Patents by Inventor Igor Kovalev

Igor Kovalev has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20120082901
    Abstract: Li-based anodes for use in an electric current producing cells having long life time and high capacity are provided. In certain embodiments, the Li-based anode comprises at least one anode active Li-containing compound and a composition comprising at least one polymer, at least one ionic liquid, and optionally at least one lithium salt. The composition may be located between the at least one Li-containing compound and the catholyte used in the electric current producing cell. In some embodiments, the at least one polymer may be incompatible with the catholyte. This configuration of components may lead to separation between the lithium active material of the anode and the catholyte. Processes for preparing the Li-based anode and to electric current producing cells comprising such an anode are also provided.
    Type: Application
    Filed: September 30, 2011
    Publication date: April 5, 2012
    Applicants: BASF SE, Sion Power Corporation
    Inventors: Rudiger Schmidt, Daher Michael Badine, Helmut Moehwald, Igor Kovalev, Yuriy V. Mikhaylik
  • Publication number: 20120048729
    Abstract: Articles, systems, and methods related to the configuration of electrically non-conductive materials and related components in electrochemical cells are generally described. Some inventive electrochemical cell configurations include an electrically non-conductive material (e.g., as part of the electrolyte) that is configured to wrap around the edge of an electrode to prevent short circuiting of the electrochemical cell. In some embodiments, the electrically non-conductive material layer can be arranged such that it includes first and second portions (one on either side of an electrode) as well as a third portion adjacent the edge of the electrode that directly connects (and, in some cases, is substantially continuous with) the first and second portions. The electrically non-conductive material layer can be relatively thin while maintaining relatively high electrical insulation between the anode and the cathode, allowing one to produce an electrochemical cell with a relatively low mass and/or volume.
    Type: Application
    Filed: August 24, 2011
    Publication date: March 1, 2012
    Applicant: Sion Power Corporation
    Inventors: Yuriy V. Mikhaylik, John D. Affinito, Igor Kovalev, Riley Oaks Schock
  • Publication number: 20120052397
    Abstract: 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: Application
    Filed: August 24, 2011
    Publication date: March 1, 2012
    Applicants: BASF SE, Sion Power Corporation
    Inventors: Yuriy V. Mikhaylik, Igor Kovalev, John D. Affinito, Helmut Moehwald, Rudiger Schmidt, Anna Cristadoro, Ingrid Haupt, Raimund Pietruschka
  • Publication number: 20120052339
    Abstract: 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. 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. In some embodiments, the electrochemical cell (e.g.
    Type: Application
    Filed: August 24, 2011
    Publication date: March 1, 2012
    Applicants: BASF SE, Sion Power Corporation
    Inventors: Yuriy V. Mikhaylik, Igor Kovalev, Helmut Moehwald, Rudiger Schmidt
  • Publication number: 20110076560
    Abstract: The present invention relates to the use of porous structures comprising sulfur in electrochemical cells. Such materials may be useful, for example, in forming one or more electrodes in an electrochemical cell. For example, the systems and methods described herein may comprise the use of an electrode comprising a conductive porous support structure and a plurality of particles comprising sulfur (e.g., as an active species) substantially contained within the pores of the support structure. The inventors have unexpectedly discovered that, in some embodiments, the sizes of the pores within the porous support structure and/or the sizes of the particles within the pores can be tailored such that the contact between the electrolyte and the sulfur is enhanced, while the electrical conductivity and structural integrity of the electrode are maintained at sufficiently high levels to allow for effective operation of the cell.
    Type: Application
    Filed: August 24, 2010
    Publication date: March 31, 2011
    Applicant: Sion Power Corporation
    Inventors: Chariclea Scordilis-Kelley, Yuriy V. Mikhaylik, Igor Kovalev, Vladimir Oleshko, Christopher T.S. Campbell, John D. Affinito
  • Publication number: 20110068001
    Abstract: Electrochemical cells, and more specifically, release systems for the fabrication of electrochemical cells are described. In particular, release layer arrangements, assemblies, methods and compositions that facilitate the fabrication of electrochemical cell components, such as electrodes, are presented. In some embodiments, methods of fabricating an electrode involve the use of a release layer to separate portions of the electrode from a carrier substrate on which the electrode was fabricated. For example, an intermediate electrode assembly may include, in sequence, an electroactive material layer, a current collector layer, a release layer, and a carrier substrate. The carrier substrate can facilitate handling of the electrode during fabrication and/or assembly, but may be released from the electrode prior to commercial use.
    Type: Application
    Filed: August 24, 2010
    Publication date: March 24, 2011
    Applicant: Sion Power Corporation
    Inventors: John D. Affinito, John A. Martens, Ang Xiao, Christopher T.S. Campbell, Yuriy V. Mikhaylik, Igor Kovalev, Ashley H. Bulldis, Zhesheng Xu
  • Publication number: 20110006738
    Abstract: The present invention relates generally to electrochemical cells, and more specifically, to additives for electrochemical cells which may enhance the performance of the cell. In some cases, the additive may advantageously reduce or prevent formation of impurities and/or depletion of active components of the cell during operation, to increase the efficiency and/or lifetime of the cell. The incorporation of certain additives within the electrolyte of the cell may improve the cycling lifetime and/or performance of the cell.
    Type: Application
    Filed: September 19, 2008
    Publication date: January 13, 2011
    Inventors: Yuriy V. Mikhaylik, Igor Kovalev
  • Publication number: 20100129699
    Abstract: Methods and articles relating to separation of electrolyte compositions within lithium batteries are provided. The lithium batteries described herein may include an anode having lithium as the active anode species and a cathode having sulfur as the active cathode species. Suitable electrolytes for the lithium batteries can comprise a heterogeneous electrolyte including a first electrolyte solvent (e.g., dioxolane (DOL)) that partitions towards the anode and is favorable towards the anode (referred to herein as an “anode-side electrolyte solvent”) and a second electrolyte solvent (e.g., 1,2-dimethoxyethane (DME)) that partitions towards the cathode and is favorable towards the cathode (and referred to herein as an “cathode-side electrolyte solvent”).
    Type: Application
    Filed: December 4, 2007
    Publication date: May 27, 2010
    Inventors: Yuriy V. Mikhaylik, Chariclea Scordilis-Kelley, Igor Kovalev, Cathie Burgess
  • Publication number: 20100035128
    Abstract: The present invention relates to the application of a force to enhance the performance of an electrochemical cell. The force may comprise, in some instances, an anisotropic force with a component normal to an active surface of the anode of the electrochemical cell. In the embodiments described herein, electrochemical cells (e.g., rechargeable batteries) may undergo a charge/discharge cycle involving deposition of metal (e.g., lithium metal) on a surface of the anode upon charging and reaction of the metal on the anode surface, wherein the metal diffuses from the anode surface, upon discharging. The uniformity with which the metal is deposited on the anode may affect cell performance. For example, when lithium metal is redeposited on an anode, it may, in some cases, deposit unevenly forming a rough surface. The roughened surface may increase the amount of lithium metal available for undesired chemical reactions which may result in decreased cycling lifetime and/or poor cell performance.
    Type: Application
    Filed: August 4, 2009
    Publication date: February 11, 2010
    Applicant: Sion Power Corporation
    Inventors: Chariclea Scordilis-Kelley, John D. Affinito, Lowell D. Jones, Yuriy V. Mikhaylik, Igor Kovalev, William F. Wilkening, Christopher T.S. Campbell, John A. Martens
  • Publication number: 20090035646
    Abstract: The present invention relates generally to electrochemical cells, and more specifically, to additives for electrochemical cells which may enhance the performance of the cell. In some cases, the additive may advantageously interact with at least one component or species of the cell to increase the efficiency and/or lifetime of the cell. The incorporation of certain additives within the electrolyte of the cell may improve the cycling lifetime and/or performance of the cell.
    Type: Application
    Filed: July 31, 2007
    Publication date: February 5, 2009
    Applicant: Sion Power Corporation
    Inventors: Yuriy V. Mikhaylik, Igor Kovalev
  • Publication number: 20050129577
    Abstract: A chemical agent analysis system and a method thereof is capable of determining whether or not a sample contains a chemical component of interest. The chemical agent analysis system includes a sample, a first container prepared as a reference of comparison, a second container containing a chemical component which is an object of interest, a differential amplifier for amplifying a difference of IR radiations transmitted through the first and the second containers, and a chemical agent analyzer for collecting IR radiation from a surface of the sample, comparing a difference of the collected IR radiation and the amplified IR radiation from the differential amplifier, and analyzing to determine whether the sample contains the chemical component of interest.
    Type: Application
    Filed: September 17, 2004
    Publication date: June 16, 2005
    Inventors: Sergey Potapov, Igor Kovalev