Patents by Inventor Harry Pratt

Harry Pratt 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).

  • Patent number: 11845765
    Abstract: A method for synthesizing a purified lithium (Li)+ anion binding agent (ABA-F)? salt and the corresponding Li+(ABA-F)? are disclosed. The method includes dissolving a boron-based acid in a polar solvent to form a solution. The solution is refluxed to form an anion binding agent. A stoichiometric amount of a small fluorinated salt, such as LiF, is added to the anion binding agent to form a mixture. The mixture is subsequently crystallized to obtain a substantially pure Li+(ABA-F)? salt. Example purified Li+(ABA-F)? salts include Ox-Li+(ABA-F), m-Li+(ABA-F), and BF3—Li+(ABA-F)?. These purified Li+(ABA-F)? salts provide the benefits of increased battery thermal safety without loss of electrochemical performance.
    Type: Grant
    Filed: October 27, 2020
    Date of Patent: December 19, 2023
    Assignee: National Technology & Engineering Solutions of Sandia, LLC
    Inventors: Christopher Orendorff, Ganesan Nagasubramanian, Kyle R. Fenton, David Ingersoll, Harry Pratt, Chad Staiger, Travis Mark Anderson
  • Patent number: 10862163
    Abstract: Organosilicon electrolytes exhibit several important properties for use in lithium carbon monofluoride batteries, including high conductivity/low viscosity and thermal/electrochemical stability. Conjugation of an anion binding agent to the siloxane backbone of an organosilicon electrolyte creates a bi-functional electrolyte. The bi-functionality of the electrolyte is due to the ability of the conjugated polyethylene oxide moieties of the siloxane backbone to solvate lithium and thus control the ionic conductivity within the electrolyte, and the anion binding agent to bind the fluoride anion and thus facilitate lithium fluoride dissolution and preserve the porous structure of the carbon monofluoride cathode. The ability to control both the electrolyte conductivity and the electrode morphology/properties simultaneously can improve lithium electrolyte operation.
    Type: Grant
    Filed: January 19, 2017
    Date of Patent: December 8, 2020
    Assignee: National Technology & Engineering Solutions of Sandia, LLC
    Inventors: Kyle R. Fenton, Ganesan Nagasubramanian, Chad Staiger, Harry Pratt, Kevin Leung, Susan Rempe, Mangesh Chaudhari, Travis Mark Anderson
  • Publication number: 20200028196
    Abstract: Nonaqueous redox flow batteries (RFB) hold the potential for high energy density grid scale storage, though are often limited by the solubility of the redox-active species in their electrolytes. A systematic approach enables an increase the concentration of redox-active species in electrolytes for nonaqueous RFB, starting from a metal-coordination-cation-based ionic liquid. As an example, starting with an ionic liquid consisting of a metal coordination cation (MetIL), ferrocene-containing ligands and iodide anions can be substituted into the original MetIL structure, enabling a nearly 4× increase in capacity compared to original MetIL structure. Application of this strategy to other chemistries, optimizing electrolyte melting point and conductivity could yield >10 M redox-active electrons.
    Type: Application
    Filed: May 10, 2019
    Publication date: January 23, 2020
    Inventors: Leo J. Small, Travis Mark Anderson, Harry Pratt
  • Patent number: 10497971
    Abstract: A sodium ion battery comprises a cathode having a porous redox active metal-organic framework material. The battery can be an organic electrolyte sodium ion battery wherein the electrolyte comprises a sodium salt dissolved in an organic solvent or mixture of organic solvents. Alternatively, the battery can comprise an aqueous sodium ion battery wherein the electrolyte comprises a sodium salt dissolved in an aqueous solvent. Battery performance is especially related to electrolyte and binder selection.
    Type: Grant
    Filed: April 18, 2019
    Date of Patent: December 3, 2019
    Assignee: National Technology & Engineering Solutions of Sandia, LLC
    Inventors: Dorina F. Sava Gallis, Harry Pratt, Travis Mark Anderson, Nicholas Hudak
  • Publication number: 20190245241
    Abstract: A sodium ion battery comprises a cathode having a porous redox active metal-organic framework material. The battery can be an organic electrolyte sodium ion battery wherein the electrolyte comprises a sodium salt dissolved in an organic solvent or mixture of organic solvents. Alternatively, the battery can comprise an aqueous sodium ion battery wherein the electrolyte comprises a sodium salt dissolved in an aqueous solvent. Battery performance is especially related to electrolyte and binder selection.
    Type: Application
    Filed: April 18, 2019
    Publication date: August 8, 2019
    Inventors: Dorina F. Sava Gallis, Harry Pratt, Travis Mark Anderson, Nicholas Hudak
  • Patent number: 10305133
    Abstract: Nonaqueous redox flow batteries (RFB) hold the potential for high energy density grid scale storage, though are often limited by the solubility of the redox-active species in their electrolytes. A systematic approach enables an increase the concentration of redox-active species in electrolytes for nonaqueous RFB, starting from a metal-coordination-cation-based ionic liquid. As an example, starting with an ionic liquid consisting of a metal coordination cation (MetIL), ferrocene-containing ligands and iodide anions can be substituted into the original MetIL structure, enabling a nearly 4× increase in capacity compared to original MetIL structure. Application of this strategy to other chemistries, optimizing electrolyte melting point and conductivity could yield >10 M redox-active electrons.
    Type: Grant
    Filed: May 17, 2017
    Date of Patent: May 28, 2019
    Assignee: National Technology & Engineering Solutions of Sandia, LLC
    Inventors: Leo J. Small, Travis Mark Anderson, Harry Pratt
  • Publication number: 20180337419
    Abstract: Nonaqueous redox flow batteries (RFB) hold the potential for high energy density grid scale storage, though are often limited by the solubility of the redox-active species in their electrolytes. A systematic approach enables an increase the concentration of redox-active species in electrolytes for nonaqueous RFB, starting from a metal-coordination-cation-based ionic liquid. As an example, starting with an ionic liquid consisting of a metal coordination cation (MetIL), ferrocene-containing ligands and iodide anions can be substituted into the original MetIL structure, enabling a nearly 4× increase in capacity compared to original MetIL structure. Application of this strategy to other chemistries, optimizing electrolyte melting point and conductivity could yield >10 M redox-active electrons.
    Type: Application
    Filed: May 17, 2017
    Publication date: November 22, 2018
    Inventors: Leo J. Small, Travis Mark Anderson, Harry Pratt
  • Publication number: 20170207485
    Abstract: Organosilicon electrolytes exhibit several important properties for use in lithium carbon monofluoride batteries, including high conductivity/low viscosity and thermal/electrochemical stability. Conjugation of an anion binding agent to the siloxane backbone of an organosilicon electrolyte creates a bi-functional electrolyte. The bi-functionality of the electrolyte is due to the ability of the conjugated polyethylene oxide moieties of the siloxane backbone to solvate lithium and thus control the ionic conductivity within the electrolyte, and the anion binding agent to bind the fluoride anion and thus facilitate lithium fluoride dissolution and preserve the porous structure of the carbon monofluoride cathode. The ability to control both the electrolyte conductivity and the electrode morphology/properties simultaneously can improve lithium electrolyte operation.
    Type: Application
    Filed: January 19, 2017
    Publication date: July 20, 2017
    Inventors: Kyle R. Fenton, Ganesan Nagasubramanian, Chad Staiger, Harry Pratt, Kevin Leung, Susan Rempe, Mangesh Chaudhari, Travis Mark Anderson
  • Patent number: 9580541
    Abstract: The present invention relates to functionalized polymers including a poly(phenylene) structure. In some embodiments, the polymers and copolymers of the invention include a highly localized concentration of acidic moieties, which facilitate proton transport and conduction through networks formed from these polymers. In addition, the polymers can include functional moieties, such as electron-withdrawing moieties, to protect the polymeric backbone, thereby extending its durability. Such enhanced proton transport and durability can be beneficial for any high performance platform that employs proton exchange polymeric membranes, such as in fuel cells or flow batteries.
    Type: Grant
    Filed: November 5, 2015
    Date of Patent: February 28, 2017
    Assignee: Sandia Corporation
    Inventors: Cy Fujimoto, Harry Pratt, Travis Mark Anderson
  • Patent number: 9548509
    Abstract: Redox flow batteries including a half-cell electrode chamber coupled to a current collecting electrode are disclosed herein. In a general embodiment, a separator is coupled to the half-cell electrode chamber. The half-cell electrode chamber comprises a first redox-active mediator and a second redox-active mediator. The first redox-active mediator and the second redox-active mediator are circulated through the half-cell electrode chamber into an external container. The container includes an active charge-transfer material. The active charge-transfer material has a redox potential between a redox potential of the first redox-active mediator and a redox potential of the second redox-active mediator. The active charge-transfer material is a polyoxometalate or derivative thereof. The redox flow battery may be particularly useful in energy storage solutions for renewable energy sources and for providing sustained power to an electrical grid.
    Type: Grant
    Filed: December 12, 2014
    Date of Patent: January 17, 2017
    Assignee: Sandia Corporation
    Inventors: Travis Mark Anderson, Nicholas Hudak, Chad Staiger, Harry Pratt
  • Publication number: 20150280259
    Abstract: Redox flow batteries including a half-cell electrode chamber coupled to a current collecting electrode are disclosed herein. In a general embodiment, a separator is coupled to the half-cell electrode chamber. The half-cell electrode chamber comprises a first redox-active mediator and a second redox-active mediator. The first redox-active mediator and the second redox-active mediator are circulated through the half-cell electrode chamber into an external container. The container includes an active charge-transfer material. The active charge-transfer material has a redox potential between a redox potential of the first redox-active mediator and a redox potential of the second redox-active mediator. The active charge-transfer material is a polyoxometalate or derivative thereof. The redox flow battery may be particularly useful in energy storage solutions for renewable energy sources and for providing sustained power to an electrical grid.
    Type: Application
    Filed: December 12, 2014
    Publication date: October 1, 2015
    Inventors: Travis Mark Anderson, Nicholas Hudak, Chad Staiger, Harry Pratt
  • Publication number: 20150255823
    Abstract: The present disclosure is directed to synthesizing metal ionic liquids with transition metal coordination cations, where such metal ionic liquids can be used in a flow battery. A cation of a metal ionic liquid includes a transition metal and a ligand coordinated to the transition metal.
    Type: Application
    Filed: August 2, 2012
    Publication date: September 10, 2015
    Applicant: Sandia Corporation
    Inventors: Travis Mark Anderson, David Ingersoll, Chad Staiger, Harry Pratt
  • Patent number: 9123943
    Abstract: The present disclosure is directed to synthesizing metal ionic liquids with transition metal coordination cations, where such metal ionic liquids can be used in a flow battery. A cation of a metal ionic liquid includes a transition metal and a ligand coordinated to the transition metal.
    Type: Grant
    Filed: August 2, 2012
    Date of Patent: September 1, 2015
    Assignee: Sandia Corporation
    Inventors: Travis Mark Anderson, David Ingersoll, Chad Staiger, Harry Pratt
  • Patent number: 7862634
    Abstract: A sintered polycrystalline composite for cutting tools that includes a plurality of diamond or cubic boron nitride particles; a plurality of nanotube materials; and a refractory or binder material is disclosed. Methods of forming such polycrystalline composites that include integrating or mixing a plurality of nanotube materials with diamond or cubic boron nitride particle and/or refractory or binder particles are also disclosed.
    Type: Grant
    Filed: November 13, 2007
    Date of Patent: January 4, 2011
    Assignee: Smith International, Inc.
    Inventors: J. Daniel Belnap, Guodong Zhan, Xiayang Sheng, Youhe Zhang, Madapusi K. Keshavan, Harry Pratt, Yuelin Shen
  • Publication number: 20080209818
    Abstract: A sintered polycrystalline composite for cutting tools that includes a plurality of diamond or cubic boron nitride particles; a plurality of nanotube materials; and a refractory or binder material is disclosed. Methods of forming such polycrystalline composites that include integrating or mixing a plurality of nanotube materials with diamond or cubic boron nitride particle and/or refractory or binder particles are also disclosed.
    Type: Application
    Filed: November 13, 2007
    Publication date: September 4, 2008
    Applicant: SMITH INTERNATIONAL, INC.
    Inventors: J. Daniel Belnap, Guodong Zhan, Xiayang Sheng, Youhe Zhang, Madapusi K. Keshavan, Harry Pratt, Yuelin Shen