by the sum of them. The separator is impregnated with an electrolyte solution formed through dissolving a lithium salt in a solvent. As the electrolyte salt, difluoro[oxalato-O,O′]lithium borate, tetrafluoro[oxalato-O,O′]lithium phosphate or difluorobis[oxalato-O,O′]lithium phosphate is used. By the formation of a stable coating, decomposition of the solvent and a reaction between precipitated lithium metal and the solvent can be prevented.Type: ApplicationFiled: June 9, 2004Publication date: December 23, 2004Inventors: Momoe Adachi, Shigeru Fujita, Masahiro Aoki, Hiroyuki Akashi, Yoshiaki Naruse
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Patent number: 6815124Abstract: A gel electrolyte in which nonaqueous electrolyte solution obtained by dissolving electrolyte salt containing Li in a nonaqueous solvent is gelled by a matrix polymer including a copolymer as a main component which contains vinylidene fluoride as a monomer unit. The copolymer employed as the matrix polymer is carboxylic acid modified polyvinylidene fluoride into which a structure formed by esterifying a part or all of a carboxyl group, a carboxylic acid or an acetic anhydride structure is introduced. The carboxylic acid modified polyvinylidene fluoride can dissolve and retain therein a solvent of low viscosity having a low boiling point. Therefore, the carboxylic acid modified polyvinylidene fluoride is used as a matrix polymer to improve the ionic conductivity of the gel electrolyte at low temperature. Thus, a low temperature characteristic is improved and a cyclic characteristic and a load characteristic are also improved.Type: GrantFiled: June 12, 2001Date of Patent: November 9, 2004Assignee: Sony CorporationInventors: Yusuke Suzuki, Mashio Shibuya
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Publication number: 20040214090Abstract: Disclosed is a cyclic siloxane polymer electrolyte for use in lithium electrochemical storage devices such as secondary batteries and capacitors. Electrolyte polymers comprising poly(siloxane-g-ethylene oxides) with one or more poly(ethylene oxide) side chains directly bonded to Si atoms are convenient to synthesize, have a long shelf life, have ionic conductivity of over 10−4 S/cm at room temperature, do not evaporate up to 150° C., have a wide electrochemical stability window of over 4.5 V (vs. lithium), and are not flammable. Viscosity and conductivity can be optimized by controlling the size of siloxane ring or the length of poly(ethylene oxide) side chain. The polymer disclosed may also be used in solid electrolyte applications by use of solidifying agents or entrapping within solid polymers. Means to synthesize both 8 and 10 membered rings are described using both boron and triethylamine as catalysts.Type: ApplicationFiled: March 26, 2004Publication date: October 28, 2004Inventors: Robert C West, Qingzheng Wang, Khalil Amine
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Publication number: 20040191602Abstract: The invention provides a crosslinkable aromatic resin having a protonic acid group and a crosslinkable group, suitable for electrolytic membranes and binders used in fuel cells, etc., and electrolytic polymer membranes, binders and fuel cells using the resin. The crosslinkable aromatic resin has a crosslinkable group, which is not derived from the protonic acid group and can form a polymer network without any elimination component. This resin exhibits excellent ion conductivity, heat resistance, water resistance, adhesion property and low methanol permeability. Preferably, the crosslinkable group is composed of a C1 to C10 alkyl group directly bonded to the aromatic ring and/or an alkylene group having 1 to 3 carbon atoms in the main chain in which at least one carbon atom directly bonded to the aromatic ring bonds to hydrogen, and a carbonyl group, or a carbon-carbon double bond or triple bond.Type: ApplicationFiled: April 9, 2004Publication date: September 30, 2004Applicant: MITSUI CHEMICALS, INC.Inventors: Junichi Ishikawa, Takashi Kuroki, Satoko Fujiyama, Takehiko Omi, Tomoyuki Nakata, Yuichi Okawa, Kazuhisa Miyazaki, Shigeharu Fujii, Shoji Tamai
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Patent number: 6673496Abstract: A film-type lithium secondary battery in which at least one of a positive electrode (2), a negative electrode (3) and a separator (1) contains an electrolyte having a specified structure, the electrolyte having the above specified structure is composed of a liquid electrolyte and an organic polymer, the organic polymer is formed by polymerizing an organic monomer having a polymeric functional group at its molecular chain end, the organic polymer contains in its molecule a first chemical structure and a second chemical structure, the first chemical structure is at least one of an ethylene oxide structure and a propylene oxide structure, and the second chemical structure is at least one kind selected from among an alkyl structure, a fluoroalkyl structure, a benzene structure, an ether group and an ester group.Type: GrantFiled: July 27, 1999Date of Patent: January 6, 2004Assignee: Yuasa CorporationInventors: Hiroe Nakagawa, Seijiro Ochiai, Syuichi Izuchi
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Patent number: 6641957Abstract: The non-aqueous electrolyte battery of the present invention has a negative electrode comprising metallic lithium, a lithium alloy or a material capable of absorbing and desorbing lithium; a positive electrode; a non-aqueous electrolyte comprising a solvent and a solute dissolved in the solvent, wherein the above non-aqueous electrolyte contains at least one additive selected from phthalimide, derivative of phthalimide, phthalimidine, derivative of phthalimidine, tetrahydrophthalimide and derivative of tetrahydrophthalimide. On account of the effect of the above additive, the nonaqueous electrolyte battery of the present invention is not liable to cause an increase in the internal resistance during a long-term storage at high temperatures, and the charge/discharge cycle characteristics are improved in a secondary battery.Type: GrantFiled: July 12, 2001Date of Patent: November 4, 2003Assignee: Matsushita Electric Industrial Co., Ltd.Inventors: Shinichi Kawaguchi, Tadayoshi Takahashi, Nobuharu Koshiba
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Patent number: 6593019Abstract: Ionic perfluorovinyl compounds and their uses as components of ionic conductors of the polymer type, of selective membranes or of catalysts. The compounds comprise at least one perfluorovinyl group and at least one group chosen from —O or one of the groups C≡N, —C(C≡N)2, —NSO2R or —C[SO2R]2 or a pentacyclic group comprising at least one N, C—C≡N, CR, CCOR or CSO2R group. The compounds and/or their polymers are of use in the preparation of ionically conducting materials, electrolytes and selective membranes.Type: GrantFiled: June 17, 2002Date of Patent: July 15, 2003Assignees: ACEP Inc., Centre National de la Recherche Scientifique, Universite de MontrealInventors: Michel Armand, Christophe Michot
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Publication number: 20020142207Abstract: A solid polymer electrolyte material made of a copolymer comprising a repeating unit based on a fluoromonomer A which gives a polymer having an alicyclic structure in its main chain by radical polymerization, and a repeating unit based on a fluoromonomer B of the following formula (1):Type: ApplicationFiled: December 26, 2001Publication date: October 3, 2002Applicant: ASAHI GLASS COMPANY LIMITEDInventors: Atsushi Watakabe, Takeshi Eriguchi, Toshihiro Tanuma, Yasuhiro Kunisa
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Patent number: 6447952Abstract: This invention provides alkali ion conducting polymer electrolytes with high ionic conductivity and elastomeric properties suitable for use in high energy batteries. The polymer electrolytes are cyclic carbonate-containing polysiloxanes that can be modified with a cross linker or chain extender, and an alkali metal ion-containing material dissolved in the carbonate-containing polysiloxane. The cyclic carbonate-containing polysiloxanes may be prepared by reacting derivatized polysiloxanes with chain extending and/or crosslinking agents. The invention also provides batteries prepared by contacting an alkali metal anode with an alkali metal intercalating cathode and an alkali ion-conducting polymer electrolyte. As one example, polymers prepared from poly {3[2,3-(carbonyldioxy)propoxy]propyl]methyl siloxane, a polysiloxane with cyclic carbonate side chains, have shown promising results for battery applications.Type: GrantFiled: June 5, 2000Date of Patent: September 10, 2002Assignee: Eltron Research, Inc.Inventors: Ella F. Spiegel, Anthony F. Sammells, Kresimir Adamic
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Patent number: 6376129Abstract: The invention relates to sulphonated polyimides, notably of formula (I) The invention also relates to an ion exchange membrane that includes such a polyimide and a fuel cell that includes such a membrane. The membranes of the invention have excellent durability and low cost and the fuel cells can be used, in particular, in electric vehicles.Type: GrantFiled: April 20, 2001Date of Patent: April 23, 2002Assignee: Commissariat a L'Energie AtomiqueInventors: Sylvain Faure, Michel Pineri, Pierre Aldebert, Régis Mercier, Bernard Sillion
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Patent number: 6326105Abstract: Polymer electrolyte composites for alkali metal electrochemical devices which are formed by coating an inert, lightweight, electrically insulating, non-woven glass fiber net which includes a polyvinyl alcohol binder, with a liquid polymer which may be ionically conductive, and curing the polymer to form a solid or semi-solid state electrolyte composite.Type: GrantFiled: June 20, 2000Date of Patent: December 4, 2001Assignee: Lithium Technology CorporationInventors: Joseph B. Kejha, Santha Kolla, Jay Forlino
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Patent number: 6221533Abstract: A nonaqueous electrolyte lithium primary or secondary battery having improved storage property is disclosed. The battery includes a positive electrode; a negative electrode in which the active material is lithium, a lithium alloy or a compound capable of occluding and discharging lithium; and a nonaqueous electrolyte including a solvent containing at least 10 wt % of dioxolane or derivative of dioxolane and an electrolytic solute represented by LiN(CmF2m+1SO2)(CnF2n+1SO2) (where m is a natural number of 1 or greater, and n is a natural number of 2 or greater).Type: GrantFiled: January 27, 1999Date of Patent: April 24, 2001Assignee: Sanyo Electric Co., Ltd.Inventors: Yasuyuki Kusumoto, Ryuji Ohshita, Toshiyuki Nohma, Koji Nishio
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Patent number: 6210838Abstract: A substrate for an ion conductor includes a polymer or molecule capable of sustaining ion conduction, and a boroxine ring. The above mentioned polymer or molecule participates in and promotes ionic conduction. The boroxine ring is bonded to the above mentioned polymer or molecule, and captures anions resulting from dissolution of a salt. An ion conductor includes the substrate, and a salt combined with the substrate. In the ion conductor, the anions resulting from the salt are captured by the boroxine ring, but the cations resulting therefrom are transported. Thus, ion conduction where the majority of charge is carried by the cations occur. As a result, cation transport numbers far greater than usually observed can be achieved.Type: GrantFiled: July 30, 1998Date of Patent: April 3, 2001Inventors: Tatsuo Fujinami, Mary Anne Mehta
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Patent number: 6201071Abstract: A solid polymer electrolyte containing a polyether copolymer having a weight-average molecular weight of 104 to 107 which may optionally be cross-linked and which contains (A) 1 to 99% by mol of a repeating unit derived from a monomer represented by the formula (I): wherein R1 represents a divalent organic group, (B) 99 to 1% by mol of a repeating unit derived from ethylene oxide, and (C) 0 to 15% by mol of a repeating unit derived from a monomer having one epoxy group and at least one reactive functional group, an electrolyte salt compound, and a plasticizer has an excellent ionic conductivity.Type: GrantFiled: April 19, 1999Date of Patent: March 13, 2001Assignee: Daiso Co., Ltd.Inventors: Katsuhito Miura, Masanori Yanagida, Kazumasa Hinoue, Yoshiro Furukawa
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Patent number: 6176984Abstract: High temperature polybenzazole and polyether polymer electrolytes are provided. High temperature polybenzazole polymer electrolytes may comprise a benzobisoxazole, a benzobisthiazole, a benzobisimidazole, a difluorodisulfonated phenyl ring or a sulfonated bisphenylether. High temperature polyether polymers comprise a persulfonated phenyl ring, and a substituted phenyl ring or a substituted bisphenylsulfonyl ring system.Type: GrantFiled: June 28, 1999Date of Patent: January 23, 2001Assignee: SRI InternationalInventors: Subhash Narang, Susanna Ventura, Gary Koolpe