The Electrolyte Is Gelled Patents (Class 429/300)
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Patent number: 12199233Abstract: A non-aqueous electrolyte solution and a lithium secondary battery including the same are disclosed herein. In some embodiments, a non-aqueous electrolyte solution includes an organic solvent, a lithium salt, and an oligomer represented by Formula 1 as a surfactant, wherein the organic solvent contains containing cyclic carbonate, dimethyl carbonate, and alkyl formate.Type: GrantFiled: August 27, 2020Date of Patent: January 14, 2025Assignee: LG Energy Solution, Ltd.Inventors: Gwang Yeon Kim, Jeong Woo Oh, Chul Haeng Lee
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Patent number: 12176483Abstract: A method for preparing a film of solid polymer electrolyte, including: (i) providing a composition including, in one or more solvents, at least one (co)polymer of at least one cyclic monomer selected from lactones and cyclic carbonates with five to eight ring members; the (co)polymer or (co)polymers having free terminal hydroxyl functions; at least one crosslinking agent, at least one ionic conductive salt; and optionally, in the case of a crosslinking agent bearing at least one photosensitive reactive function, at least one photoinitiator compound; (ii) forming a dry film from the composition, in conditions unfavourable to crosslinking of the (co)polymer or (co)polymers; and (iii) bringing the film into conditions favourable to crosslinking of the (co)polymer or (co)polymers to form the film of solid polymer electrolyte. Also disclosed is a film of solid polymer electrolyte and use thereof in an electrochemical system, in particular in a lithium battery.Type: GrantFiled: July 2, 2020Date of Patent: December 24, 2024Assignee: COMMISSARIAT A L'ENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVESInventors: Adrien Lassagne, Celine Barchasz, Lionel Picard
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Patent number: 12157676Abstract: A method for preparing a zinc manganate anode material is disclosed. The method includes the following steps: (1) preparing a solution A containing a manganese ion and a solution B containing zinc alkali; (2) dispersing an adsorption carrier into the solution B; (3) using an alkali solution as a base solution and adding the solution A, the solution B and an oxidant solution to the base solution while stirring; (4) conducting a solid-liquid separation of the materials after reaction to obtain a solid; and (5) washing, drying and calcining the solid to obtain a zinc manganate anode material.Type: GrantFiled: August 25, 2022Date of Patent: December 3, 2024Assignees: GUANGDONG BRUNP RECYCLING TECHNOLOGY CO., LTD., HUNAN BRUNP RECYCLING TECHNOLOGY CO., LTD., HUNAN BRUNP EV RECYCLING CO., LTD.Inventors: Haijun Yu, Yinghao Xie, Aixia Li, Xuemei Zhang, Changdong Li
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Patent number: 12034118Abstract: A rechargeable energy-storage device includes an anode; a cathode; a structural hydrogel disposed between the anode and the cathode, the structural hydrogel having hydrophilic segments and hydrophobic segments; and a porous carbon material disposed between the anode and the cathode. The hydrophilic segments and hydrophobic segments are uniformly distributed within the structural hydrogel.Type: GrantFiled: February 25, 2022Date of Patent: July 9, 2024Inventor: Scott M. Epstein
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Patent number: 12015123Abstract: Provided is a lithium ion secondary battery including a positive electrode which is capable of storing and releasing lithium, a negative electrode which is capable of storing and releasing lithium, and a nonaqueous electrolyte which contains lithium salts and cyclic disulfonic acid ester, in which as the nonaqueous electrolyte, a nonaqueous electrolyte containing a polymer is used, and as at least a part of the lithium salts, imide lithium salts are used. Here, the content of the cyclic sulfonic acid ester is preferably in a range of 2.0% to 5.0% by mass with respect to a total content of the nonaqueous electrolyte. Also, the proportion of the imide lithium salts is preferably in a range of 10 to 50 mol % with respect to a total amount of lithium salts in the nonaqueous electrolyte.Type: GrantFiled: October 18, 2022Date of Patent: June 18, 2024Assignee: AESC Japan Ltd.Inventors: Satoru Hirakawa, Hideaki Sasaki
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Patent number: 11990278Abstract: Provided herein are energy storage device electrode films comprising multiple active layers, and methods of forming such multiple active layer energy storage device electrode films. Each active layer may be a self-supporting active layer comprising a binder and an active material. The binder and/or active material may be the same or different as any other active layer. The active layers may be stacked to form an electrode film, and the electrode film may be laminated with a current collector to form an electrode.Type: GrantFiled: October 31, 2018Date of Patent: May 21, 2024Assignee: Tesla, Inc.Inventors: Joon Ho Shin, Hieu Minh Duong
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Patent number: 11984593Abstract: According to one embodiment, a secondary battery including a positive electrode, a negative electrode, an insulating layer, and a nonaqueous electrolyte is provided. The positive electrode includes a positive electrode active material-containing layer containing a lithium nickel cobalt manganese composite oxide. The negative electrode includes a negative electrode active material-containing layer having a first surface. The insulating layer includes a solid electrolyte layer having a second surface that is at least partly opposed to or partly in contact with the first surface and containing a Li ion conductive oxide. At least part of the second surface or the first and second surfaces includes a Mn-containing substance. An abundance ratio of Mn on the second surface is higher than that on the first surface.Type: GrantFiled: September 2, 2020Date of Patent: May 14, 2024Assignee: KABUSHIKI KAISHA TOSHIBAInventors: Keigo Hoshina, Yasunobu Yamashita, Shinsuke Matsuno
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Patent number: 11955636Abstract: An electrochemical device includes a cathode comprising a first cathode component of lithium and SexSy; and a second cathode component of an alkali metal and/or alkaline earth metal sulfur and/or selenide, different from the first cathode component; an initial discharge product of a polyselenide and/or polysulfide anion charge compensated by an alkali metal and/or alkaline earth metal cation; an anode; a porous separator; and a non-aqueous electrolyte with one or more lithium salts, and one or more solvents; wherein the electrochemical device is a lithium sulfur and/or lithium selenide battery.Type: GrantFiled: September 17, 2021Date of Patent: April 9, 2024Assignee: UCHICAGO ARGONNE, LLCInventors: Matthew Li, Khalil Amine, Jun Lu
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Patent number: 11881554Abstract: A polymer electrolyte is provided, which includes a polymer including an ethylene oxide unit; and a lithium salt, wherein the terminal of the polymer is substituted with one to four functional groups selected from the group consisting of a nitrogen compound functional group and phosphorus compound functional group, and the terminal of the polymer and the one to four functional groups are linked by one selected from the group consisting of a C2 to C20 alkylene linker, a C2 to C20 ether linker, and a C2 to C20 amine linker. A method for preparing the same is also provided.Type: GrantFiled: July 24, 2019Date of Patent: January 23, 2024Assignees: LG ENERGY SOLUTION, LTD., POSTECH ACADEMY-INDUSTRY FOUNDATIONInventors: Daeil Kim, Moon Jeong Park, Jonghyun Chae, Ha Young Jung, Suhwan Kim, Sung Chul Lim, Jihoon Ahn
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Patent number: 11848417Abstract: Ionic liquid N-methyl-N-propyl-pyrrolidinium bis(fluorosulfonyl)imide (Pyr13FSI) was introduced into a hybrid network to obtain a series of gel polymer electrolytes (GPEs). Mechanical and electrochemical properties of the GPEs were tuned through controlling the network structure and ionic liquid contents, and ionic conductivity higher than 1 mS cm?1 at room temperature was achieved. The newly developed GPEs are flame-retardant and show excellent thermal and electrochemical stability as well as ultra-stability with lithium metal anode. Symmetrical lithium cells with the GPEs exhibit a stable cycling over 6800 h at a current density of 0.1 mA cm?2 and stable lithium stripping-plating at 1 mA cm?2, the highest current density reported for ionic liquid-based GPEs. Moreover, Li/LiFePO4 batteries with the obtained GPEs exhibit desirable cycling stability and rate performance over a wide temperature range from 0° C. to 90° C.Type: GrantFiled: May 2, 2021Date of Patent: December 19, 2023Assignee: DREXEL UNIVERSITYInventors: Xiaowei Li, Yongwei Zheng, Christopher Li
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Patent number: 11817576Abstract: In one implementation, an integrated processing tool for the deposition and processing of lithium metal in energy storage devices. The integrated processing tool may be a web tool. The integrated processing tool may comprises a reel-to-reel system for transporting a continuous sheet of material through the following chambers: a chamber for depositing a thin film of lithium metal on the continuous sheet of material and a chamber for depositing a protective film on the surface of the thin film of lithium metal. The chamber for depositing a thin film of lithium metal may include a PVD system, such as an electron-beam evaporator, a thin film transfer system, or a slot-die deposition system. The chamber for depositing a protective film on the lithium metal film may include a chamber for depositing an interleaf film or a chamber for depositing a lithium-ion conducting polymer on the lithium metal film.Type: GrantFiled: February 24, 2021Date of Patent: November 14, 2023Assignee: APPLIED MATERIALS, INC.Inventors: Subramanya P. Herle, Dieter Haas
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Patent number: 11631892Abstract: The present invention is directed to aqueous solid polymer electrolytes that comprise a lithium salt and battery cells comprising the same. The present invention is also directed to methods of making the electrolytes and methods of using the electrolytes in batteries and other electrochemical technologies.Type: GrantFiled: January 7, 2019Date of Patent: April 18, 2023Assignees: University of Maryland, College Park, The United States of America as Represented by the Secretary of the ArmyInventors: Matthew D. Widstrom, Peter Kofinas, Arthur V. Cresce, Kang Xu
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Patent number: 11618716Abstract: A manufacturing method of a dielectric ceramic composition includes attaching a reactive functional group to a surface of a base material powder particle of a perovskite structure.Type: GrantFiled: March 31, 2020Date of Patent: April 4, 2023Assignee: SAMSUNG ELECTRO-MECHANICS CO., LTD.Inventors: Chang Geon Lee, Hae Suk Chung, Yoon Soo Park, Dong Jun Jung, Yun Jung Park
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Patent number: 11611066Abstract: A method for preparing a sulfur-carbon composite including: (a) stirring a porous carbon material in a solvent mixture including a carbonate-based compound and a volatile solvent and then drying; and (b) mixing the dried porous carbon material with sulfur and then depositing the sulfur in and on the porous carbon material by a heat melting method. A method for preparing a sulfur-carbon composite including: (a) mixing and stirring a porous carbon material and sulfur in a solvent mixture including a carbonate-based compound and a volatile solvent and then drying; and (b) depositing the sulfur in and on the porous carbon material by a heat melting method. In the sulfur-carbon composite, sulfur present in and on the porous carbon material, a proportion of ?-monoclinic sulfur phase to sulfur contained in the sulfur-carbon composite is 90% or more based on a total molar ratio of sulfur.Type: GrantFiled: October 29, 2018Date of Patent: March 21, 2023Assignee: LG ENERGY SOLUTION, LTD.Inventors: Soohyun Kim, Suenghoon Han, Kwonnam Sohn, Doo Kyung Yang
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Patent number: 11581578Abstract: The present invention provides a composition for a gel polymer electrolyte, the composition including a first oligomer represented by Formula 1, a second oligomer including a first repeating unit represented by Formula 2a derived from a styrene monomer, a polymerization initiator, a lithium salt, and a non-aqueous solvent. The present invention also provides a gel polymer electrolyte prepared using the same, and a lithium secondary battery.Type: GrantFiled: November 30, 2018Date of Patent: February 14, 2023Assignee: LG ENERGY SOLUTION, LTD.Inventors: Jeong Woo Oh, Kyoung Ho Ahn, Chul Haeng Lee, Jung Hoon Lee
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Patent number: 11557757Abstract: Described herein are improved composite anodes and lithium-ion batteries made therefrom. Further described are methods of making and using the improved anodes and batteries. In general, the anodes include a porous composite having a plurality of agglomerated nanocomposites. At least one of the plurality of agglomerated nanocomposites is formed from a dendritic particle, which is a three-dimensional, randomly-ordered assembly of nanoparticles of an electrically conducting material and a plurality of discrete non-porous nanoparticles of a non-carbon Group 4A element or mixture thereof disposed on a surface of the dendritic particle. At least one nanocomposite of the plurality of agglomerated nanocomposites has at least a portion of its dendritic particle in electrical communication with at least a portion of a dendritic particle of an adjacent nanocomposite in the plurality of agglomerated nanocomposites.Type: GrantFiled: April 20, 2020Date of Patent: January 17, 2023Assignees: SILA NANOTECHNOLOGIES, INC., GEORGIA TECH RESEARCH CORPORATIONInventors: Gleb Yushin, Oleksandr Magazynskyy, Patrick Dixon, Benjamin Hertzberg
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Patent number: 11557793Abstract: A flexible all-solid-state lithium-ion secondary battery is prepared by placing a positive electrode and a negative electrode or optionally a separator of the lithium-ion secondary battery in a gelable system in which a solid electrolyte has not yet formed by a way of infiltration or coating, so that the surfaces and the interiors of the positive and negative electrodes are infiltrated by the gelable system, which also fills the voids inside the positive and negative electrodes. When the gelable system is solidified to form the solid electrolyte, it can form the solid electrolyte in situ on the surfaces and interiors of the positive and negative electrodes. The lithium-ion secondary battery prepared by the method can form a conductive network inside the entire battery, which can not only extremely reduce the internal resistance of the lithium-ion secondary battery, thereby improving the conductivity and rate capability, but also solve the potential safety hazard problem caused by liquid electrolytes.Type: GrantFiled: November 26, 2019Date of Patent: January 17, 2023Assignee: BEIJING NORMAL UNIVERSITYInventors: Lin Li, Fengquan Liu, Jianjun Zhou
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Patent number: 11515540Abstract: A graphene foam-protected selenium cathode layer for an alkali metal-selenium cell, comprising: (a) a sheet or a roll of solid graphene foam composed of multiple pores and pore walls containing graphene sheets, wherein the graphene sheets contain a pristine graphene material having less than 0.01% by weight of non-carbon elements or a non-pristine graphene material having 0.01% to 20% by weight of non-carbon elements, wherein said non-pristine graphene is selected from graphene oxide, reduced graphene oxide, graphene fluoride, graphene chloride, graphene bromide, graphene iodide, hydrogenated graphene, nitrogenated graphene, boron-doped graphene, nitrogen-doped graphene, chemically functionalized graphene, or a combination thereof, wherein the graphene sheets are interconnected or chemically merged together without an adhesive resin; and (b) selenium coating or particles residing in the pores or bonded to the pore walls of the solid graphene foam.Type: GrantFiled: April 9, 2018Date of Patent: November 29, 2022Assignee: Global Graphene Group, Inc.Inventors: Hui He, Aruna Zhamu, Bor Z. Jang
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Patent number: 11515517Abstract: A positive electrode for a nonaqueous secondary battery including an active material layer which has sufficient electron conductivity with a low ratio of a conductive additive is provided. A positive electrode for a nonaqueous secondary battery including an active material layer which is highly filled with an active material, id est, including the active material and a low ratio of a conductive additive. The active material layer includes a plurality of particles of an active material with a layered rock salt structure, graphene that is in surface contact with the plurality of particles of the active material, and a binder.Type: GrantFiled: December 11, 2019Date of Patent: November 29, 2022Assignee: SEMICONDUCTOR ENERGY LABORATORY CO., LTD.Inventors: Takahiro Kawakami, Masaki Yamakaji, Mako Motoyoshi, Rika Yatabe
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Patent number: 11482711Abstract: A lithium battery cell with an internal fuse component without any welded tabs present for conductance from the internal portion thereof externally to power a subject device is provided. Disclosed herein are lithium ion (liquid electrolyte) battery configurations utilizing thin metallized film current collectors as conducting tabs that provide full electrical conductivity from one pole to another throughout the internal portions of the battery with sufficient space for liquid electrolyte flow as well. Such thin metallized film current collectors thus provide both safety features with low electrical charge runaway potential, low internal resistance, and high thermal conductivity with a simplified manner of providing external electrical conductivity simultaneously.Type: GrantFiled: February 4, 2021Date of Patent: October 25, 2022Assignee: Soteria Battery Innovation Group, Inc.Inventors: Carl C. Hu, Brian G. Morin
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Patent number: 11374212Abstract: A positive electrode for a lithium secondary battery includes a positive electrode current collector; a lower positive electrode active material layer disposed on at least one surface of the positive electrode current collector; and an upper positive electrode active material layer disposed on the lower positive electrode active material layer, wherein the lower positive electrode active material layer includes 90% or more of a sphere-type carbonaceous conductive material as a conductive material, the upper positive electrode active material layer includes 90% or more of a needle-type carbonaceous conductive material as a conductive material, and the content of the conductive material contained in the lower positive electrode active material layer is larger than the content of the conductive material contained in the upper positive electrode active material layer.Type: GrantFiled: June 26, 2018Date of Patent: June 28, 2022Inventors: Joo-Yul Baek, Jong-Heon Seol, Ye-Lin Kim, Je-Young Kim, Jung-Keun Yoo
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Patent number: 11336110Abstract: A rechargeable battery using a solution of an aluminum salt as an electrolyte is disclosed, as well as methods of making the battery and methods of using the battery.Type: GrantFiled: March 2, 2020Date of Patent: May 17, 2022Assignee: Everon24, Inc.Inventors: Rahul Mukherjee, Nikhil A. Koratkar
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Patent number: 11309581Abstract: An air stable solid garnet composition, comprising: a bulk composition and a surface protonated composition on at least a portion of the bulk composition as defined herein, and the protonated surface composition is present on at least a portion of the exterior surface of the bulk composition at a thickness of from 0.1 to 10,000 nm. Also disclosed is a composite electrolyte structure, and methods of making and using the composition and the composite electrolyte structure.Type: GrantFiled: January 7, 2019Date of Patent: April 19, 2022Assignee: Corning IncorporatedInventors: Michael Edward Badding, Xinyuan Liu, Yanxia Ann Lu
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Patent number: 11239466Abstract: Presented in the present disclosure are nanocomposites and batteries which are resistant to thermal runaway and may be used as cathode materials in batteries that tolerate operation at high temperatures. The nanocomposites include a nonconducting polymer and a carbon filler which includes a plurality of ultrathin sheets of a porous carbon material. The nonconducting polymer and carbon filler act in synergy to provide improved thermal stability, increased surface area, and enhanced electrochemical properties to the nanocomposite. For example, a battery that includes the nanocomposite as a cathode material was shown to have an enhanced performance and stability over a broad temperature range from room temperature to high temperatures (for example, of 100° C. or more). These batteries fill an important need by providing a safe and reliable power source for devices that are operated at high temperatures such as the downhole equipment used in the oil industry.Type: GrantFiled: January 9, 2018Date of Patent: February 1, 2022Assignee: Saudi Arabian Oil CompanyInventors: Muhammad Arsalan, Edreese Alsharaeh, Faheem Ahmed, Yazeed Fahad AlDosari
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Patent number: 11183712Abstract: An energy storage device comprising a first electrode and a second electrode, a separator between the first electrode and the second electrode, and an electrolyte in contact with the first electrode, the second electrode, and the separator, wherein the electrolyte comprises at least one of a fluorine-containing cyclic carbonate, a fluorine-containing linear carbonate, and a fluoroether. The electrolyte may be substantially free of non-fluorine containing cyclic carbonates.Type: GrantFiled: September 18, 2019Date of Patent: November 23, 2021Assignee: Enevate CorporationInventors: Heidi Leighette Anderson, Benjamin Yong Park, Hong Gan, Sung Won Choi
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Patent number: 11139116Abstract: A gel electrolytic capacitor that can further improve withstand voltage is provided. The gel electrolytic capacitor includes: an anode foil; a cathode foil; and a gel electrolyte disposed between the anode foil and the cathode foil. The gel electrolyte consists of a polymer having three-dimensional (3D) network structure and an electrolyte solution held in said polymer. The polymer is formed by polymerizing 2-hydroxyethyl methacrylate or methacrylic acid. The electrolyte solution includes amines or quaternary cyclic amidinium.Type: GrantFiled: September 25, 2018Date of Patent: October 5, 2021Assignee: Nippon Chemi-Con CorporationInventor: Junichi Kawakami
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Patent number: 11108041Abstract: Provided are a nonaqueous electrolyte energy storage device having high capacity retention ratio after charge-discharge cycles at a high temperature of about 45° C., and a method for producing such a nonaqueous electrolyte energy storage device. One aspect of the present invention is a nonaqueous electrolyte energy storage device including a positive electrode having a positive composite that contains a phosphorus atom and a lithium-transition metal composite oxide containing manganese, wherein, in a spectrum of the positive composite by X-ray photoelectron spectroscopy, a peak position for P2p is observed at 134.7 eV or less. Another aspect of the present invention is a method for producing a nonaqueous electrolyte energy storage device, the method including forming a positive electrode using a positive composite paste that contains a phosphorus oxo acid and a lithium-transition metal composite oxide containing manganese.Type: GrantFiled: December 7, 2017Date of Patent: August 31, 2021Assignee: GS Yuasa International Ltd.Inventors: Akifumi Kikuchi, Ryota Kido
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Patent number: 11056691Abstract: The present invention relates to an electrochemically active Si-carbon composite particulate material, wherein silicon nanoparticles are entrapped in a carbon matrix material based on at least micronic graphite particles, reduced graphene platelets and amorphous carbon.Type: GrantFiled: July 19, 2016Date of Patent: July 6, 2021Assignees: COMMISSARIAT A L'ENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES, UMICOREInventors: Jean-Sebastien Bridel, Tim Van Rompaey, Vincent Caldeira, Agnes Brun, Jean-Francois Colin, Cedric Haon
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Patent number: 11050084Abstract: Described herein are materials for use in electrolytes that provide a number of desirable characteristics when implemented within batteries, such as high stability during battery cycling up to high temperatures, high voltages, high discharge capacity, high coulombic efficiency, and excellent retention of discharge capacity and coulombic efficiency over several cycles of charging and discharging. In some embodiments, a high voltage electrolyte includes a base electrolyte and a set of additive compounds, which impart these desirable performance characteristics.Type: GrantFiled: December 1, 2015Date of Patent: June 29, 2021Assignee: WILDCAT DISCOVERY TECHNOLOGIES, INCInventors: Gang Cheng, Bin Li, Steven Kaye
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Patent number: 11043679Abstract: An electrode for use in an all-iron redox flow battery is provided. In one example, the electrode may include a plastic mesh; and a coating on the plastic mesh. The coating may be a hydrophilic coating or a conductive coating and the electrode may have an electrode reaction potential is less than 0.8V. Further, a method of manufacturing a coated plastic mesh electrode for use in an all-iron redox flow battery is provided. In one example method, the steps include fabricating a plastic mesh, treating the plastic mesh by applying a solvent treatment or a plasma treatment or a mechanical abrasion treatment; coating the plastic mesh with a material selected from: carbon inks, metal oxides, and hydrophilic polymers.Type: GrantFiled: December 30, 2015Date of Patent: June 22, 2021Assignee: ESS TECH, INC.Inventors: Craig E. Evans, Yang Song, Jeffrey Chen
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Patent number: 11018330Abstract: A cathode active material for magnesium secondary batteries contains a composite oxide represented by the formula MgxMyO2, where M is at least one selected from the group consisting of Ni, Co, Mn, Ti, V, Cr, Fe, Cu, and Mo; 1.0<x, and y<1.0.Type: GrantFiled: February 12, 2019Date of Patent: May 25, 2021Assignee: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.Inventors: Toshiro Kume, Go Tei
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Patent number: 10950861Abstract: Provided is an aluminum secondary battery comprising an optional anode current collector, an anode, a cathode, and an electrolyte in ionic contact with the anode and the cathode, wherein the anode contains aluminum metal or an aluminum metal alloy and the cathode comprises a layer of graphite or carbon material having expanded inter-graphene planar spaces with an inter-planar spacing d002 from 0.43 nm to 2.0 nm as measured by X-ray diffraction. Such an aluminum battery delivers a high energy density, high power density, and long cycle life.Type: GrantFiled: February 13, 2017Date of Patent: March 16, 2021Assignee: Global Graphene Group, Inc.Inventors: Aruna Zhamu, Bor Z Jang
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Patent number: 10950897Abstract: Provided is a method of preparing an alkali-sulfur cell comprising: (a) combining a quantity of an active material, a quantity of an electrolyte containing an alkali salt dissolved in a solvent, and a conductive additive to form a deformable and electrically conductive electrode material, wherein the conductive additive, containing conductive filaments, forms a 3D network of electron-conducting pathways; (b) forming the electrode material into a quasi-solid electrode (the first electrode), wherein the forming step includes deforming the electrode material into an electrode shape without interrupting the 3D network of electron-conducting pathways such that the electrode maintains an electrical conductivity no less than 10?6 S/cm; (c) forming a second electrode (the second electrode may be a quasi-solid electrode as well); and (d) forming an alkali-sulfur cell by combining the quasi-solid electrode and the second electrode having an ion-conducting separator disposed between the two electrodes.Type: GrantFiled: October 15, 2019Date of Patent: March 16, 2021Assignee: Global Graphene Group, Inc.Inventors: Aruna Zhamu, Bor Z. Jang
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Patent number: 10938035Abstract: The positive electrode active material layer includes a plurality of particles of a positive electrode active material and a reaction mixture where reduced graphene oxide is bonded to a polymer having a functional group as a side chain. The reduced graphene oxide has a sheet-like shape and high conductivity and thus functions as a conductive additive by being in contact with the plurality of particles of the positive electrode active material. The reaction mixture serves as an excellent binder since the reduced graphene oxide is bonded to the polymer. Therefore, even a small amount of the reaction mixture where the reduced graphene oxide is covalently bonded to the polymer excellently serves as a conductive additive and a binder.Type: GrantFiled: June 6, 2018Date of Patent: March 2, 2021Assignee: Semiconductor Energy Laboratory Co., Ltd.Inventors: Masaki Yamakaji, Kuniharu Nomoto
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Patent number: 10916811Abstract: Electrolytes, anode material particles and methods are provided for improving performance and enhancing the safety of lithium ion batteries. Electrolytes may comprise ionic liquid(s) as additives which protect the anode material particles and possibly bind thereto; and/or may comprise a large portion of fluoroethylene carbonate (FEC) and/or vinylene carbonate (VC) as the cyclic carbonate component, and possibly ethyl acetate (EA) and/or ethyl methyl carbonate (EMC) as the linear component; and/or may comprise composite electrolytes having solid electrolyte particles coated by flexible ionic conductive material. Ionic liquid may be used to pre-lithiate in situ the anode material particles. Disclosed electrolytes improve lithium ion conductivity, prevent electrolyte decomposition and/or prevents lithium metallization on the surface of the anode.Type: GrantFiled: February 6, 2019Date of Patent: February 9, 2021Assignee: STOREDOT LTD.Inventors: Doron Burshtain, Daniel Aronov, Eran Sella
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Patent number: 10903466Abstract: One embodiment of the invention is an alkali metal-selenium battery comprising an anode, a selenium cathode, an electrolyte, an electronically insulating porous separator, and an electronically conducting graphene separator layer comprising a solid graphene foam, paper or fabric that is permeable to lithium ions or sodium ions but is substantially non-permeable to selenium or metal selenide, wherein the graphene separator layer is disposed between the selenium cathode layer and the electronically insulating porous separator layer and the graphene separator layer contains pristine graphene sheets or non-pristine graphene sheets having 0.01% to 20% by weight of non-carbon elements, wherein the non-pristine graphene is selected from graphene oxide, reduced graphene oxide, graphene fluoride, graphene chloride, graphene bromide, graphene iodide, hydrogenated graphene, nitrogenated graphene, boron-doped graphene, nitrogen-doped graphene, chemically functionalized graphene, or a combination thereof.Type: GrantFiled: May 10, 2018Date of Patent: January 26, 2021Assignee: Global Graphene Group, Inc.Inventors: Hui He, Aruna Zhamu, Bor Z. Jang
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Patent number: 10886536Abstract: One embodiment of the invention is method of inhibiting the shuttle effect by preventing migration of selenium or metal selenide ions from a cathode to an anode of an alkali metal-selenium battery, the method comprising: (a) combining an anode active material layer, a cathode active material layer, an electrically insulating porous separator disposed between the anode active material layer and the cathode active material layer, and electrolyte to form an alkali metal-selenium battery cell, and (b) implementing a porous trapping layer, having a thickness from 5 nm to 100 ?m, between the cathode active material layer and the electrically insulating porous separator to trap selenium or metal selenide ions that are dissolved in the electrolyte from the cathode active material layer. Such a method enables the formation of an alkali metal-selenium battery exhibiting a long cycle life.Type: GrantFiled: May 10, 2018Date of Patent: January 5, 2021Assignee: Global Graphene Group, Inc.Inventors: Hui He, Aruna Zhamu, Bor Z. Jang
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Patent number: 10886531Abstract: Provided is a method for producing a negative electrode for an electric storage device, the method comprising the steps of preparing a negative electrode composition comprising a negative electrode active material that reversibly carries a sodium ion, metal sodium, and a liquid dispersion medium for dispersing them; allowing a negative electrode current collector to hold the negative electrode composition; evaporating at least part of the liquid dispersion medium from the negative electrode composition held by the negative electrode current collector, thereby giving a negative electrode precursor comprising the negative electrode active material, the metal sodium, and the negative electrode current collector; and bringing the negative electrode precursor into contact with an electrolyte having sodium ion conductivity, thereby doping the negative electrode active material with sodium eluted from the metal sodium.Type: GrantFiled: November 12, 2015Date of Patent: January 5, 2021Assignees: Sumitomo Electric Industries, Ltd., Nippon Soda Co., Ltd.Inventors: Koji Nitta, Shoichiro Sakai, Atsushi Fukunaga, Eiko Imazaki, Koma Numata, Hideaki Ito, Hitoshi Kobayashi, Toshiaki Yamashita, Shinichi Maruyama
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Patent number: 10800679Abstract: Provided is an electrode including conductive particles, which sediment under gravitational force and a liquid fluidizing medium flowing through the electrode, in which the conductive particles are suspended and optionally further including conductive particles, which do not sediment under gravitational force when the fluidizing medium flows in the electrode. Further provided are electrochemical devices and energy storage systems including the electrode.Type: GrantFiled: July 10, 2017Date of Patent: October 13, 2020Assignee: Technion Research and Development Foundation LimitedInventors: Hagai Cohen, Ilya Loiferman, Matthew Suss
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Patent number: 10790541Abstract: The present invention relates to a composition for a gel polymer electrolyte, in which liquid injection characteristics at room temperature and in an oxygen atmosphere are improved by including a non-fluoride oxygen scavenger as well as a polymerizable oligomer having a polymerizable substituent, and a lithium secondary battery in which capacity retention with cycles is excellent by including a gel polymer electrolyte which is formed by using the composition.Type: GrantFiled: July 23, 2018Date of Patent: September 29, 2020Assignee: LG Chem, Ltd.Inventors: Jeong Woo Oh, Kyoung Ho Ahn, Chul Haeng Lee
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Patent number: 10686219Abstract: A lithium cell is provided having an anode, a cathode, and an electrolyte gel which is located at least between the anode and the cathode and contains a lithium ion conducting salt solution. The electrolyte gel contains fibers which can be crosslinked using the lithium ion conducting salt solution and which have a surface tension of at least 30 mN/m. The lithium cell has an increased mechanical and thermal stability.Type: GrantFiled: October 14, 2016Date of Patent: June 16, 2020Assignee: Bayerische Motoren Werke AktiengesellschaftInventors: Nikolaos Tsiouvaras, Hideki Ogihara, Thomas Woehrle
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Patent number: 10454105Abstract: An electrode for an energy accumulator comprises a substrate, an active anode layer having an active anode material, the active anode material being at least partially a lithium, a lithium alloy and/or a lithium intercalation material, at least one lithium-ion-conducting layer having a material composition which gradually changes over a layer thickness and has at least one lithium-ion-conducting component. A method for forming an electrode for an energy accumulator, and a lithium-ion battery comprising an electrode are also disclosed.Type: GrantFiled: August 18, 2015Date of Patent: October 22, 2019Assignee: Robert Bosch GmbHInventors: Martin Tenzer, Thomas Wöhrle, Calin Iulius Wurm
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Patent number: 10446328Abstract: An ultracapacitor that comprises a first and second electrochemical cell that are connected in parallel is provided. The cells are define by a first electrode that contains a current collector having opposing sides coated with a carbonaceous material, a second electrode that contains a current collector having opposing sides coated with a carbonaceous material, and a separator positioned between the first electrode and the second electrode. The second cell is by the second electrode, a third electrode that contains a current collector having opposing sides coated with a carbonaceous material, and a separator positioned between the second electrode and the third electrode. The ultracapacitor also contains a nonaqueous electrolyte that is in ionic contact with the electrodes and contains a nonaqueous solvent and an ionic liquid. A package encloses the first cell, the second cell, and the nonaqueous electrolyte.Type: GrantFiled: May 18, 2017Date of Patent: October 15, 2019Assignee: AVX CorporationInventors: Jonathan Robert Knopsnyder, Shawn Hansen, Andrew P. Ritter
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Patent number: 10409130Abstract: Methods of manufacturing electrochromic windows are described. Insulated glass units (IGU's) are protected, e.g. during handling and shipping, by a protective bumper. The bumper can be custom made using IGU dimension data received from the IGU fabrication tool. The bumper may be made of environmentally friendly materials. Laser isolation configurations and related methods of patterning and/or configuring an electrochromic device on a substrate are described. Edge deletion is used to ensure a good seal between spacer and glass in an IGU and thus better protection of an electrochromic device sealed in the IGU. Configurations for protecting the electrochromic device edge in the primary seal and maximizing viewable area in an electrochromic pane of an IGU are also described.Type: GrantFiled: March 23, 2018Date of Patent: September 10, 2019Assignee: View, Inc.Inventors: Ronald M. Parker, Robert T. Rozbicki, Yashraj Bhatnagar, Abhishek Anant Dixit, Anshu A. Pradhan
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Patent number: 10347917Abstract: A method for manufacturing a positive active material for an all-solid Lithium-Sulfur battery includes preparing a lithium sulfide solution by dissolving lithium sulfide in anhydrous ethanol. A mixture is prepared by mixing a carbon fiber to the lithium sulfide solution. A lithium sulfide-carbon fiber composite is prepared by drying the mixture of the carbon fiber and the lithium sulfide solution to deposit the lithium sulfide on a surface of the carbon fiber. The lithium sulfide-carbon fiber composite is heated at 400 to 600° C.Type: GrantFiled: December 11, 2015Date of Patent: July 9, 2019Assignees: Hyundai Motor Company, Industry-University Cooperation Foundation Hanyang UniversityInventors: Kyoung Jin Jeong, Min Yong Eom, Chan Hwi Park, Dong Wook Shin
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Patent number: 10170743Abstract: A separator has: a substrate including a porous film; and a surface layer which is provided on at least one surface of the substrate, which includes a vinylidene fluoride-tetrafluoroethylene-hexafluoropropylene copolymer, and which has a plurality of minute pores.Type: GrantFiled: April 2, 2012Date of Patent: January 1, 2019Assignee: Murata Manufacturing Co., Ltd.Inventor: Moriaki Okuno
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Patent number: 9780410Abstract: A nonaqueous liquid electrolyte for an energy storage device that utilizes at least one of an oxidation reaction and a reduction reaction of magnesium, the nonaqueous liquid electrolyte includes an ether solvent, magnesium halide serving as an electrolyte, and aluminum halide serving as an additive, the magnesium halide and the aluminum halide being dissolved in the ether solvent.Type: GrantFiled: October 31, 2014Date of Patent: October 3, 2017Assignee: AISIN SEIKI KABUSHIKI KAISHAInventors: Tsukasa Yamaguchi, Takeshi Kamizono, Gang Xie
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Patent number: 9755266Abstract: Disclosed herein is a cable-type secondary battery having a horizontal cross section of a predetermined shape and extending longitudinally, comprising: a core for supplying lithium ions, which comprises an electrolyte; an inner electrode, comprising an open-structured inner current collector surrounding the outer surface of the core for supplying lithium ions, an inner electrode active material layer formed on the surface of the inner current collector, and a first electrolyte-absorbing layer formed on the outer surface of the inner electrode active material layer; a separation layer surrounding the outer surface of the inner electrode to prevent a short circuit between electrodes; a second electrolyte-absorbing layer formed on the surface of the separator; and an outer electrode surrounding the outer surface of the second electrolyte-absorbing layer and comprising an outer electrode active material layer and an outer current collector.Type: GrantFiled: May 7, 2015Date of Patent: September 5, 2017Assignee: LG Chem, Ltd.Inventors: Yo-Han Kwon, Sang-Wook Woo, Hye-Ran Jung, Je-Young Kim, In-Chul Kim
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Patent number: 9735410Abstract: This invention provides a multi-layer article comprising a first electrode material, a second electrode material, and a porous separator disposed between and in contact with the first and the second electrode materials, wherein the porous separator comprises a nonwoven consisting essentially of a plurality of fibers of a fully aromatic polyimide. Also provided is a method for preparing the multi-layer article, and an electrochemical cell employing the same. A multi-layer article comprising a polyimide nonwoven with enhanced properties is also provided.Type: GrantFiled: November 5, 2014Date of Patent: August 15, 2017Assignee: E I DU PONT DE NEMOURS AND COMPANYInventors: Pankaj Arora, Natalia V Levit
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Patent number: 9698448Abstract: An electrochemical cell includes a high voltage cathode configured to operate at 1.5 volts or greater; an anode including Mg0; and an electrolyte including an ether solvent and a magnesium salt; wherein: a concentration of the magnesium salt in the ether is 1 M or greater.Type: GrantFiled: April 20, 2015Date of Patent: July 4, 2017Assignee: UCHICAGO ARGONNE, LLCInventors: Anthony K. Burrell, Niya Sa, Danielle Lee Proffit, Albert Lipson, Chen Liao, John T. Vaughey, Brian J. Ingram