Patents by Inventor David Jacob

David Jacob 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: 11936035
    Abstract: Core-shell particles, composite anode material, anodes made therefrom, lithium ion cells and methods are provided, which enable production of fast charging lithium ion batteries. The composite anode material has core-shell particles which are configured to receive and release lithium ions at their cores and to have shells that are configured to allow for core expansion upon lithiation. The cores of the core-shell particles are connected to the respective shells by conductive material such as carbon fibers, which may form a network throughout the anode material and possibly interconnect cores of many core-shell particles to enhance the electrical conductivity of the anode. Ionic conductive material and possibly mechanical elements may be incorporated in the core-shell particles to enhance ionic conductivity and mechanical robustness toward expansion and contraction of the cores during lithiation and de-lithiation.
    Type: Grant
    Filed: December 25, 2017
    Date of Patent: March 19, 2024
    Assignee: STOREDOT LTD.
    Inventors: David Jacob, Sergey Remizov, Nitzan Shadmi, Hani Farran, Daniel Aronov
  • Publication number: 20230044021
    Abstract: Methods of fabricating solar cells having junctions retracted from cleaved edges, and the resulting solar cells, are described. In an example, a solar cell includes a substrate having a light-receiving surface, a back surface, and sidewalls. An emitter region is in the substrate at the light-receiving surface of the substrate. The emitter region has sidewalls laterally retracted from the sidewalls of the substrate. A passivation layer is on the sidewalls of the emitter region.
    Type: Application
    Filed: October 24, 2022
    Publication date: February 9, 2023
    Inventors: Yafu Lin, David Jacob
  • Patent number: 11515441
    Abstract: Methods of fabricating solar cells having junctions retracted from cleaved edges, and the resulting solar cells, are described. In an example, a solar cell includes a substrate having a light-receiving surface, a back surface, and sidewalls. An emitter region is in the substrate at the light-receiving surface of the substrate. The emitter region has sidewalls laterally retracted from the sidewalls of the substrate. A passivation layer is on the sidewalls of the emitter region.
    Type: Grant
    Filed: April 11, 2019
    Date of Patent: November 29, 2022
    Assignee: SunPower Corporation
    Inventors: Yafu Lin, David Jacob
  • Publication number: 20220154004
    Abstract: Systems and methods are provided for converting plastic waste into carbon pigment. Received polymer material such as plastic waste is degraded at 350-600° C. to form carbon-rich liquid and non-condensable syngas, and the carbon-rich liquid is then pyrolyzed at 1100-2200° C. to form carbon nanoparticles that may be used as carbon pigment. The syngas and possibly some of the form carbon-rich liquid may be used to provide heat to the system.
    Type: Application
    Filed: November 17, 2020
    Publication date: May 19, 2022
    Applicant: IsraZion Ltd.
    Inventor: David JACOB
  • Patent number: 11156540
    Abstract: A device is disclosed for determining characteristic parameters of the dimensions of nanoparticles in suspension in a liquid. The device emits an incident light beam that is linearly polarized along a polarization axis; a detecting unit comprising a measurement arm that is rotatable with respect to an axis of rotation, the detecting unit comprising first and second detection channels that are separated by a polarization-splitting element arranged in the measurement arm; a fixed sample holder receives a container of cylindrical symmetry of the sample, an axis of symmetry of the container being coincident with the axis of rotation of the measurement arm; and a control unit. The polarization-splitting element of the measurement arm is configured to simultaneously send, over each of the first and second detection channels, respectively, a first and second polarized component of the beam scattered by the sample.
    Type: Grant
    Filed: August 25, 2020
    Date of Patent: October 26, 2021
    Assignees: Cordouan Technologies, Centre National de la Recherche Scientifique, Universite De Bordeaux, Institut Polytechnique De Bordeaux
    Inventors: Florian Aubrit, David Jacob, Olivier Sandre
  • Publication number: 20210063296
    Abstract: According to one aspect, the subject of the present description is a device (100) for determining characteristic parameters of the dimensions of nanoparticles in suspension in a liquid. The device (100) comprises light-emitting means (101) configured to emit an incident light beam (Bi) that is linearly polarized along a polarization axis (P1); a detecting unit (102) comprising a measurement arm (120) that is rotatable with respect to an axis of rotation (?), said detecting unit comprising first and second detection channels (151, 161) that are separated by a polarization-splitting element (125) arranged in said measurement arm; a fixed sample holder (103), configured to receive a container (10) of cylindrical symmetry of said sample, an axis of symmetry of the container being coincident with the axis of rotation of the measurement arm; and a control unit (104).
    Type: Application
    Filed: August 25, 2020
    Publication date: March 4, 2021
    Applicants: Cordouan Technologies, Centre National de la Recherche Scientifique, UNIVERSITE DE BORDEAUX, INSTITUT POLYTECHNIQUE DE BORDEAUX
    Inventors: Florian Aubrit, David Jacob, Olivier Sandre
  • Patent number: 10903530
    Abstract: Improved anodes and cells are provided, which enable fast charging rates with enhanced safety due to much reduced probability of metallization of lithium on the anode, preventing dendrite growth and related risks of fire or explosion. Anodes and/or electrolytes have buffering zones for partly reducing and gradually introducing lithium ions into the anode for lithiation, to prevent lithium ion accumulation at the anode electrolyte interface and consequent metallization and dendrite growth. Various anode active materials and combinations, modifications through nanoparticles and a range of coatings which implement the improved anodes are provided.
    Type: Grant
    Filed: April 22, 2019
    Date of Patent: January 26, 2021
    Assignee: STOREDOT LTD.
    Inventors: David Jacob, Sergey Remizov, Nitzan Shadmi, Hani Farran, Daniel Aronov, Boris Brudnik
  • Patent number: 10637039
    Abstract: Methods, stacks and electrochemical cells are provided, which improve production processes and yield flexible and durable electrode stacks. Methods comprise depositing an electrode slurry on a sacrificial film to form an electrode thereupon, wherein the electrode slurry comprises a first solvent, attaching (e.g., laminating) a current collector film, which is produced at least partly using a second solvent, onto the formed electrode, to yield a stack, wherein a binding strength of the electrode to the current collector film is higher than a binding strength of the electrode to the sacrificial film, and delaminating the sacrificial film from the electrode while maintaining the attachment of the electrode to the current collector film. Additional layers such as a cell separator and an additional electrode may be further attached using similar steps.
    Type: Grant
    Filed: May 7, 2018
    Date of Patent: April 28, 2020
    Assignee: Storedot Ltd.
    Inventors: Sergey Remizov, Boris Brudnik, David Jacob, Daniel Aronov
  • Patent number: 10505181
    Abstract: Core-shell particles, composite anode material, anodes made therefrom, lithium ion cells and methods are provided, which enable production of fast charging lithium ion batteries. The composite anode material has core-shell particles which are configured to receive and release lithium ions at their cores and to have shells that are configured to allow for core expansion upon lithiation. The cores of the core-shell particles are connected to the respective shells by conductive material such as carbon fibers, which may form a network throughout the anode material and possibly interconnect cores of many core-shell particles to enhance the electrical conductivity of the anode. Ionic conductive material and possibly mechanical elements may be incorporated in the core-shell particles to enhance ionic conductivity and mechanical robustness toward expansion and contraction of the cores during lithiation and de-lithiation.
    Type: Grant
    Filed: October 25, 2017
    Date of Patent: December 10, 2019
    Assignee: StoreDot Ltd.
    Inventors: David Jacob, Sergey Remizov, Nitzan Shadmi, Hani Farran, Daniel Aronov
  • Patent number: 10468727
    Abstract: Methods of making anode active materials include milling graphite particles with carbohydrate particles to yield graphite-carbohydrate particles, milling the particles with anode material and carbonizing to form composite anode material particles. The anode active materials thus producted are provided with an at least partially porous carbon-graphite coating with both electronic and ionic conductivity.
    Type: Grant
    Filed: January 28, 2019
    Date of Patent: November 5, 2019
    Assignee: StoreDot Ltd.
    Inventors: David Jacob, Sergey Remizov, Nitzan Shadmi, Hani Farran, Daniel Aronov, Boris Brudnik
  • Patent number: 10461322
    Abstract: Core-shell particles, composite anode material, anodes made therefrom, lithium ion cells and methods are provided, which enable production of fast charging lithium ion batteries. The composite anode material has core-shell particles which are configured to receive and release lithium ions at their cores and to have shells that are configured to allow for core expansion upon lithiation. The cores of the core-shell particles are connected to the respective shells by conductive material such as carbon fibers, which may form a network throughout the anode material and possibly interconnect cores of many core-shell particles to enhance the electrical conductivity of the anode. Ionic conductive material and possibly mechanical elements may be incorporated in the core-shell particles to enhance ionic conductivity and mechanical robustness toward expansion and contraction of the cores during lithiation and de-lithiation.
    Type: Grant
    Filed: October 25, 2017
    Date of Patent: October 29, 2019
    Assignee: StoreDot Ltd.
    Inventors: David Jacob, Sergey Remizov, Nitzan Shadmi, Hani Farran, Daniel Aronov
  • Patent number: 10454101
    Abstract: Core-shell particles, composite anode material, anodes made therefrom, lithium ion cells and methods are provided, which enable production of fast charging lithium ion batteries. The composite anode material has core-shell particles which are configured to receive and release lithium ions at their cores and to have shells that are configured to allow for core expansion upon lithiation. The cores of the core-shell particles are connected to the respective shells by conductive material such as carbon fibers, which may form a network throughout the anode material and possibly interconnect cores of many core-shell particles to enhance the electrical conductivity of the anode. Ionic conductive material and possibly mechanical elements may be incorporated in the core-shell particles to enhance ionic conductivity and mechanical robustness toward expansion and contraction of the cores during lithiation and de-lithiation.
    Type: Grant
    Filed: January 25, 2017
    Date of Patent: October 22, 2019
    Assignee: Storedot Ltd.
    Inventors: David Jacob, Sergey Remizov, Nitzan Shadmi, Hani Farran, Daniel Aronov
  • Publication number: 20190319144
    Abstract: Methods of fabricating solar cells having junctions retracted from cleaved edges, and the resulting solar cells, are described. In an example, a solar cell includes a substrate having a light-receiving surface, a back surface, and sidewalls. An emitter region is in the substrate at the light-receiving surface of the substrate. The emitter region has sidewalls laterally retracted from the sidewalls of the substrate. A passivation layer is on the sidewalls of the emitter region.
    Type: Application
    Filed: April 11, 2019
    Publication date: October 17, 2019
    Inventors: Yafu Lin, David Jacob
  • Publication number: 20190252738
    Abstract: Improved anodes and cells are provided, which enable fast charging rates with enhanced safety due to much reduced probability of metallization of lithium on the anode, preventing dendrite growth and related risks of fire or explosion. Anodes and/or electrolytes have buffering zones for partly reducing and gradually introducing lithium ions into the anode for lithiation, to prevent lithium ion accumulation at the anode electrolyte interface and consequent metallization and dendrite growth. Various anode active materials and combinations, modifications through nanoparticles and a range of coatings which implement the improved anodes are provided.
    Type: Application
    Filed: April 22, 2019
    Publication date: August 15, 2019
    Applicant: StoreDot Ltd.
    Inventors: David JACOB, Sergey REMIZOV, Nitzan SHADMI, Hani FARRAN, Daniel ARONOV, Boris BRUDNIK
  • Patent number: 10367193
    Abstract: Improved anodes and cells are provided, which enable fast charging rates with enhanced safety due to much reduced probability of metallization of lithium on the anode, preventing dendrite growth and related risks of fire or explosion. Anodes and/or electrolytes have buffering zones for partly reducing and gradually introducing lithium ions into the anode for lithiation, to prevent lithium ion accumulation at the anode electrolyte interface and consequent metallization and dendrite growth. Various anode active materials and combinations, modifications through nanoparticles and a range of coatings which implement the improved anodes are provided.
    Type: Grant
    Filed: January 9, 2019
    Date of Patent: July 30, 2019
    Assignee: StoreDot Ltd.
    Inventors: Doron Burshtain, Sergey Remizov, David Jacob, Nitzan Shadmi, Hani Farran, Leora Shapiro, Ohad Goldbart, Boris Brudnik, Carmit Ophir, Daniel Aronov
  • Patent number: 10367191
    Abstract: Improved anodes and cells are provided, which enable fast charging rates with enhanced safety due to much reduced probability of metallization of lithium on the anode, preventing dendrite growth and related risks of fire or explosion. Anodes and/or electrolytes have buffering zones for partly reducing and gradually introducing lithium ions into the anode for lithiation, to prevent lithium ion accumulation at the anode electrolyte interface and consequent metallization and dendrite growth. Various anode active materials and combinations, modifications through nanoparticles and a range of coatings which implement the improved anodes are provided.
    Type: Grant
    Filed: April 6, 2017
    Date of Patent: July 30, 2019
    Assignee: StoreDot Ltd.
    Inventors: Doron Burshtain, Sergey Remizov, David Jacob, Nitzan Shadmi, Hani Farran, Leora Shapiro, Ohad Goldbart, Boris Brudnik, Carmit Ophir, Daniel Aronov
  • Publication number: 20190157727
    Abstract: Methods of making anode active materials include milling graphite particles with carbohydrate particles to yield graphite-carbohydrate particles, milling the particles with anode material and carbonizing to form composite anode material particles. The anode active materials thus producted are provided with an at least partially porous carbon-graphite coating with both electronic and ionic conductivity.
    Type: Application
    Filed: January 28, 2019
    Publication date: May 23, 2019
    Applicant: StoreDot Ltd.
    Inventors: David Jacob, Sergey Remizov, Nitzan Shadmi, Hani Farran, Daniel Aronov, Boris Brudnik
  • Publication number: 20190148713
    Abstract: Improved anodes and cells are provided, which enable fast charging rates with enhanced safety due to much reduced probability of metallization of lithium on the anode, preventing dendrite growth and related risks of fire or explosion. Anodes and/or electrolytes have buffering zones for partly reducing and gradually introducing lithium ions into the anode for lithiation, to prevent lithium ion accumulation at the anode electrolyte interface and consequent metallization and dendrite growth. Various anode active materials and combinations, modifications through nanoparticles and a range of coatings which implement the improved anodes are provided.
    Type: Application
    Filed: January 9, 2019
    Publication date: May 16, 2019
    Applicant: STOREDOT LTD.
    Inventors: Doron BURSHTAIN, Sergey REMIZOV, David JACOB, Nitzan SHADMI, Hani FARRAN, Leora SHAPIRO, Ohad GOLDBART, Boris BRUDNIK, Carmit OPHIR, Daniel ARONOV
  • Publication number: 20180254471
    Abstract: Methods, stacks and electrochemical cells are provided, which improve production processes and yield flexible and durable electrode stacks. Methods comprise depositing an electrode slurry on a sacrificial film to form an electrode thereupon, wherein the electrode slurry comprises a first solvent, attaching (e.g., laminating) a current collector film, which is produced at least partly using a second solvent, onto the formed electrode, to yield a stack, wherein a binding strength of the electrode to the current collector film is higher than a binding strength of the electrode to the sacrificial film, and delaminating the sacrificial film from the electrode while maintaining the attachment of the electrode to the current collector film. Additional layers such as a cell separator and an additional electrode may be further attached using similar steps.
    Type: Application
    Filed: May 7, 2018
    Publication date: September 6, 2018
    Applicant: StoreDot Ltd.
    Inventors: Sergey REMIZOV, Boris BRUDNIK, David JACOB, Daniel ARONOV
  • Publication number: 20180212236
    Abstract: Core-shell particles, composite anode material, anodes made therefrom, lithium ion cells and methods are provided, which enable production of fast charging lithium ion batteries. The composite anode material has core-shell particles which are configured to receive and release lithium ions at their cores and to have shells that are configured to allow for core expansion upon lithiation. The cores of the core-shell particles are connected to the respective shells by conductive material such as carbon fibers, which may form a network throughout the anode material and possibly interconnect cores of many core-shell particles to enhance the electrical conductivity of the anode. Ionic conductive material and possibly mechanical elements may be incorporated in the core-shell particles to enhance ionic conductivity and mechanical robustness toward expansion and contraction of the cores during lithiation and de-lithiation.
    Type: Application
    Filed: January 25, 2017
    Publication date: July 26, 2018
    Inventors: David JACOB, Sergey Remizov, Nitzan Shadmi, Hani Farran, Daniel Aronov