Patents by Inventor Yoonseob Kim

Yoonseob Kim 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: 20240145773
    Abstract: A composite solid-state electrolyte, a preparation method thereof and an all-solid-state lithium metal battery. The composite solid-state electrolyte includes a cationic poly(ionic liquid) as a matrix; and an ionic covalent organic framework, TpPa—SO3Li, as a filler. The method for preparing a composite solid-state electrolyte includes combining the poly(ionic liquid) with the ionic covalent organic framework to prepare the composite solid-state electrolyte. The composite solid-state electrolyte can have excellent ionic conductivity up to 1.23×10?3 Scm?1 and Li ion transport number (tLi+) up to 0.82 at room temperature. The composite solid-state electrolyte and the all-solid-state lithium metal battery containing the composite solid-state electrolyte provided by the present invention can achieve long-term safety while achieving high performance, and show great potential in the practical application of all-solid-state lithium metal batteries with high security.
    Type: Application
    Filed: October 12, 2023
    Publication date: May 2, 2024
    Inventors: Yoonseob KIM, Jun HUANG, Chen LI, Gitaek BANG
  • Publication number: 20240140969
    Abstract: Anthraquinone-based covalent organic frameworks; methods for preparing anthraquinone-based covalent organic frameworks; solid electrolyte interphases including the anthraquinone-based covalent organic frameworks; and electrochemical devices including the solid electrolyte interphases. The solid electrolyte interphases can exhibit enhanced transport of Li+. Battery cells including the solid electrolyte interphase exhibit improved reversible capacities.
    Type: Application
    Filed: October 12, 2023
    Publication date: May 2, 2024
    Inventors: Yoonseob KIM, Chen LI, Gerald Siu Hang POON HO, Jun HUANG, Gitaek BANG
  • Patent number: 11658322
    Abstract: A major challenge in the development of anion exchange membranes for fuel cells is the design and synthesis of highly stable (chemically and mechanically) and conducting membranes. Membranes that can endure highly alkaline environments while rapidly transporting hydroxides are desired. A design for using cross-linked polymer membranes is disclosed to produce ionic highways along charge delocalized pyrazolium and homoconjugated triptycenes. The ionic highway membranes show improved performance in key parameters. Specifically, a conductivity of 111.6 mS cm?1 at 80° C. was obtained with a low 7.9% water uptake and 0.91 mmol g?1 ion exchange capacity. In contrast to existing materials, these systems have higher conductivities at reduced hydration and ionic exchange capacities, emphasizing the role of the highway. The membranes retain more than 75% of initial conductivity after 30 days of alkaline stability test.
    Type: Grant
    Filed: November 3, 2020
    Date of Patent: May 23, 2023
    Assignee: Massachusetts Institute of Technology
    Inventors: Timothy Manning Swager, Jeffrey C. Grossman, Sibo Lin, Yoonseob Kim, Yanming Wang, Arthur France-Lanord, You-Chi Wu, Yifan Li, Yichong Wang
  • Publication number: 20210135265
    Abstract: A major challenge in the development of anion exchange membranes for fuel cells is the design and synthesis of highly stable (chemically and mechanically) and conducting membranes. Membranes that can endure highly alkaline environments while rapidly transporting hydroxides are desired. A design for using cross-linked polymer membranes is disclosed to produce ionic highways along charge delocalized pyrazolium and homoconjugated triptycenes. The ionic highway membranes show improved performance in key parameters. Specifically, a conductivity of 111.6 mS cm?1 at 80° C. was obtained with a low 7.9% water uptake and 0.91 mmol g?1 ion exchange capacity. In contrast to existing materials, these systems have higher conductivities at reduced hydration and ionic exchange capacities, emphasizing the role of the highway. The membranes retain more than 75% of initial conductivity after 30 days of alkaline stability test.
    Type: Application
    Filed: November 3, 2020
    Publication date: May 6, 2021
    Applicant: Massachusetts Institute of Technology
    Inventors: Timothy Manning Swager, Jeffrey C. Grossman, Sibo Lin, Yoonseob Kim, Yanming Wang, Arthur France-Lanord, You-Chi Wu, Yifan Li, Yichong Wang
  • Patent number: 10629324
    Abstract: New stretchable electrically conductive composite materials comprising at least one polymer and a plurality of nanoparticles are provided, which exhibit high conductivity even at high strain levels. The composite may comprise polyurethane as the polymer and spherical gold nanoparticles. Such materials have conductivity levels as high as 11,000 Scm?1 at 0% strain and 2,400 Scm?1 at 110% strain. Furthermore, certain embodiments of the composite have a maximum tensile strain of 480% while still exhibiting conductivity of 35 Scm?1. The inventive materials are highly flexible, highly conductive and suitable for a variety of applications, especially for advanced medical devices, implants, and flexible electronics. The disclosure also provides methods of making such stretchable electrically conductive nanocomposites, including formation by layer-by-layer and vacuum assisted flocculation.
    Type: Grant
    Filed: February 19, 2018
    Date of Patent: April 21, 2020
    Assignee: THE REGENTS OF THE UNIVERSITY OF MICHIGAN
    Inventors: Nicholas A. Kotov, Yoonseob Kim, Jian Zhu, Matthew Di Prima, Bongjun Yeom
  • Publication number: 20180174699
    Abstract: New stretchable electrically conductive composite materials comprising at least one polymer and a plurality of nanoparticles are provided, which exhibit high conductivity even at high strain levels. The composite may comprise polyurethane as the polymer and spherical gold nanoparticles. Such materials have conductivity levels as high as 11,000 Scm?1 at 0% strain and 2,400 Scm?1 at 110% strain. Furthermore, certain embodiments of the composite have a maximum tensile strain of 480% while still exhibiting conductivity of 35 Scm?1. The inventive materials are highly flexible, highly conductive and suitable for a variety of applications, especially for advanced medical devices, implants, and flexible electronics. The disclosure also provides methods of making such stretchable electrically conductive nanocomposites, including formation by layer-by-layer and vacuum assisted flocculation.
    Type: Application
    Filed: February 19, 2018
    Publication date: June 21, 2018
    Applicant: The Regents of The University of Michigan
    Inventors: Nicholas A. Kotov, Yoonseob Kim, Jian Zhu, Matthew Di Prima, Bongjun Yeom
  • Patent number: 9922746
    Abstract: New stretchable electrically conductive composite materials comprising at least one polymer and a plurality of nanoparticles are provided, which exhibit high conductivity even at high strain levels. The composite may comprise polyurethane as the polymer and spherical gold nanoparticles. Such materials have conductivity levels as high as 11,000 Scm?1 at 0% strain and 2,400 Scm?1 at 110% strain. Furthermore, certain embodiments of the composite have a maximum tensile strain of 480% while still exhibiting conductivity of 35 Scm?1. The inventive materials are highly flexible, highly conductive and suitable for a variety of applications, especially for advanced medical devices, implants, and flexible electronics. The disclosure also provides methods of making such stretchable electrically conductive nanocomposites, including formation by layer-by-layer and vacuum assisted flocculation.
    Type: Grant
    Filed: February 28, 2014
    Date of Patent: March 20, 2018
    Assignee: The Regents of The University of Michigan
    Inventors: Nicholas A. Kotov, Yoonseob Kim, Jian Zhu, Matthew Di Prima, Bongjun Yeom
  • Publication number: 20140249526
    Abstract: New stretchable electrically conductive composite materials comprising at least one polymer and a plurality of nanoparticles are provided, which exhibit high conductivity even at high strain levels. The composite may comprise polyurethane as the polymer and spherical gold nanoparticles. Such materials have conductivity levels as high as 11,000 Scm?1 at 0% strain and 2,400 Scm?1 at 110% strain. Furthermore, certain embodiments of the composite have a maximum tensile strain of 480% while still exhibiting conductivity of 35 Scm?1. The inventive materials are highly flexible, highly conductive and suitable for a variety of applications, especially for advanced medical devices, implants, and flexible electronics. The disclosure also provides methods of making such stretchable electrically conductive nanocomposites, including formation by layer-by-layer and vacuum assisted flocculation.
    Type: Application
    Filed: February 28, 2014
    Publication date: September 4, 2014
    Inventors: Nicholas A. Kotov, Yoonseob Kim, Jian Zhu, Matthew Di Prima, Bongjun Yeom