Patents by Inventor Ye Lin

Ye Lin 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: 11171322
    Abstract: Provided herein are a positive electrode for a secondary battery and a secondary battery including the same. The positive electrode includes a positive electrode active material layer including a positive electrode active material, a conductive material, and a dispersant, wherein the conductive material includes bundle-type carbon nanotubes, units of which have an average strand diameter of 15 nm or less, and the positive electrode active material layer has a packing density of 3.0 g/cc or more, and has an average pore diameter of 0.1 ?m to 0.5 ?m at the packing density when a pore size distribution is measured by mercury intrusion porosimetry, and thus may exhibit excellent electrolyte wetting properties. As a result, when the positive electrode is applied to a battery, wetting time of the positive electrode is shortened, and an area of the positive electrode that is not filled with an electrolyte is reduced, resulting in enhanced battery performance.
    Type: Grant
    Filed: December 8, 2016
    Date of Patent: November 9, 2021
    Inventors: Jong Heon Seol, Min Hee Lee, Dong Kyu Kim, Jae Woong Kim, Ye Lin Kim, Sang Hoon Choy, Je Young Kim, Sun Kyu Kim
  • Patent number: 11145870
    Abstract: A method of producing an infiltrated solid oxide fuel cell (SOFC) layer. The method begins by infiltrating a solution containing a solute into a SOFC layer to produce a primary SOFC layer. The primary SOFC layer is then dried in a heated environment, wherein the heated environment ranges in temperature from about 25° C. to about 100° C. to produce a dry primary SOFC layer. The dry primary SOFC layer is then cooled at a rate less than about 5° C./min to room temperature to produce a cooled primary SOFC layer. The cooled primary SOFC layer is then heated to a temperature greater than 500° C. then quenching to a temperature from about 10° C. to about 30° C. to produce an infiltrated SOFC layer.
    Type: Grant
    Filed: December 11, 2019
    Date of Patent: October 12, 2021
    Assignee: Phillips 66 Company
    Inventors: Ye Lin, Ying Liu, Mingfei Liu
  • Patent number: 11108050
    Abstract: The present invention provides a conductive material dispersed liquid including a conductive material which includes bundle-type carbon nanotubes; a dispersant which includes a hydrogenated nitrile-based rubber; and a dispersion medium, where a complex modulus (|G*| @ 1 Hz) is in a range of 20 to 500 Pa when measured by a rheometer at a frequency of 1 Hz, and a secondary battery manufactured using the same. The conductive material dispersed liquid has a controlled complex modulus to exhibit excellent dispersibility and powder resistance characteristics, and as a result, can greatly improve the output characteristics of batteries.
    Type: Grant
    Filed: March 24, 2017
    Date of Patent: August 31, 2021
    Inventors: Ye Lin Kim, Ki Yeon Jo, Jung Keun Yoo, Je Young Kim, Sang Hoon Choy, Jong Heon Seol
  • Publication number: 20210257677
    Abstract: A Li-ion thin film microbattery, a microbattery array, a method of fabricating a Li-ion thin film microbattery and a method of fabricating a microbattery array. The Li-ion thin film microbattery comprises a Li-free cathode comprising a transition metal oxide thin film; an anode comprising a lithiated Ge or Si thin film; and an electrolyte film disposed between the cathode and the anode; wherein a Li-source of the Li-ion thin film microbattery is provided by means of the lithiated Ge or Si thin film.
    Type: Application
    Filed: February 26, 2021
    Publication date: August 19, 2021
    Applicants: MASSACHUSETTS INSTITUTE OF TECHNOLOGY, NATIONAL UNIVERSITY OF SINGAPORE
    Inventors: Daniele Perego, Rajamouly Omampuliyur Swaminathan, Ye Lin Thu, Shao-Horn Yang, Wee Kiong Choi, Carl Vernette Thompson, II
  • Publication number: 20210249665
    Abstract: A cathode in a solid oxide fuel cell containing AgPrCoO3. The operating temperature range of the cathode is from about 400° C. to about 850° C.
    Type: Application
    Filed: February 8, 2021
    Publication date: August 12, 2021
    Applicant: PHILLIPS 66 COMPANY
    Inventors: Ye Lin, Ying Liu
  • Publication number: 20210224769
    Abstract: A smart street parking management system includes a smart street parking meter a smart cloud parking management server connected to the smart street parking meter through a wireless networking technology and configured to regularly receive parking information of a vehicle parked on a smart street parking grid and status information of the smart street parking meter uploaded by the smart street parking meter. The status information of the smart street parking meter includes an empty-space status of the street parking grid detected by the smart street parking meter and a battery status of a rechargeable battery of the smart street parking meter. The parking information of the vehicle includes the plate number of the vehicle, the parking fee of the vehicle, and a payment status of the parking fee of the vehicle.
    Type: Application
    Filed: May 15, 2020
    Publication date: July 22, 2021
    Inventors: Chi-Chia Sun, Yong-Ye Lin
  • Patent number: 11050061
    Abstract: The present invention provides: a conductive material dispersed liquid containing a conductive material, a dispersant, and a dispersion medium, wherein the conductive material comprises bundle-type carbon nanotubes having a bulk density in a range of 10-50 kg/m3 and a conductivity satisfying the conditions of Equation 1 below, thereby exhibiting excellent dispersibility and conductivity; and a lithium secondary battery, which is manufactured using the conductive material dispersed liquid and thus can exhibit excellent battery functions, especially, excellent output characteristics at low temperatures: ?X?10 log R??0.6X??[Equation 1] (in Equation 1 above, X is a bulk density of the carbon nanotubes, and R is a powder resistance of the carbon nanotubes under a pressure of 10 to 65 MPa.).
    Type: Grant
    Filed: October 28, 2016
    Date of Patent: June 29, 2021
    Inventors: Ye Lin Kim, Jong Heon Seol, Kyung Yeon Kang, Sang Hoon Choy, Ji Hee Woo, Dong Hyun Cho
  • Publication number: 20210104338
    Abstract: A method for producing a composite conductive material having excellent dispersibility is provided. The method includes supporting a catalyst on surfaces of carbon particles; heat treating the catalyst in a helium or hydrogen atmosphere such that the catalyst penetrate the surfaces of the carbon particles and are impregnated beneath the surfaces of the carbon particles at a contact point between the carbon particles and the impregnated catalyst; and heating the carbon particles having the impregnated catalyst disposed therein in the presence of a source gas to grow carbon nanofibers from the impregnated catalyst to form a composite conductive material, wherein the source gas contains a carbon source, and wherein the carbon nanofibers extend from the contact point to above the surfaces of the carbon particles.
    Type: Application
    Filed: December 9, 2020
    Publication date: April 8, 2021
    Applicant: LG Chem, Ltd.
    Inventors: Tea Gon Kim, Je Young Kim, Hak Yoon Kim, Ki Won Sung, Ye Lin Kim, Joo Yul Baek, Jung Keun Yoo, Jun Muk Lim, Seul Ki Kim
  • Patent number: 10950689
    Abstract: A semiconductor device 100 comprising a substrate 102 having a through-substrate via hole 106, the through-substrate via hole 106 having formed therein: a first capacitor electrode layer 110a and a second capacitor electrode layer 110b, and a dielectric material layer 112 disposed between the first capacitor electrode layer 110a and the second capacitor electrode layer 110b; and a through-substrate via conductor 116. A method of forming a semiconductor device 100, the semiconductor device 100 comprising a through-substrate via hole 106, the method comprising forming, in the through-substrate via hole 106: a first capacitor electrode layer 110a and a second capacitor electrode layer 110b, and a dielectric material layer 112 disposed between the first capacitor electrode layer 110a and the second capacitor electrode layer 110b; and a through-substrate via conductor 116.
    Type: Grant
    Filed: September 21, 2016
    Date of Patent: March 16, 2021
    Assignee: Nanyang Technological University
    Inventors: Ye Lin, Chuan Seng Tan
  • Publication number: 20210029305
    Abstract: Provided is a method for adding a video special effect. The method includes acquiring an image frame in a video, and recognizing a target human joint point of a user in the image frame; when a position of the target human joint point in the image frame satisfies a joint position condition, using the image frame as a target image frame and acquiring at least two consecutive image frames before the target image frame; determining a motion state of the target human joint point according to the target human joint point recognized in the at least two consecutive image frames; when the target human joint point satisfies a joint motion condition, acquiring a video special effect matching the video special effect condition; and adding, at a video position associated with the target image frame in the video, the video special effect matching the video special effect condition.
    Type: Application
    Filed: September 15, 2020
    Publication date: January 28, 2021
    Inventors: Tang TANG, Yu MENG, Manyi CHEN, Ye LIN, Ye CHEN
  • Patent number: 10902968
    Abstract: The present invention provides a composite conductive material having excellent dispersibility and a method for producing the same. In an embodiment, the method includes supporting a catalyst on surfaces of carbon particles; heat treating the catalyst in a helium or hydrogen atmosphere such that the catalyst penetrate the surfaces of the carbon particles and are impregnated beneath the surfaces of the carbon particles at a contact point between the carbon particles and the impregnated catalyst; and heating the carbon particles having the impregnated catalyst disposed therein in the presence of a source gas to grow carbon nanofibers from the impregnated catalyst to form a composite conductive material, wherein the source gas contains a carbon source, and wherein the carbon nanofibers extend from the contact point to above the surfaces of the carbon particles.
    Type: Grant
    Filed: June 8, 2018
    Date of Patent: January 26, 2021
    Inventors: Tea Gon Kim, Je Young Kim, Hak Yoon Kim, Ki Won Sung, Ye Lin Kim, Joo Yul Baek, Jung Keun Yoo, Jun Muk Lim, Seul Ki Kim
  • Publication number: 20200358116
    Abstract: A method for determining the oxygen surface exchange property of a material in a solid oxide fuel cell. The method begins by first receiving a data stream comprising of continuous weight measurements of the material and time measurements of when the continuous weight measurements of the material are taken. While receiving the data stream an oxygen concentration test is performed which involves: flowing a primary gas flow onto the material while simultaneously increasing the temperature of the primary gas flow to a set temperature, flowing the primary gas flow onto the material at the set temperature, and stopping the primary gas flow and starting a secondary gas flow at the set temperature. This data stream is then displayed analyzing the weight change of the material over time.
    Type: Application
    Filed: April 29, 2020
    Publication date: November 12, 2020
    Applicant: PHILLIPS 66 COMPANY
    Inventors: Ye Lin, Ying Liu, Paul Michael Alvey
  • Publication number: 20200355592
    Abstract: A method for determining the oxygen surface exchange property of a material in a solid oxide fuel cell. The method begins by first receiving a data stream comprising of continuous weight measurements of the material and time measurements of when the continuous weight measurements of the material are taken. While receiving the data stream an oxygen concentration test is performed which involves: flowing a degradation gas flow onto the cathode material while simultaneously increasing the temperature of the primary gas flow to a set temperature, flowing the degradation gas flow onto the material at the set temperature, stopping the degradation gas flow and starting a primary gas flow at the set temperature, flowing the primary gas flow onto the material at the set temperature, and stopping the primary gas flow and starting a secondary gas flow at the set temperature. This data stream is then displayed analyzing the weight change of the material over time.
    Type: Application
    Filed: April 29, 2020
    Publication date: November 12, 2020
    Applicant: PHILLIPS 66 COMPANY
    Inventors: Ye Lin, Ying Liu, Paul Michael Alvey
  • Publication number: 20200358125
    Abstract: The present invention relates to an electrode assembly for a secondary battery. The electrode assembly for the secondary battery comprises a radical unit comprising first and second electrode sheets each of which is folded so that both ends thereof overlap each other; and a first separator folded several times and having an upper folded portion into which the first electrode sheet is coupled to be fitted and a lower folded portion into which the second electrode sheet is coupled to be fitted, wherein, in the radical unit, the folded portions of the first and second electrode sheets are cut to form two first electrodes and two second electrodes, which are completely separated from each other, and the first electrode, the first separator, the second electrode, the first separator, the first electrode, the first separator, and the second electrode successively stacked.
    Type: Application
    Filed: July 30, 2020
    Publication date: November 12, 2020
    Applicant: LG Chem, Ltd.
    Inventors: Jin Young Son, Hyun Won Lee, Do Hwa Jung, Ye Lin Kim
  • Publication number: 20200343541
    Abstract: A positive electrode and a secondary battery including the same are provided. The positive electrode includes a current collector and a positive electrode active material layer disposed on the current collector, wherein the positive active material layer includes a positive electrode active material, a binder, and a multi-walled carbon nanotube, wherein the multi-walled carbon nanotube has an average length of 1-2 ?m and has a length standard deviation of 0.5 ?m or less.
    Type: Application
    Filed: February 1, 2019
    Publication date: October 29, 2020
    Applicant: LG Chem, Ltd.
    Inventors: Jung Woo Yoo, Ye Lin Kim, Tae Gon Kim
  • Patent number: 10797339
    Abstract: The present invention relates to an electrode assembly for a secondary battery. The electrode assembly for the secondary battery comprises a radical unit comprising first and second electrode sheets each of which is folded so that both ends thereof overlap each other; and a first separator folded several times and having an upper folded portion into which the first electrode sheet is coupled to be fitted and a lower folded portion into which the second electrode sheet is coupled to be fitted, wherein, in the radical unit, the folded portions of the first and second electrode sheets are cut to form two first electrodes and two second electrodes, which are completely separated from each other, and the first electrode, the first separator, the second electrode, the first separator, the first electrode, the first separator, and the second electrode successively stacked.
    Type: Grant
    Filed: June 16, 2016
    Date of Patent: October 6, 2020
    Assignee: LG Chem, Ltd.
    Inventors: Jin Young Son, Hyun Won Lee, Do Hwa Jung, Ye Lin Kim
  • Patent number: 10727477
    Abstract: The present invention provides a conductive material dispersed liquid, including: a conductive material which includes bundle-type carbon nanotubes; a dispersant; a dispersion medium, where a phase angle is in a range of 3° to 18° when measured by a rheometer at a frequency of 1 Hz; and a lithium secondary battery manufactured using the conductive material dispersed liquid. The conductive material dispersed liquid has high solid-like properties, and thus allows the formation of an electrode active material layer having a uniform thickness with no concern for collapse or occurrence of cracks during manufacture of an electrode, and thereby can improve the performance characteristics, particularly capacity characteristics, of a battery.
    Type: Grant
    Filed: October 28, 2016
    Date of Patent: July 28, 2020
    Assignee: LG Chem, Ltd.
    Inventors: Ye Lin Kim, Ki Yeon Jo, Jung Keun Yoo, Je Young Kim, Sang Hoon Choy, Jong Heon Seol
  • Publication number: 20200212508
    Abstract: A Li-ion thin film microbattery, a microbattery array, a method of fabricating a Li-ion thin film microbattery and a method of fabricating a microbattery array. The Li-ion thin film microbattery comprises a Li-free cathode comprising a transition metal oxide thin film; an anode comprising a lithiated Ge or Si thin film; and an electrolyte film disposed between the cathode and the anode; wherein a Li-source of the Li-ion thin film microbattery is provided by means of the lithiated Ge or Si thin film.
    Type: Application
    Filed: July 28, 2017
    Publication date: July 2, 2020
    Applicants: MASSACHUSETTS INSTITUTE OF TECHNOLOGY, NATIONAL UNIVERSITY OF SINGAPORE
    Inventors: Daniele PEREGO, Rajamouly OMAMPULIYUR SWAMINATHAN, Ye Lin Thu (No Family Name), Shao-Horn YANG, Wee Kiong CHOI, Carl Vernette THOMPSON, II
  • Publication number: 20200194801
    Abstract: A method of producing an infiltrated solid oxide fuel cell (SOFC) layer. The method begins by infiltrating a solution containing a solute into a SOFC layer to produce a primary SOFC layer. The primary SOFC layer is then dried in a heated environment, wherein the heated environment ranges in temperature from about 25° C. to about 100° C. to produce a dry primary SOFC layer. The dry primary SOFC layer is then cooled at a rate less than about 5° C./min to room temperature to produce a cooled primary SOFC layer. The cooled primary SOFC layer is then heated to a temperature greater than 500° C. then quenching to a temperature from about 10° C. to about 30° C. to produce an infiltrated SOFC layer.
    Type: Application
    Filed: December 11, 2019
    Publication date: June 18, 2020
    Applicant: PHILLIPS 66 COMPANY
    Inventors: Ye Lin, Ying Liu, Mingfei Liu
  • Publication number: 20200194803
    Abstract: A method of producing an infiltrated solid oxide fuel cell (SOFC) layer. The method begins by infiltrating a solution containing a solute into a SOFC layer to produce a primary SOFC layer. The primary SOFC layer is then dried in a heated environment, wherein the heated environment ranges in temperature from about 25° C. to about 100° C. to produce a dry primary SOFC layer. The dry primary SOFC layer is then cooled at a rate less than about 5° C./min to room temperature to produce a cooled primary SOFC layer. The cooled primary SOFC layer is then heated to a temperature greater than 500° C. then quenching to a temperature from about 10° C. to about 30° C. to produce an infiltrated SOFC layer.
    Type: Application
    Filed: December 11, 2019
    Publication date: June 18, 2020
    Applicant: PHILLIPS 66 COMPANY
    Inventors: Ye Lin, Ying Liu, Mingfei Liu