Patents by Inventor Gregory Alan Roberts

Gregory Alan Roberts 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: 20240337867
    Abstract: A swappable battery and a swappable battery system for a near-eye device are described. In one aspect, the swappable battery may be detachably integrated into an outer surface of a near-eye device such that the swappable battery may be easily removable and replaceable by the user. In another aspect, the lid of the swappable battery may form an outer surface of the near-eye device when the swappable battery is attached. In some examples, the swappable battery may be detachably attached within a temple arm of a pair of smartglasses such that the outer surface of the swappable battery and the outer surface of the temple arm are substantially contiguous and flush.
    Type: Application
    Filed: March 12, 2024
    Publication date: October 10, 2024
    Applicant: Meta Platforms Technologies, LLC
    Inventors: Tianren XU, Karthik KADIRVEL, Bradley SPARE, Ankur GUPTA, Gregory Alan ROBERTS, Jason HOWARD
  • Publication number: 20240339580
    Abstract: According to examples, systems and methods for implementing a conductive trace via laser direct structuring (LDS) and a light-emitting diode (LED) via surface-mount technology (SMT) on a carrier structure of a display device are described. A method may include printing a conductive trace onto a carrier, mounted a light-emitting diode (LED) onto the carrier, and attaching a flexible printed circuit (FPC) to the carrier, wherein the light-emitting diode (LED) is communicatively coupled to the flexible printed circuit (FPC) via the conductive trace.
    Type: Application
    Filed: February 27, 2024
    Publication date: October 10, 2024
    Applicant: Meta Platforms Technologies, LLC
    Inventors: Le CHANG, Jason HOWARD, Gregory Alan ROBERTS, Karthik KADIRVEL, Bradley SPARE, Ankur GUPTA, Yang WANG, Tianren XU, Peter Eli RENNER, Tao ZHOU, Umar AZAD, Eswarappa CHANNABASAPPA
  • Publication number: 20230318092
    Abstract: A non-cuboidal battery having a cross-sectional area and a thickness may include a metal can housing, a metal lid coupled to the metal can housing, and an electrode stack disposed in the metal can housing. The thickness of the non-cuboidal battery can be substantially uniform over the cross-sectional area. The electrode stack may include a cathode layer stacked on an anode layer, and a separator layer disposed between the cathode layer and the anode layer. The electrode stack may be hermetically sealed by the metal can housing and the metal lid. A negative terminal that can be electrically coupled to the anode layer and a positive terminal that can be electrically coupled to the cathode layer may be disposed on an exterior side of the metal can housing or the metal lid.
    Type: Application
    Filed: March 10, 2023
    Publication date: October 5, 2023
    Applicant: Meta Platforms Technologies, LLC
    Inventors: Matthew Aaron, Eunbit Cho, Ankur Gupta, Jason Howard, Karthik Kadirvel, Gregory Alan Roberts, Tianren Xu
  • Patent number: 10038219
    Abstract: Provided are novel electrolytes for use in rechargeable lithium ion cells containing high capacity active materials, such as silicon, germanium, tin, and/or aluminum. These novel electrolytes include one or more pyrocarbonates and, in certain embodiments, one or more fluorinated carbonates. For example, dimethyl pyrocarbonate (DMPC) may be combine with mono-fluoroethylene carbonate (FEC). Alternatively, DMPC or other pyrocarbonates may be used without any fluorinated carbonates. A weight ratio of pyrocarbonates may be between about 0% and 50%, for example, about 10%. Pyrocarbonates may be combined with other solvents, such as ethylene carbonate (EC), propylene carbonate (PC), dimethyl carbonate (DMC), diethyl carbonate (DEC), and/or ethyl-methyl carbonate (EMC). Alternatively, pyrocarbonates may be used without such solvents.
    Type: Grant
    Filed: August 20, 2015
    Date of Patent: July 31, 2018
    Assignee: Amprius, Inc.
    Inventors: Gregory Alan Roberts, Rainer J. Fasching, Constantin I. Stefan
  • Publication number: 20160049693
    Abstract: Provided are novel electrolytes for use in rechargeable lithium ion cells containing high capacity active materials, such as silicon, germanium, tin, and/or aluminum. These novel electrolytes include one or more pyrocarbonates and, in certain embodiments, one or more fluorinated carbonates. For example, dimethyl pyrocarbonate (DMPC) may be combine with mono-fluoroethylene carbonate (FEC). Alternatively, DMPC or other pyrocarbonates may be used without any fluorinated carbonates. A weight ratio of pyrocarbonates may be between about 0% and 50%, for example, about 10%. Pyrocarbonates may be combined with other solvents, such as ethylene carbonate (EC), propylene carbonate (PC), dimethyl carbonate (DMC), diethyl carbonate (DEC), and/or ethyl-methyl carbonate (EMC). Alternatively, pyrocarbonates may be used without such solvents.
    Type: Application
    Filed: August 20, 2015
    Publication date: February 18, 2016
    Inventors: Gregory Alan Roberts, Rainer J. Fasching, Constantin I. Stefan
  • Patent number: 9142864
    Abstract: Provided are novel electrolytes for use in rechargeable lithium ion cells containing high capacity active materials, such as silicon, germanium, tin, and/or aluminum. These novel electrolytes include one or more pyrocarbonates and, in certain embodiments, one or more fluorinated carbonates. For example, dimethyl pyrocarbonate (DMPC) may be combine with mono-fluoroethylene carbonate (FEC). Alternatively, DMPC or other pyrocarbonates may be used without any fluorinated carbonates. A weight ratio of pyrocarbonates may be between about 0% and 50%, for example, about 10%. Pyrocarbonates may be combined with other solvents, such as ethylene carbonate (EC), propylene carbonate (PC), dimethyl carbonate (DMC), diethyl carbonate (DEC), and/or ethyl-methyl carbonate (EMC). Alternatively, pyrocarbonates may be used without such solvents.
    Type: Grant
    Filed: November 15, 2011
    Date of Patent: September 22, 2015
    Assignee: Amprius, Inc.
    Inventors: Gregory Alan Roberts, Rainer J Fasching, Constantin I Stefan
  • Patent number: 9112212
    Abstract: Provided are novel methods of fabricating electrochemical cells containing high capacity active materials that form multilayered solid electrolyte interphase (SEI) structures on the active material surface during cell fabrication. Combining multiple different SEI layers on one surface can substantially improve cell performance by providing each layer with different properties. For example, an outer layer having a high electronic resistance may be combined with an inner layer having a high ionic permeability. To form such multilayered SEI structures, formation may involve changing electrolyte composition, functionalizing surfaces, and/or varying formation conditions. For example, formation may start with a boron containing electrolyte. This initial electrolyte is then replaced with an electrolyte that does not contain boron and instead may contain fluorine additives. In certain embodiments, cell's temperature is changed during formation to initiate different chemical reactions during SEI formation.
    Type: Grant
    Filed: October 25, 2011
    Date of Patent: August 18, 2015
    Assignee: Amprius, Inc.
    Inventors: Rainer J Fasching, Gregory Alan Roberts, Yi Cui, Song Han
  • Publication number: 20120121989
    Abstract: Provided are novel electrolytes for use in rechargeable lithium ion cells containing high capacity active materials, such as silicon, germanium, tin, and/or aluminum. These novel electrolytes include one or more pyrocarbonates and, in certain embodiments, one or more fluorinated carbonates. For example, dimethyl pyrocarbonate (DMPC) may be combine with mono-fluoroethylene carbonate (FEC). Alternatively, DMPC or other pyrocarbonates may be used without any fluorinated carbonates. A weight ratio of pyrocarbonates may be between about 0% and 50%, for example, about 10%. Pyrocarbonates may be combined with other solvents, such as ethylene carbonate (EC), propylene carbonate (PC), dimethyl carbonate (DMC), diethyl carbonate (DEC), and/or ethyl-methyl carbonate (EMC). Alternatively, pyrocarbonates may be used without such solvents.
    Type: Application
    Filed: November 15, 2011
    Publication date: May 17, 2012
    Applicant: AMPRIUS, INC.
    Inventors: Gregory Alan Roberts, Rainer J. Fasching, Constantin I. Stefan
  • Publication number: 20120045670
    Abstract: Provided are novel electrochemical cells that include positive electrodes, negative electrodes containing high capacity active materials such as silicon, and auxiliary electrodes containing lithium. An auxiliary electrode is provided in the cell at least prior to its formation cycling and is used to supply lithium to the negative electrode. The auxiliary electrode may be then removed from the cell prior or after formation. The transfer of lithium to the negative electrode may be performed using a different electrolyte, a higher temperature, and/or a slower rate than during later operational cycling of the cell. After this transfer, the negative electrode may remain pre-lithiated during later cycling at least at a certain predetermined level. This pre-lithiation helps to cycle the cell at more optimal conditions and to some degree maintain this cycling performance over the operating life of the cell. Also provided are methods of fabricating such cells.
    Type: Application
    Filed: September 26, 2011
    Publication date: February 23, 2012
    Applicant: AMPRIUS, INC.
    Inventors: Constantin I. Stefan, Rainer J. Fasching, Gregory Alan Roberts, Ryan Kottenstette, Song Han, Ghyrn E. Loveness
  • Publication number: 20110171502
    Abstract: Electrochemical cells containing nanostructured negative active materials and composite positive active materials and methods of fabricating such electrochemical cells are provided. Positive active materials may have inactive components and active components. Inactive components may be activated and release additional lithium ions, which may offset some irreversible capacity losses in the electrochemical cells. In certain embodiments, the activation releases lithium ion having a columbic content of at least about 400 mAh/g based on the weight of the activated material.
    Type: Application
    Filed: January 11, 2011
    Publication date: July 14, 2011
    Applicant: AMPRIUS, INC.
    Inventors: Ryan J. Kottenstette, Eugene Berdichevsky, Constantin I. Stefan, Gregory Alan Roberts, Song Han, Yi Cui