The Electrolyte Is Solid Patents (Class 429/304)
  • Publication number: 20110003211
    Abstract: An electrode assembly that includes an electrode film and a current collector is provided. The electrode film includes electrode active material, electronically conductive particles, and a solid polymer electrolyte. In some embodiments, no additional binder is used as the solid polymer electrolyte also acts as a binder to hold together the active material and electronically conductive particles, thus creating a freestanding electrode film. Such a freestanding film makes it possible to deposit a very thin current collector layer, thus increasing specific energy and specific power for electrochemical cells in which these electrode assemblies are used.
    Type: Application
    Filed: February 13, 2009
    Publication date: January 6, 2011
    Applicant: Seeo, Inc.
    Inventors: William Hudson, Hany Basam Eitouni, Mohit Singh, Nitash Pervez Balsara, Ilan Gur
  • Patent number: 7862953
    Abstract: An unsaturated compound including a urethane bond in a main chain and a sulfonic acid group, a phosphoric acid group, an alkylsulfonic acid group, or an alkylphosphoric acid group on a benzene ring in a side chain is provided. In addition, a solid polymer electrolyte membrane containing a compound prepared by polymerizing the above-mentioned compound and an electrolyte membrane-electrode assembly including diffusion layers adhered on both surfaces of the electrolyte membrane are provided. Furthermore, a solid polymer fuel cell using the electrolyte membrane-electrode assembly is provided.
    Type: Grant
    Filed: December 14, 2006
    Date of Patent: January 4, 2011
    Assignee: Canon Kabushiki Kaisha
    Inventors: Keiko Abe, Motokazu Kobayashi, Makoto Kubota
  • Publication number: 20100323247
    Abstract: A battery using an electrolyte with which favorable ion conductivity is able to be secured at low temperature is provided. A solid electrolyte is provided between a cathode in which a cathode active material layer is formed on a cathode current collector and an anode in which an anode active material layer is formed on an anode current collector. The electrolyte contains carbon cluster such as fullerene and an electrolyte salt such as a lithium salt. Thereby, compared to an electrolyte composed of a polymer compound such as polyethylene oxide and a lithium salt, lowering of ion conductivity is inhibited at low temperature.
    Type: Application
    Filed: January 28, 2009
    Publication date: December 23, 2010
    Applicant: SONY CORPORATION
    Inventors: Kazumasa Takeshi, Hiroyuki Morioka
  • Patent number: 7855017
    Abstract: A structural battery includes an anode, cathode and electrolyte which, taken collectively, have sufficient mechanical strength to allow the battery to be used as a structural component of an article of manufacture. The combined anode, cathode and electrolyte have a stiffness between 10 MPa-1000 GPa, and in certain instances have a stiffness between 50 MPa-100 GPa. Also disclosed are solid electrolytes which may be used in structural batteries. The electrolytes are comprised of salts dissolved in a solvent such as a body of polymeric material. The electrolyte has good ionic conductivity and good mechanical properties. The solid electrolyte may be comprised of a body of uncrosslinked polymer or an at least partially crosslinked polymer such as a multifunctional polymer having segments comprised of linear resins and segments comprised of crosslinking resins. Also disclosed are methods for manufacturing the structural batteries.
    Type: Grant
    Filed: November 9, 2006
    Date of Patent: December 21, 2010
    Assignee: The United States of America as represented by the Secretary of the Army
    Inventors: James F. Snyder, Robert H. Carter, Eric D. Wetzel
  • Patent number: 7846571
    Abstract: A lithium-ion battery cell includes at least two working electrodes, each including an active material, an inert material, an electrolyte and a current collector, a first separator region arranged between the at least two working electrodes to separate the at least two working electrodes so that none of the working electrodes are electronically connected within the cell, an auxiliary electrode including a lithium reservoir, and a second separator region arranged between the auxiliary electrode and the at least two working electrodes to separate the auxiliary electrode from the working electrodes so that none of the working electrodes is electronically connected to the auxiliary electrode within the cell.
    Type: Grant
    Filed: June 25, 2007
    Date of Patent: December 7, 2010
    Assignee: Robert Bosch GmbH
    Inventors: John F. Christensen, Jasim Ahmed, Sungbae Park, Aleksandar Kojic
  • Publication number: 20100304222
    Abstract: Disclosed is an electrolyte comprising (a) a eutectic mixture of an amide compound represented by the following chemical formula 1 or 2 and an ionizable lithium salt; and (b) a nitrile compound. The eutectic mixture and the nitrile compound in the electrolyte contribute to excellent thermal and chemical stability and sufficiently low viscosity and high ion conductivity. The electrolyte can be usefully applied as an electrolyte of electrochemical devices.
    Type: Application
    Filed: August 11, 2010
    Publication date: December 2, 2010
    Inventors: Ji-Won PARK, Byoung-Bae Lee, Jae-Seung Oh, Dong-Su Kim, Hyo-Jin Lee, Yeon-Suk Hong
  • Publication number: 20100297479
    Abstract: An all-solid lithium secondary battery which uses a sulfide-based solid electrolyte material and has a power-generating element that has formed therein an oxide layer containing substantially no moisture, which is produced by oxidation of the sulfide-based solid electrolyte material in a zone where the electrolyte-containing layer containing at least the sulfide-based solid electrolyte material is in contact with an external air.
    Type: Application
    Filed: February 11, 2009
    Publication date: November 25, 2010
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Yasushi Tsuchida, Fuminori Mizuno
  • Publication number: 20100291420
    Abstract: A vanadium halide redox cell including: a positive half cell containing a positive half cell solution including a halide electrolyte, a polyhalide complex, vanadium (IV) halide and vanadium (V) halide; a negative half cell containing a negative half cell solution including a halide electrolyte, vanadium (II) halide and vanadium (III) halide; wherein the ratio of the number of moles of polyhalide complex and vanadium (V):number of moles of vanadium (II) halide is about stoichiometrically balanced and wherein the ratio of the number of moles of polyhalide complex:the number of moles of vanadium (II) halide is in the range of from about 0.7:2 to about 1.3:2.
    Type: Application
    Filed: July 26, 2010
    Publication date: November 18, 2010
    Inventors: Michael Kazacos, Maria Skyllas-Kazacos, Nicholas Kazacos
  • Publication number: 20100291443
    Abstract: A cell suitable for use in a battery according to one embodiment includes a catalytic oxygen cathode; a stabilized zirconia electrolyte for selective oxygen anion transport; a molten salt electrolyte; and a lithium-based anode. A cell suitable for use in a battery according to another embodiment includes a catalytic oxygen cathode; an electrolyte; a membrane selective to molecular oxygen; and a lithium-based anode.
    Type: Application
    Filed: May 12, 2010
    Publication date: November 18, 2010
    Inventor: Joseph C. Farmer
  • Publication number: 20100285372
    Abstract: A lithium metal thin-film battery composite structure is provided that includes a combination of a thin, stable, solid electrolyte layer [18] such as Lipon, designed in use to be in contact with a lithium metal anode layer; and a rapid-deposit solid electrolyte layer [16] such as LiAlF4 in contact with the thin, stable, solid electrolyte layer [18]. Batteries made up of or containing these structures are more efficient to produce than other lithium metal batteries that use only a single solid electrolyte. They are also more resistant to stress and strain than batteries made using layers of only the stable, solid electrolyte materials. Furthermore, lithium anode batteries as disclosed herein are useful as rechargeable batteries.
    Type: Application
    Filed: June 11, 2007
    Publication date: November 11, 2010
    Applicant: ALLIANCE FOR SUSTAINABLE ENERGY,LLC
    Inventors: Se-Hee Lee, Edwin C. Tracy, John Roland Pitts, Ping Liu
  • Patent number: 7829218
    Abstract: Aspects of the present invention provide a proton conductive electrolyte suitable for a fuel cell material and a fuel cell including the proton conductive electrolyte. More particularly, aspects of the present invention provide a proton conductive electrolyte that has good proton conductivity and can be used to form a membrane having good flexibility. As a result, the proton conductive electrolyte can be used in a fuel cell, the electrolyte membrane of a fuel cell or the electrodes thereof, and can provide a solid polymer fuel cell having high current density, high power and long life-time in a dry environment (relative humidity of 50% or less) at an operating temperature of 100 to 200° C.
    Type: Grant
    Filed: January 9, 2007
    Date of Patent: November 9, 2010
    Assignee: Samsung SDI Co., Ltd
    Inventors: Hiroko Endo, Hiroyuki Nishide, Atsuo Sonai, Takahiro Tago
  • Publication number: 20100279176
    Abstract: There is provided a nonaqueous electrolyte secondary battery in which lithium ions can move smoothly between a positive electrode and a solid electrolyte layer, the nonaqueous electrolyte secondary battery having improved internal resistance. The nonaqueous electrolyte secondary battery includes a positive electrode 1, a negative electrode 2, and a solid electrolyte layer 3 arranged between the positive and negative electrodes. The positive electrode 1 includes a positive-electrode sintered body 10 formed by firing a powder containing a positive-electrode active material and includes a cover layer 11 arranged on a surface of the positive-electrode sintered body 10 adjacent to the solid electrolyte layer 3, the cover layer containing a positive-electrode active material. The cover layer 11 contains a compound having a layered rock-salt structure. Preferably, the direction of the c-axis of the crystal of the compound is not perpendicular to the surface of the positive-electrode sintered body.
    Type: Application
    Filed: June 29, 2009
    Publication date: November 4, 2010
    Applicant: SUMITOMO ELECTRIC INDUSTRIES ,LTD.
    Inventors: Mitsuyasu Ogawa, Nobuhiro Ota, Takashi Uemura, Ryoko Kanda, Kentaro Yoshida
  • Publication number: 20100279175
    Abstract: An electrochemical cell for a secondary battery is provided, which includes a positive electrode having an intercalation cathode material of bentonite; a negative electrode material having an anode material containing one of magnesium and sodium; an electrolyte positioned in contact with at least one of the positive electrode and the negative electrode; wherein, when the anode material contains magnesium, the electrolyte is a solid gel polymeric electrolyte; and wherein, when the anode material is sodium, the electrolyte is a salt electrolyte, both the anode material and the electrolyte are molten at the operating temperature of the battery, and the cell further comprises a beta alumina solid electrolyte separator between the negative electrode and the electrolyte. To increase its conductivity, the bentonite material is treated, before cell assembly, with an acid and/or intercalated with an anilinium ion, which is then polymerized to form a polyaniline within the bentonite framework.
    Type: Application
    Filed: December 22, 2009
    Publication date: November 4, 2010
    Inventor: Edgar D. Young
  • Patent number: 7824806
    Abstract: Protected anode architectures have ionically conductive protective membrane architectures that, in conjunction with compliant seal structures and anode backplanes, effectively enclose an active metal anode inside the interior of an anode compartment. This enclosure prevents the active metal from deleterious reaction with the environment external to the anode compartment, which may include aqueous, ambient moisture, and/or other materials corrosive to the active metal. The compliant seal structures are substantially impervious to anolytes, catholyes, dissolved species in electrolytes, and moisture and compliant to changes in anode volume such that physical continuity between the anode protective architecture and backplane are maintained. The protected anode architectures can be used in arrays of protected anode architectures and battery cells of various configurations incorporating the protected anode architectures or arrays.
    Type: Grant
    Filed: August 8, 2006
    Date of Patent: November 2, 2010
    Assignee: PolyPlus Battery Company
    Inventors: Steven J. Visco, Yevgeniy S. Nimon, Lutgard C. De Jonghe, Bruce D. Katz, Alexei Petrov
  • Publication number: 20100273062
    Abstract: An all-solid-state battery includes: a positive electrode active material layer that contains a positive electrode active material, and a first sulfide solid electrolyte material that contacts the positive electrode active material and that substantially does not have a cross-linking chalcogen; a negative electrode active material layer containing a negative electrode active material; and a solid electrolyte layer that is provided between the positive electrode active material layer and the negative electrode active material layer, and that contains a second sulfide solid electrolyte material that substantially has a cross-linking chalcogen.
    Type: Application
    Filed: April 27, 2010
    Publication date: October 28, 2010
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Yasushi Tsuchida, Yukiyoshi Ueno, Shigenori Hama, Masato Kamiya, Hiroshi Nagase
  • Patent number: 7803486
    Abstract: The invention provides a power storage device capable of preventing reduced energy efficiency of the power storage device and of avoiding variations in temperature distribution. The power storage device includes a positive electrode and a negative electrode, and a solid electrolyte layer placed between the positive electrode and the negative electrode and including a group of particles, wherein the density of particles in a first area of the solid electrolyte layer is lower than the density of particles in a second area which has higher heat radiation than the first area.
    Type: Grant
    Filed: October 29, 2007
    Date of Patent: September 28, 2010
    Assignee: Toyota Jidosha Kabushiki Kaisha
    Inventor: Yoshiyuki Nakamura
  • Publication number: 20100227224
    Abstract: A sulfur-based cathode for use in an electrochemical cell is disclosed. An exemplary sulfur-based cathode is coupled with a solid polymer electrolyte instead of a conventional liquid electrolyte. The dry, solid polymer electrolyte acts as a diffusion barrier for the sulfur, thus preventing the sulfur capacity fade that occurs in conventional liquid electrolyte based cell systems. The solid polymer electrolyte further binds the sulfur-containing active particles, preventing sulfur agglomerates from forming, while still allowing lithium ions to be transported between the anode and cathode.
    Type: Application
    Filed: March 5, 2010
    Publication date: September 9, 2010
    Applicant: SEEO, INC
    Inventors: Hany Basam Eitouni, Mohit Singh
  • Publication number: 20100216029
    Abstract: An overcharge suppressing agent adapted to react when the positive electrode potential becomes higher, to increase the internal resistance of a battery during overcharge in an lithium ion secondary battery in which a positive electrode capable of occluding and releasing lithium and a negative electrode capable of occluding and releasing lithium are formed by way of an electrolyte. The electrolyte contains a polymerizable compound represented by the chemical formula (1-1) or the chemical formula (1-2): Z1-A??Chemical formula (1-1) Z1-X-A??Chemical formula (1-2) in which Z1 is a polymerizable functional group, X is a hydrocarbon group or an oxyalkylene group having 1 or more and 20 or less carbon atoms, and A is an aromatic functional group.
    Type: Application
    Filed: January 27, 2010
    Publication date: August 26, 2010
    Applicant: HITACHI, LTD.
    Inventor: NORIO IWAYASU
  • Patent number: 7781098
    Abstract: The effective ionic conductivity in a composite structure is believed to decrease rapidly with volume fraction. A system, such as a bipolar device or energy storage device, has structures or components in which the diffusion length or path that electrodes or ions must traverse is minimized and the interfacial area exposed to the ions or electrons is maximized. The device includes components that can be reticulated or has a reticulated interface so that an interface area can be increased. The increased interfacial perimeter increases the available sites for reaction of ionic species. Many different reticulation patterns can be used. The aspect ratio of the reticulated features can be varied. Such bipolar devices can be fabricated by a variety of methods or procedures. A bipolar device having structures of reticulated interface can be tailored for the purposes of controlling and optimizing charge and discharge kinetics.
    Type: Grant
    Filed: March 3, 2008
    Date of Patent: August 24, 2010
    Assignee: Massachusetts Institute of Technology
    Inventors: Yet-Ming Chiang, Benjamin Hellweg
  • Publication number: 20100209779
    Abstract: High electrical energy density storage devices are disclosed. The devices include electrochemical capacitors, electrolytic capacitors, hybrid electrochemical-electrolytic capacitors, secondary batteries and batcaps. Advantageously, the energy storage devices may employ core-shell protonated perovskite submicron or nano particles in composite films that have one or more shell coatings on a protonated perovskite core particle, proton bearing and proton conductive. The shells may be formed of proton barrier materials as well as of electrochemically active materials in various configurations.
    Type: Application
    Filed: January 29, 2010
    Publication date: August 19, 2010
    Applicant: Recapping, Inc.
    Inventor: Mark A. Wendman
  • Patent number: 7776478
    Abstract: A method and apparatus for making thin-film batteries having composite multi-layered electrolytes with soft electrolyte between hard electrolyte covering the negative and/or positive electrode, and the resulting batteries. In some embodiments, foil-core cathode sheets each having a cathode material (e.g., LiCoO2) covered by a hard electrolyte on both sides, and foil-core anode sheets having an anode material (e.g., lithium metal) covered by a hard electrolyte on both sides, are laminated using a soft (e.g., polymer gel) electrolyte sandwiched between alternating cathode and anode sheets. A hard glass-like electrolyte layer obtains a smooth hard positive-electrode lithium-metal layer upon charging, but when very thin, have randomly spaced pinholes/defects. When the hard layers are formed on both the positive and negative electrodes, one electrode's dendrite-short-causing defects on are not aligned with the other electrode's defects.
    Type: Grant
    Filed: July 17, 2006
    Date of Patent: August 17, 2010
    Assignee: Cymbet Corporation
    Inventor: Jody J. Klaassen
  • Publication number: 20100196782
    Abstract: It is an object of the present invention to provide a polymer electrolyte material which has excellent proton conductivity even under the conditions of a low humidity or a low temperature and is excellent in mechanical strength and fuel barrier properties, and which moreover can achieve high output, high energy density and long-term durability in forming a polymer electrolyte fuel cell therefrom, and a polymer electrolyte form article using the same and a method for producing the same, a membrane electrode assembly and a polymer electrolyte fuel cell, each using the same. The present invention employs the following means.
    Type: Application
    Filed: August 8, 2007
    Publication date: August 5, 2010
    Applicant: TORAY INDUSTRIES, INC.
    Inventors: Daisuke Izuhara, Yuriko Okada
  • Patent number: 7767358
    Abstract: A dense ceramic electrolyte membrane supported by symmetrical porous ceramic electrolyte layers. The thin (t<100 microns) electrolyte layer is sandwiched between two fugitive-containing electrolyte support layers that become highly porous after firing. The heat treated fugitive-containing support layers form a skeletal structure of strongly adhered electrolyte with an interpenetrating network of pores that extends well always from the electrolyte surface. The porous layers can be infiltrated with a range of electrode materials or precursors to form a solid oxide fuel cell or other electrochemical cell as well as electrochemical cell stacks. The supported ceramic membrane provides electrochemical performance advantages and reduces warpage during sintering compared to conventional structures.
    Type: Grant
    Filed: May 31, 2005
    Date of Patent: August 3, 2010
    Assignee: NexTech Materials, Ltd.
    Inventors: Matthew M. Seabaugh, Katarzyna Sabolsky, Edward M. Sabolsky, Michael J. Day
  • Publication number: 20100167130
    Abstract: The invention relates to an improved electrochemical energy source, comprising: a substrate, and at least one stack deposited onto said substrate, the stack comprising: an first electrode, a second electrode, and an intermediate solid-state electrolyte separating the first electrode and the second electrode. The invention also relates to an electronic device provided with such an electrochemical energy source.
    Type: Application
    Filed: September 10, 2007
    Publication date: July 1, 2010
    Applicant: KONINKLIJKE PHILIPS ELECTRONICS N.V.
    Inventors: Remco Henricus Wilhelmus Pijnenburg, Petrus Henricus Laurentius Notten, Youri Victorovitch Ponomarev, Rogier Adrianus Henrica Niessen, Johannes Hubertus Gerardus Op Het Veld
  • Patent number: 7745052
    Abstract: The present invention provides a paste electrolyte comprising an organic solvent of not high dielectric constant, soluble lithium salts, and clays, with the clays being swollen by the solvent, and rechargeable lithium batteries containing the paste electrolyte. The paste electrolyte according to the present invention can improve the electrochemical properties and cycling stability of rechargeable lithium batteries by limiting the anionic transport between anode and cathode without significantly decreasing the lithium transport rate, particularly during fast charge and discharge.
    Type: Grant
    Filed: January 30, 2006
    Date of Patent: June 29, 2010
    Assignee: LG Chem, Ltd.
    Inventor: Jens M. Paulsen
  • Publication number: 20100129722
    Abstract: A cathode sputtering target includes: between 30 and 40 atomic % of a metal, between 2 and 10 atomic % of nitrogen, and between 35 and 50 atomic % of oxygen. The remainder up to 100% is constituted by at least one element selected from the group that comprises phosphorous (P), boron (B), silicon (Si), germanium (Ge), gallium (Ga), sulphur (S) and aluminium (Al). Also provides a method of manufacturing a thin film from the target, and an electrochemical device comprising the thin film.
    Type: Application
    Filed: March 26, 2008
    Publication date: May 27, 2010
    Applicant: H.E.F.
    Inventors: Michel Martin, Philippe Maurin-Perrier, Olivier Blandenet
  • Publication number: 20100112456
    Abstract: A solid state battery excellent in pressure formability is provided. A positive electrode composite material layer includes sulfide glass unheated and a positive electrode active material. The sulfide glass and the positive electrode active material are pressure-formed and in contact with each other. A negative electrode composite material layer includes sulfide glass unheated and a negative electrode active material. The sulfide glass and the negative electrode active material are pressure-formed and in contact with each other.
    Type: Application
    Filed: March 21, 2008
    Publication date: May 6, 2010
    Inventors: Kenji Kimura, Masahiro Tatsumisago, Akitoshi Hayashi
  • Publication number: 20100104947
    Abstract: An electrolyte composition and catalyst ink, a solid electrolyte membrane formed by printing the electrolyte composition and catalyst ink, and a secondary battery including the solid electrolyte membrane. An electrolyte composition includes a solvent; a lithium salt dissolved in the solvent; and a cycloolefin-based monomer dissolved or dispersed in the solvent and a catalyst ink includes a catalyst that promotes the ring-opening and polymerization reactions of the cycloolefin monomers of the electrolyte composition.
    Type: Application
    Filed: October 29, 2009
    Publication date: April 29, 2010
    Applicant: Samsung Electronics Co., Ltd.
    Inventors: Jae-man CHOI, Young-gyoon Ryu, Han-au Kim, Dong-Joon Lee, Moon-seok Kwon
  • Patent number: 7704642
    Abstract: The disclosure discloses a polymer represented by the general formula, wherein Rp is a residue of a polymer of a compound having a polymerizable unsaturated bond, Q is an organic residue of n+1 valences and connected directly or through another group to Rp by means of a single bond, Mk+ is a cation of k valence, Z is an organic function group capable of forming an ionic bond with cation Mk+ or an organic function group having a coordination capability with Mk+, and m, n and k are integers of one or more. The disclosure also discloses an intermediate of the polymer mentioned above.
    Type: Grant
    Filed: November 1, 2007
    Date of Patent: April 27, 2010
    Assignee: Hitachi, Ltd.
    Inventors: Shin Nishimura, Akira Satou, Takefumi Okumura, Makoto Morishima, Hitoshi Yamamoto, Norikazu Ueyama
  • Publication number: 20100075231
    Abstract: The invention provides a slurry, such as a lead-acid battery slurry, comprising a polyelectrolyte comb copolymer and lead oxide. Use of polyelectrolyte comb copolymers results in a slurry with low viscosity. In addition, the use of polyelectrolyte comb copolymers controls the growth (e.g., size, morphology and location) of the inactive species, and thus, improves battery cycle life.
    Type: Application
    Filed: September 25, 2008
    Publication date: March 25, 2010
    Applicant: UT-BATTELLE, LLC
    Inventors: Beth L. Armstrong, Glen H. Kirby
  • Patent number: 7682528
    Abstract: An La2O3 powder and an SiO2 powder are mixed with each other, and then heated. By heating, a porous material of LaXSi6O1.5X+12 (8?X?10) as a composite oxide is produced. Subsequently, the porous material is pulverized to obtain a powder, and the powder is added to a solvent to prepare a slurry. The slurry is solidified in a magnetic field to prepare a compact. After that, the compact is sintered, and an oxide ion conductor is obtained thereby.
    Type: Grant
    Filed: September 18, 2006
    Date of Patent: March 23, 2010
    Assignee: Honda Motor Co., Ltd.
    Inventors: Yoshikatsu Higuchi, Masayuki Sugawara, Kagehisa Hamazaki, Keizo Uematsu, Susumu Nakayama
  • Publication number: 20100068628
    Abstract: An all solid-state polymer battery uses: 1) a lithium based negative electrode active material including crystal grains and crystal grain boundaries, wherein at least part of the crystal grain boundaries are exposed on a surface of the lithium-based negative electrode active material, and the area of the exposed surface of the crystal grain boundaries is 0.02 to 0.5 cm2 per square centimeter of surface; 2) a dry polymer electrolyte including a specific ethylene glycol ether, a polymer containing electron-donating oxygen atoms in the skeleton, and a lithium salt; or 3) an amorphous lithium nitride layer formed between the negative electrode and the polymer electrolyte. This reduces the resistance at the interface between the negative electrode and the polymer electrolyte, thereby providing an all solid-state polymer battery with high capacity and excellent cycle characteristics.
    Type: Application
    Filed: June 18, 2008
    Publication date: March 18, 2010
    Inventor: Tomohiro Ueda
  • Patent number: 7678504
    Abstract: A lithium secondary battery of the present invention comprises a positive electrode; a negative electrode; a separator interposed between the positive and negative electrodes; and an electrolyte on the separator, wherein the electrolyte includes a non-aqueous organic solvent, a lithium salt, and a linear polymer having P?O bonds. The electrolyte improves the swelling characteristics of lithium secondary batteries. A lithium secondary battery with the electrolyte and a method for preparing the electrolyte and battery is described.
    Type: Grant
    Filed: July 14, 2003
    Date of Patent: March 16, 2010
    Assignee: Samsung SDI Co., Ltd.
    Inventors: Jin-Young Lee, Kyoung-Hee Lee
  • Patent number: 7674559
    Abstract: A lithium secondary battery includes an electrode assembly having two electrodes and a separator interposed between the two electrodes, and a case for storing the electrode assembly, wherein the separator is formed by using a binder and a filler including a solid electrolyte having lithium ion conductivity. The lithium secondary battery has a separator and an electrolyte capable of increasing internal ion-conductivity. Also, a lithium secondary battery has a separator capable of safely preventing a short circuit between the electrodes in a possibly high temperature.
    Type: Grant
    Filed: April 24, 2006
    Date of Patent: March 9, 2010
    Assignee: Samsung SDI Co., Ltd.
    Inventors: Jae Yun Min, Won Chull Han, Jin Hee Kim
  • Patent number: 7670720
    Abstract: A solid polymer electrolyte composite for an electrochemical reaction apparatus that possesses satisfactory ion conduction properties and has excellent mechanical strength and heat resistance, is provided. The solid polymer electrolyte composite is characterized in that a solid polymer electrolyte is contained in the continuous pores of an expanded porous polytetrafluoroethylene sheet which has continuous pores and in which the inner surfaces defining the pores are covered with a functional material such as a metal oxide. An electrochemical reaction apparatus containing an electrolyte, wherein said electrochemical reaction apparatus is characterized in that the aforementioned solid polymer electrolyte composite is used as this electrolyte is also provided.
    Type: Grant
    Filed: September 22, 1998
    Date of Patent: March 2, 2010
    Assignee: W. L. Gore & Associates GmbH
    Inventors: Wolfgang Buerger, Peter Hertel, Manfred Wendl
  • Publication number: 20100047692
    Abstract: Mixture of particles comprising a non-conducting or semi-conducting nucleus covered with a hybrid conductor coating and hybrid conductor chains located between the particles of the mixture to constitute a conductivity network, that is prepared by mechanical crushing. Due to a very good conductivity of the network, a low resistivity, a very good capacity under elevated current and/or a good density of energy, these mixtures of particles are advantageously incorporated in anodes and cathodes of electrochemical generators, resulting in highly performing electrochemical systems.
    Type: Application
    Filed: July 31, 2009
    Publication date: February 25, 2010
    Applicant: HYDRO-QUEBEC
    Inventors: Karim Zaghib, Patrick Charest, Abdelbast Guerfi, Michel Perrier, Kimio Kinoshita
  • Patent number: 7662424
    Abstract: The method of making a composite particle for an electrode in accordance with the present invention comprises a granulating step of integrating a conductive auxiliary agent and a binder adapted to bind the conductive auxiliary agent and an electrode active material together with a particle made of the electrode active material while in close contact with each other in an inert gas atmosphere so as to form a composite particle for an electrode containing the electrode active material, conductive auxiliary agent, and binder. When the composite particle obtained by this method is used as a constituent of an electrode, an electrode having an excellent electrode characteristic and an electrochemical device having excellent electrochemical characteristics can be formed easily and reliably.
    Type: Grant
    Filed: August 25, 2004
    Date of Patent: February 16, 2010
    Assignee: TDK Corporation
    Inventors: Masato Kurihara, Satoshi Maruyama, Tadashi Suzuki
  • Publication number: 20100035157
    Abstract: An electrical storage device has a solid electrolyte layer; and electrode assemblies stacked with the solid electrolyte layer interposed therebetween and each having a current collector on which a plurality of electrode parts are formed. A part of the solid electrolyte layer is located between successive electrode parts in a direction perpendicular to the stacking direction on at least one of successive electrode assemblies in the stacking direction.
    Type: Application
    Filed: December 21, 2007
    Publication date: February 11, 2010
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventor: Yoshiyuki Nakamura
  • Patent number: 7641807
    Abstract: Process for the manufacture of tetraalkylammonium tetrafluoroborate-containing electrolyte compositions characterized in that said process comprises step (i): (i) mixing of at least one tetraalkylammonium halide with at least one metal tetrafluoroborate in at least one organic solvent, which is partially or completely miscible with water.
    Type: Grant
    Filed: October 31, 2003
    Date of Patent: January 5, 2010
    Assignee: Honeywell International Inc
    Inventors: Alfred Siggel, Michael Fooken, Christian Liepelt, Michael Theissen
  • Publication number: 20090317724
    Abstract: Liquid-free lithium-air cells are provided which incorporate a solid electrolyte having enhanced ionic transport and catalytic activity. The solid electrolyte is positioned between a lithium anode and an oxygen cathode, and comprises a glass-ceramic and/or a polymer-ceramic electrolyte including a dielectric additive.
    Type: Application
    Filed: June 17, 2009
    Publication date: December 24, 2009
    Applicant: UNIVERSITY OF DAYTON
    Inventors: Binod Kumar, Jitendra Kumar
  • Patent number: 7632607
    Abstract: A negative electrode for a battery has a collector, active material layer, and inorganic compound layer. The active material layer is formed on the collector. The inorganic compound layer is formed on the surface of the active material layer. The inorganic compound layer is expressed by general formula LixPTyOz or LixMOyNz. The compound composing the inorganic compound layer has lithium ion conductivity and excels in moisture resistance.
    Type: Grant
    Filed: October 14, 2005
    Date of Patent: December 15, 2009
    Assignee: Panasonic Corporation
    Inventors: Masaya Ugaji, Shinji Mino, Yasuyuki Shibano, Shuji Ito
  • Patent number: 7630116
    Abstract: An ion conductor has fine particles of an organic polymer including 20 to 80% by mass of ultra-fine particles of an inorganic compound, and an electrolytic solution impregnated into the fine particles of the organic polymer, wherein the fine particles of the organic polymer have a specific surface area measured by the BET method of 30 m2/g or more.
    Type: Grant
    Filed: January 21, 2005
    Date of Patent: December 8, 2009
    Assignee: Dainippon Ink and Chemicals, Inc.
    Inventors: Michiya Nakashima, Toshihiro Ebine, Kazunari Kawai, Naohito Saito
  • Patent number: 7618748
    Abstract: An electrical energy storage device includes a substrate having an outer surface and having a plurality of cavities communicating with the outer surface. The cavities have interior cavity surfaces. A first electrode layer is deposited at least over the interior cavity surfaces. An electrolyte separator layer is formed over the first electrode layer so as to fill the cavities and to extend over the outer surface of the planar substrate. A second electrode layer is formed over the electrolyte separator layer on the outer surface of the planar substrate.
    Type: Grant
    Filed: March 13, 2006
    Date of Patent: November 17, 2009
    Assignee: Tel Aviv University Future Technology Development L.P.
    Inventors: Menachem Nathan, Emanuel Peled, Diana Golodnitsky, Ela Strauss, Vladimir Yufit, Tania Ripenbein, Inna Schechtman, Svetlana Menkin
  • Publication number: 20090280414
    Abstract: Disclosed is an electrolyte comprising a compound having both a sulfonate group and a cyclic carbonate group. The electrolyte forms a more stable and dense SEI layer on the surface of an anode, and thus improves the capacity maintenance characteristics and lifespan characteristics of a battery. Also, disclosed is a compound represented by the following Formula 1, and a method for preparing the same by reacting 4-(hydroxyalkyl)-1,3-dioxolan-2-one with a sulfonyl halide compound: wherein each of R1 and R2 independently represents a C1˜C6 alkylene group optionally containing a C1˜C6 alkyl group or C2˜C6 alkenyl group introduced thereto; R3 is selected from the group consisting of a hydrogen atom, C1˜C20 alkyl group, C3˜C8 cyclic alkyl group, C2˜C6 alkenyl group, halo-substituted alkyl group, phenyl group and benzyl group.
    Type: Application
    Filed: September 20, 2007
    Publication date: November 12, 2009
    Inventors: Jeong Hwan Koh, Yong Joon Ha, Jin Hyun Park, Chul Haeng Lee, Young Min Lim, Jeong Ae Ahn, Dmitry Pogozhev
  • Publication number: 20090274943
    Abstract: There are provided a new crosslinked polymer electrolyte excellent in water resistance and solvent resistance, high in heat resistance, inexpensive and low in methanol permeability, and suitable for the proton conductive membrane of a fuel cell, by means of the crosslinked polymer electrolyte obtained by the following (1) or (2), and its production method. (1) A compound having two or three or more reactive groups is reacted with a polymer electrolyte. (2) A compound having two or three or more reactive groups is reacted with a polymer to obtain a crosslinked polymer and then an ion exchange group is introduced into the resultant polymer.
    Type: Application
    Filed: April 4, 2006
    Publication date: November 5, 2009
    Applicant: Sumitomo Chemical Company, Limited
    Inventor: Ken Yoshimura
  • Patent number: 7601182
    Abstract: Electrochemical active cathode layers (MoO3, FeS2) are produced on the substrate of stainless steel, aluminum, or titanium by the method of thermal vacuum condensation-solidification. This method enables formation of active cathode layer in the wide thickness range of 0.5 ?m-3.0 mm.
    Type: Grant
    Filed: July 23, 2004
    Date of Patent: October 13, 2009
    Assignee: Enerize Corporation
    Inventors: Elena Shembel, Yevgen Kalynushkin, Peter Novak, Aleksander Markevich, Aleksander Balakin
  • Patent number: 7597981
    Abstract: The present invention relates to a composite electrolyte membrane for fuel cells that has high proton conductivity and low fuel permeability even under low humidity conditions and at elevated temperatures. The membrane, comprising a cation exchange resin and acid-treated dendrimers, has great utility in large and medium fuel cells for applications in household appliances, electric vehicles, etc.
    Type: Grant
    Filed: November 30, 2005
    Date of Patent: October 6, 2009
    Assignee: Hyundai Motor Company
    Inventors: Jong Hyun Lee, Hwan Soo Shin, Hee Woo Rhee, Young Taek Kim, Min Kyu Song, Min Sung Kim
  • Publication number: 20090239153
    Abstract: A lithium ion conductive glass ceramics which solves a problem of low thermal stability of the related-art lithium ion conductive glass ceramics and which is high in lithium ion conductivity, high in thermal stability of a raw glass and easy for molding is provided. The amount of a specified component in a glass ceramics (raw glass) is limited to a specified range, and specifically, a ZrO2 component is incorporated in the range of from 0.5% to 2.5% in terms of % by mass on the oxide basis.
    Type: Application
    Filed: March 19, 2009
    Publication date: September 24, 2009
    Inventor: Yasushi Inda
  • Publication number: 20090226816
    Abstract: A solid electrolyte structure (1) for all-solid-state batteries includes a plate-like dense body (2) formed of a ceramic that includes a solid electrolyte, and a porous layer (3) formed of a ceramic that includes a solid electrolyte that is the same as or different from the solid electrolyte of the dense body (2), the porous layer (3) being integrally formed on at least one surface of the dense body (2) by firing. The solid electrolyte structure can reduce the contact resistance at the interface between the solid electrolyte and an electrode.
    Type: Application
    Filed: May 4, 2009
    Publication date: September 10, 2009
    Applicants: NGK Insulators, Ltd., Tokyo Metropolitan University
    Inventors: Toshihiro YOSHIDA, Kazuhiro Yamamoto, Kiyoshi Kanamura
  • Patent number: RE41578
    Abstract: Thin-film micro-electrochemical energy storage cells (MEESC) such as microbatteries and double-layer capacitors (DLC) are provided. The MEESC comprises two thin layer electrodes, an intermediate thin layer of a solid electrolyte and optionally, a fourth thin current collector layer; said layers being deposited in sequence on a surface of a substrate. The MEESC is characterized in that the substrate is provided with a plurality of through cavities of arbitrary shape, with high aspect ratio. By using the substrate volume, an increase in the total electrode area per volume is accomplished.
    Type: Grant
    Filed: October 3, 2007
    Date of Patent: August 24, 2010
    Assignee: Ramot At Tel-Aviv University Ltd.
    Inventors: Menachem Nathan, Emanuel Peled, Dan Haronian