Patents by Inventor Lonnie G. Johnson

Lonnie G. Johnson 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: 20170097121
    Abstract: A pressurized gas storage system is disclosed for maintaining a minimum pressure of a primary fluid (5). The system includes a pressurized gas tank (2) inside which is mounted a flexible bladder (4) which contains the primary fluid. The space between the gas tank and the bladder is considered a compression chamber (9) which contains a secondary fluid (7) that exerts pressure on the bladder to maintain a minimum pressure upon the primary fluid. The secondary fluid is supplied to and exits tank pressure chamber through a port (6). The flexible bladder is couple to inlet outlet port (8) extending to a pickup tube (10). The system also includes a pump (18), fluid reservoir (14), pressure relief valve (24) and controller (26) which functions to maintain the pressure of the secondary fluid. In a second embodiment, pressure is maintained through a second fluid absorbing and releasing material.
    Type: Application
    Filed: October 6, 2016
    Publication date: April 6, 2017
    Inventor: Lonnie G. Johnson
  • Publication number: 20160285146
    Abstract: An ambient-heat engine has a substantially thermally-conductive housing whose interior is divided into a high-pressure chamber and a low-pressure chamber by a substantially gas-impermeable barrier. An ionically-conductive, electrical-energy-generating mechanism forms at least a portion of the barrier. First hydrogen-storage medium is disposed within the high-pressure chamber and second hydrogen-storage medium is disposed within the low-pressure chamber. An electrical-energy storage device connected to the ionically-conductive, electrical-energy-generating mechanism is operable between a charge condition and a discharge condition. In a charge condition, hydrogen atoms within the high-pressure chamber are converted to hydrogen ions and conducted through the electrical-energy-generating mechanism to the low-pressure chamber causing electrical-energy to be generated to the electrical-energy storage device.
    Type: Application
    Filed: June 7, 2016
    Publication date: September 29, 2016
    Inventor: Lonnie G. JOHNSON
  • Patent number: 9387453
    Abstract: An ambient-heat engine has a substantially thermally-conductive housing whose interior is divided into a high-pressure chamber and a low-pressure chamber by a substantially gas-impermeable barrier. An ionically-conductive, electrical-energy-generating mechanism forms at least a portion of the barrier. First hydrogen-storage medium is disposed within the high-pressure chamber and second hydrogen-storage medium is disposed within the low-pressure chamber. An electrical-energy storage device connected to the ionically-conductive, electrical-energy-generating mechanism is operable between a charge condition and a discharge condition. In a charge condition, hydrogen atoms within the high-pressure chamber are converted to hydrogen ions and conducted through the electrical-energy-generating mechanism to the low-pressure chamber causing electrical-energy to be generated to the electrical-energy storage device.
    Type: Grant
    Filed: June 23, 2014
    Date of Patent: July 12, 2016
    Assignee: Johnson Research & Development Co., Inc.
    Inventor: Lonnie G. Johnson
  • Patent number: 9356317
    Abstract: Amorphous lithium lanthanum zirconium oxide (LLZO) is formed as an ionically-conductive electrolyte medium. The LLZO comprises by percentage of total number of atoms from about 0.1% to about 50% lithium, from about 0.1% to about 25% lanthanum, from about 0.1% to about 25% zirconium, from about 30% to about 70% oxygen and from 0.0% to about 25% carbon. At least one layer of amorphous LLZO may be formed through a sol-gel process wherein quantities of lanthanum methoxyethoxide, lithium butoxide and zirconium butoxide are dissolved in an alcohol-based solvent to form a mixture which is dispensed into a substantially planar configuration, transitioned through a gel phase, dried and cured to a substantially dry phase.
    Type: Grant
    Filed: October 31, 2014
    Date of Patent: May 31, 2016
    Assignee: Johnson IP Holding, LLC
    Inventors: Davorin Babic, Lonnie G. Johnson, William Rauch, David Ketema Johnson, Stanley Jones, Lazbourne Alanzo Allie, Adrian M. Grant
  • Patent number: 9266085
    Abstract: An ambient-heat engine has a substantially thermally-conductive housing whose interior is divided into a high-pressure chamber and a low-pressure chamber by a substantially gas-impermeable barrier. An ionically-conductive, electrical-energy-generating mechanism forms at least a portion of the barrier. First hydrogen-storage medium is disposed within the high-pressure chamber and second hydrogen-storage medium is disposed within the low-pressure chamber. An electrical-energy storage device connected to the ionically-conductive, electrical-energy-generating mechanism is operable between a charge condition and a discharge condition. In a charge condition, hydrogen atoms within the high-pressure chamber are converted to hydrogen ions and conducted through the electrical-energy-generating mechanism to the low-pressure chamber causing electrical-energy to be generated to the electrical-energy storage device.
    Type: Grant
    Filed: September 9, 2010
    Date of Patent: February 23, 2016
    Assignee: Johnson Research & Development Co. Inc.
    Inventor: Lonnie G. Johnson
  • Patent number: 9240257
    Abstract: An electrolyte medium suitable for use as a separator for an electrochemical cell comprises a substantially solid, thermoset polyimide polymer matrix doped with a lithium salt. The lithium salt comprises lithium bis(trifluoromethanesulfonyl)imide (LITFSI).
    Type: Grant
    Filed: July 6, 2011
    Date of Patent: January 19, 2016
    Assignee: Johnson IP Holding, Inc.
    Inventors: Lonnie G. Johnson, Lazbourne A. Allie, James R. Muller
  • Publication number: 20150333307
    Abstract: A high capacity solid state composite cathode contains an active cathode material dispersed in an amorphous inorganic ionically conductive metal oxide, such as lithium lanthanum zirconium oxide and/or lithium carbon lanthanum zirconium oxide. A solid state composite separator contains an electronically insulating inorganic powder dispersed in an amorphous, inorganic, ionically conductive metal oxide. Methods for preparing the composite cathode and composite separator are provided.
    Type: Application
    Filed: March 1, 2013
    Publication date: November 19, 2015
    Inventors: Joykumar S. THOKCHOM, Davorin BABIC, Lonnie G. JOHNSON, Lazbourne Alanzo ALLIE, David Ketema JOHNSON, William RAUCH
  • Publication number: 20150295419
    Abstract: An energy harvesting circuit for use with a logic circuit includes an induction coil positioned near conductive elements of the logic circuit and configured to extract energy from the magnetic fields produced by transient currents associated with state changes within the logic circuit.
    Type: Application
    Filed: April 1, 2015
    Publication date: October 15, 2015
    Inventor: Lonnie G. JOHNSON
  • Publication number: 20150180001
    Abstract: A method for forming an amorphous ionically conductive metal oxide, such as lithium lanthanum zirconium oxide (LLZO), by chemical vapor deposition (CVD), as well as to the ionically conductive material formed by the method, are provided. Such a material may be utilized as a solid electrolyte and/or as a solid separator in an all solid state lithium battery.
    Type: Application
    Filed: March 2, 2012
    Publication date: June 25, 2015
    Applicant: JOHNSON IP HOLDING, LLC
    Inventors: Lonnie G. Johnson, Davorin Babic, Elena N. Krumenaker, Tedric D. Campbell, Kieran J. Claffey
  • Publication number: 20150056520
    Abstract: An impregnated solid state composite cathode is provided. The cathode contains a sintered porous active material, in which pores of the porous material are impregnated with an inorganic ionically conductive amorphous solid electrolyte. A method for producing the impregnated solid state composite cathode involves forming a pellet containing an active intercalation cathode material; sintering the pellet to form a sintered porous cathode pellet; impregnating pores of the sintered porous cathode pellet with a liquid precursor of an inorganic amorphous ionically conductive solid electrolyte; and curing the impregnated pellet to yield the composite cathode.
    Type: Application
    Filed: March 1, 2013
    Publication date: February 26, 2015
    Inventors: Joykumar S. Thokchom, Davorin Babic, Lonnie G. Johnson, Lazbourne Alanzo Allie, David Ketema Johnson, William Rauch
  • Publication number: 20150056518
    Abstract: Amorphous lithium lanthanum zirconium oxide (LLZO) is formed as an ionically-conductive electrolyte medium. The LLZO comprises by percentage of total number of atoms from about 0.1% to about 50% lithium, from about 0.1% to about 25% lanthanum, from about 0.1% to about 25% zirconium, from about 30% to about 70% oxygen and from 0.0% to about 25% carbon. At least one layer of amorphous LLZO may be formed through a sol-gel process wherein quantities of lanthanum methoxyethoxide, lithium butoxide and zirconium butoxide are dissolved in an alcohol-based solvent to form a mixture which is dispensed into a substantially planar configuration, transitioned through a gel phase, dried and cured to a substantially dry phase.
    Type: Application
    Filed: October 31, 2014
    Publication date: February 26, 2015
    Applicant: JOHNSON IP HOLDING, LLC
    Inventors: Davorin BABIC, Lonnie G. JOHNSON, William RAUCH, David Ketema JOHNSON, Stanley JONES, Lazbourne Alanzo ALLIE, Adrian M. GRANT
  • Publication number: 20140328727
    Abstract: An ambient-heat engine has a substantially thermally-conductive housing whose interior is divided into a high-pressure chamber and a low-pressure chamber by a substantially gas-impermeable barrier. An ionically-conductive, electrical-energy-generating mechanism forms at least a portion of the barrier. First hydrogen-storage medium is disposed within the high-pressure chamber and second hydrogen-storage medium is disposed within the low-pressure chamber. An electrical-energy storage device connected to the ionically-conductive, electrical-energy-generating mechanism is operable between a charge condition and a discharge condition. In a charge condition, hydrogen atoms within the high-pressure chamber are converted to hydrogen ions and conducted through the electrical-energy-generating mechanism to the low-pressure chamber causing electrical-energy to be generated to the electrical-energy storage device.
    Type: Application
    Filed: June 23, 2014
    Publication date: November 6, 2014
    Inventor: Lonnie G. JOHNSON
  • Publication number: 20140220449
    Abstract: An active anode (10) is provided that includes a framework (11) of a first anodic material which contains large cavities (12) that include particles (13) of a second anodic material. The cavities have to be large enough so that a fully lithiated particles of the second anodic material fits into the cavity that contains it and does not apply stress to the framework. The first anodic material has a lower lithiation/delithiation potential than the second anodic material. To produce the anode cavities the second anodic material is coated with an organic coating which is then removed once the anodic layer is produced from a mixture of the first and second anodic materials.
    Type: Application
    Filed: April 7, 2014
    Publication date: August 7, 2014
    Inventors: Davorin Babic, Lonnie G Johnson, William L Rauch, Joykumar Thokchom
  • Publication number: 20140099538
    Abstract: Embodiments of solid-state batteries, battery components, and related construction methods are described. The components include one or more embodiments of a low melt temperature electrolyte bonded solid-state rechargeable battery electrode and one or more embodiments of a composite separator having a low melt temperature electrolyte component. Embodiments of methods for fabrication of solid-state batteries and battery components are described. These methods include co-extrusion, hot pressing and roll casting.
    Type: Application
    Filed: March 14, 2013
    Publication date: April 10, 2014
    Applicant: MICROSOFT CORPORATION
    Inventors: Lonnie G. Johnson, David K. Johnson
  • Publication number: 20140099556
    Abstract: Embodiments of solid-state batteries, battery components, and related construction methods are described. The components include one or more embodiments of a low melt temperature electrolyte bonded solid-state rechargeable battery electrode and one or more embodiments of a composite separator having a low melt temperature electrolyte component. Embodiments of methods for fabrication of solid-state batteries and battery components are described. These methods include co-extrusion, hot pressing and roll casting.
    Type: Application
    Filed: March 14, 2013
    Publication date: April 10, 2014
    Applicant: MICROSOFT CORPORATION
    Inventors: Lonnie G. Johnson, David K. Johnson
  • Patent number: 8568921
    Abstract: A regenerative ion exchange fuel cell having an anode, a metal ion conductor coupled to the anode, an aqueous electrolyte solution positioned adjacent the metal ion conductor, a proton conductor mounted adjacent the aqueous electrolyte solution opposite the metal ion conductor, a cathode positioned adjacent the proton conductor opposite the aqueous electrolyte solution, and a cathode current collector associated with the cathode.
    Type: Grant
    Filed: August 18, 2005
    Date of Patent: October 29, 2013
    Assignee: Excellatron Solid State LLC
    Inventor: Lonnie G. Johnson
  • Publication number: 20130230777
    Abstract: An active anode (10) is provided that includes a framework (11) of a first anodic material which contains large cavities (12) that include particles (13) of a second anodic material. The cavities have to be large enough so that a fully lithiated particles of the second anodic material fits into the cavity that contains it and does not apply stress to the framework. The first anodic material has a lower lithium intercalation potential than the second anodic material. To produce the anode cavities the second anodic material is coated with an organic coating which is then removed once the anodic layer is produced from a mixture of the first and second anodic materials.
    Type: Application
    Filed: March 5, 2012
    Publication date: September 5, 2013
    Applicant: Johnson IP Holding, LLC
    Inventors: Davorin Babic, Lonnie G. Johnson, William L. Rauch, Joykumar Thokchom
  • Publication number: 20130011745
    Abstract: An electrolyte medium suitable for use as a separator for an electrochemical cell comprises a substantially solid, thermoset polyimide polymer matrix doped with a lithium salt. The lithium salt comprises lithium bis(trifluoromethanesulfonyl)imide (LITFSI).
    Type: Application
    Filed: July 6, 2011
    Publication date: January 10, 2013
    Applicant: EXCELLATRON SOLID STATE LLC
    Inventors: Lonnie G. Johnson, Lazbourne A. Allie, James R. Muller
  • Publication number: 20120270115
    Abstract: A lithium oxygen or air battery (80) is disclosed having two halves (81) that are joined together along their edges. Each battery half (81) has a carbon cloth or mesh cathode current collector (82), a cathode (83), a cathode terminal (84), an anode (85), an anode current collector, anode terminal (88) and a solid separator (87). The cathode includes randomly distributed carbon fibers throughout.
    Type: Application
    Filed: September 28, 2011
    Publication date: October 25, 2012
    Applicant: EXCELLATRON SOLID STATE, LLC
    Inventor: Lonnie G. Johnson
  • Publication number: 20120225959
    Abstract: An anhydrous, proton-conductive medium comprises a poly(amic acid)-based polyimide and at least one phosphorus compound from the group consisting of phosphorus oxides and phosphoric acids. The precursor solution for the polyimide is a mixture of a phosphorus oxide and a poly(amic acid). A suitable phosphorus oxide has the formula P4O10. A process for forming an anhydrous, proton-conductive membrane comprises mixing a phosphorus oxide in a poly(amic acid) solution to form a mixture, dispensing the mixture upon a support structure, and substantially drying the mixture. The mixture may then be cured.
    Type: Application
    Filed: March 3, 2011
    Publication date: September 6, 2012
    Applicant: EXCELLATRON SOLID STATE LLC
    Inventors: James R. Muller, John Scott Flanagan, Timothy Schriefer, Lazbourne A. Allie, Lonnie G. Johnson