Patents by Inventor Chong-Yun Kang

Chong-Yun Kang 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: 20190189884
    Abstract: A thermoelectric composite material includes MXene inserted at a boundary of a crystal grain consisting of a thermoelectric material. Accordingly, the thermoelectric composite material may have a reduced thermal conductivity and an increased electrical conductivity. Furthermore, a mechanical property of the thermoelectric composite material may be improved. Thus, the thermoelectric composite material may improve a thermoelectric ability of a thermoelectric module.
    Type: Application
    Filed: June 4, 2018
    Publication date: June 20, 2019
    Applicant: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Jin-Sang KIM, Chong-Min KOO, Seung-Hyub BAEK, Seong-Keun KIM, Chong-Yun KANG, Soon-Man HONG, Seung-Sang HWANG, Ji-Won CHOI, Seok-Jin YOON, Kwang-Chon KIM, Kyung-Youl BAEK, Sang-Ho CHO
  • Patent number: 10217928
    Abstract: Disclosed is a curved piezoelectric device maximizing an electrical potential of the piezoelectric material corresponding to an external mechanical stress.
    Type: Grant
    Filed: May 18, 2016
    Date of Patent: February 26, 2019
    Assignee: Korea Institute of Science and Technology
    Inventors: Chong Yun Kang, Seok Jin Yoon, Jin Sang Kim, Ji-Won Choi, Seung Hyub Baek, Seong Keun Kim, Woo-Suk Jung, Beomjin Kwon
  • Publication number: 20190033618
    Abstract: Disclosed herein is a smart wearable lens mounted with an all-solid-state thin film secondary battery including a flexible substrate, a cathode current collector, a cathode, a solid electrolyte, an anode, and an anode current collector. The smart wearable lens mounted with the all-solid-state thin film secondary battery may be stably and continuously supplied with power and has a low self-discharge rate. In addition, the smart wearable lens may minimize aversion when humans are wearing the smart wearable lens and be suitably used for a curved lens, especially a micro-lens such as a contact lens.
    Type: Application
    Filed: July 25, 2018
    Publication date: January 31, 2019
    Inventors: Ji-Won CHOI, Yong-Won SONG, Hyunjung YI, Jin Sang KIM, Chong Yun KANG, Seong Keun KIM, Seung Hyub BAEK, Sang Tae KIM, Hyun Seok LEE
  • Publication number: 20180358146
    Abstract: The present disclosure relates to a paste for ohmic contact to p-type semiconductor, including a metal oxide and a binder, wherein the metal oxide is a rhenium oxide or a molybdenum oxide.
    Type: Application
    Filed: May 29, 2018
    Publication date: December 13, 2018
    Inventors: Ji-Won CHOI, Jin Sang KIM, Chong Yun KANG, Seong Keun KIM, Seung Hyub BAEK, Sang Tae KIM, Won Jae LEE, Narendra Singh PARMAR, Young-Shin LEE
  • Publication number: 20180247941
    Abstract: A capacitor for a semiconductor memory element includes a lower electrode, a dielectric layer disposed on the lower electrode and including titanium oxide, and an upper electrode disposed on the dielectric layer. The lower electrode includes a first metal and a second metal, the first metal including at least one selected from the group consisting of platinum (Pt), osmium (Os), rhodium (Rh) and palladium (Pd), the second metal including at least one selected from the group consisting of ruthenium (Ru) and iridium (Ir).
    Type: Application
    Filed: July 13, 2017
    Publication date: August 30, 2018
    Applicant: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Seong Keun KIM, Jung Joon PYEON, Cheol Jin CHO, Sangtae KIM, Doo Seok JEONG, Seung-Hyub BAEK, Chong-Yun KANG, Ji-Won CHOI, Jin-Sang KIM
  • Patent number: 10062699
    Abstract: A capacitor for a semiconductor memory element includes a lower electrode, a dielectric layer disposed on the lower electrode and including titanium oxide, and an upper electrode disposed on the dielectric layer. The lower electrode includes a first metal and a second metal, the first metal including at least one selected from the group consisting of platinum (Pt), osmium (Os), rhodium (Rh) and palladium (Pd), the second metal including at least one selected from the group consisting of ruthenium (Ru) and iridium (Jr).
    Type: Grant
    Filed: July 13, 2017
    Date of Patent: August 28, 2018
    Assignee: Korea Institute of Science and Technology
    Inventors: Seong Keun Kim, Jung Joon Pyeon, Cheol Jin Cho, Sangtae Kim, Doo Seok Jeong, Seung-Hyub Baek, Chong-Yun Kang, Ji-Won Choi, Jin-Sang Kim
  • Publication number: 20180138386
    Abstract: A method for manufacturing a thermoelectric material is provided. According to the method, a first shaped body is formed from a thermoelectric powder, of which a crystal has a layer structure. An extruded body is formed by extruding the first shaped body. A plurality of cut-off pieces are formed by cutting the extruded body along a cross-section perpendicular to an extrusion direction. A second shaped body is formed by stacking and pressing the cut-off pieces along a direction perpendicular to the extrusion direction.
    Type: Application
    Filed: May 31, 2017
    Publication date: May 17, 2018
    Applicant: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Jin-Sang KIM, Seung-Hyub Baek, Seong-Keun Kim, Dow-Bin Hyun, Beomjin Kwon, Ji-Won Choi, Chong-Yun Kang, Im-Jun Roh
  • Publication number: 20180059080
    Abstract: A highly sensitive carbon-nanomaterial-based gas sensor for use in high-humidity environments and a method of improving the sensitivity thereof, the gas sensor being configured such that a functional group for binding to a water molecule is formed on the surface of a first detector composed of a carbon nanomaterial, whereby a hydronium ion (H3O+) is produced and thus an additional ion conduction path is formed, thereby obtaining an additional reaction path in high-humidity environments, ultimately improving the sensitivity and detection threshold of the sensor. The gas sensor includes a substrate, a first detector disposed on the substrate, electrodes electrically connected to the first detector, and a second detector disposed on the first detector, wherein the second detector has a hydrophilic functional group.
    Type: Application
    Filed: September 1, 2017
    Publication date: March 1, 2018
    Inventors: Seong Chan JUN, Youngmo JUNG, Seok LEE, Taikjin LEE, Chulki KIM, Chong Yun KANG, Sang Kyung KIM
  • Publication number: 20160365501
    Abstract: Disclosed is a curved piezoelectric device maximizing an electrical potential of the piezoelectric material corresponding to an external mechanical stress.
    Type: Application
    Filed: May 18, 2016
    Publication date: December 15, 2016
    Applicant: Korea Institute of Science and Technology
    Inventors: Chong Yun KANG, Seok Jin YOON, Jin Sang KIM, Ji-Won CHOI, Seung Hyub BAEK, Seong Keun KIM, Woo-Suk JUNG, Beomjin KWON
  • Publication number: 20160133917
    Abstract: A method of fabricating a cathode for a thin film battery includes depositing a cathode active material on a substrate, and crystallizing the cathode active material by irradiating laser onto the cathode active material. The cathode active material may be deposited on the substrate at normal temperature, and a light and easily processable polymer substrate may be used by crystallizing the cathode active material at low temperature using laser. A thin film battery including the cathode fabricated by the above method has excellent charging/discharging characteristics such as high discharge capacity.
    Type: Application
    Filed: July 17, 2015
    Publication date: May 12, 2016
    Applicant: Korea Institute of Science and Technology
    Inventors: Ji-Won CHOI, Seok Jin YOON, Jin Sang KIM, Chong Yun KANG, Seung Hyub BAEK, Seong Keun KIM, Beomjin KWON, Haena YIM
  • Patent number: 9285332
    Abstract: The present disclosure provides a gas sensor including: a substrate; an electrode formed on the substrate; and a gas-sensing layer formed on the electrode, wherein the gas-sensing layer is a self-heating nanocolumnar structure having nanocolumns formed on the electrode and inclined with respect to the electrode with an angle of 60-89° and gas diffusion pores formed between the nanocolumns. The gas sensor according to the present disclosure requires no additional heater since it self-heats owing to the nanocolumnar structure and exhibits superior gas sensitivity even when no heat is applied from outside. Also, it can be mounted on mobile devices such as mobile phones because it consumes less power.
    Type: Grant
    Filed: April 11, 2014
    Date of Patent: March 15, 2016
    Assignee: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Ho Won Jang, Seok Jin Yoon, Jin Sang Kim, Chong Yun Kang, Ji Won Choi, Hi Gyu Moon
  • Patent number: 9118000
    Abstract: Provided are a method of manufacturing a flexible piezoelectric energy harvesting device using a piezoelectric composite, and a flexible piezoelectric energy harvesting device manufactured by the same. The method of manufacturing the flexible piezoelectric energy harvesting device includes: forming a first electrode layer on a first flexible substrate; spin-coating a piezoelectric composite layer on the first electrode layer, wherein the piezoelectric composite layer is produced by mixing piezoelectric powder with polymer; performing heat treatment on the piezoelectric composite layer to harden the piezoelectric composite layer; and bonding a second flexible substrate with a second electrode layer on the hardened piezoelectric composite layer. Therefore, it is possible to simplify a manufacturing process and manufacture a high-performance flexible piezoelectric energy harvesting device having various sizes and patterns.
    Type: Grant
    Filed: October 30, 2012
    Date of Patent: August 25, 2015
    Assignee: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Chong Yun Kang, Seok Jin Yoon, Young Ho Do, Ji Won Choi, Hyun Cheol Song, Seung Hyub Baek, Jin Sang Kim
  • Patent number: 8890142
    Abstract: Provided is an oxide electronic device, including: an oxide substrate; an oxide thin film layer formed on the oxide substrate and containing an oxide that is heterogeneous with respect to the oxide substrate; and a ferroelectric layer formed on the oxide thin film layer and controlling electric conductivity of two-dimensional electron gas (2DEG) generated at an interface between the oxide substrate and the oxide thin film layer. Provided also is a method for manufacturing an oxide electronic device, including: depositing, on an oxide substrate, an oxide that is heterogeneous with respect to the oxide substrate to form an oxide thin film layer; and forming a ferroelectric layer on the oxide thin film layer, wherein the ferroelectric layer controls electric conductivity of 2DEG generated at an interface between the oxide substrate and the oxide thin film layer.
    Type: Grant
    Filed: February 22, 2013
    Date of Patent: November 18, 2014
    Assignee: Korea Institute of Science and Technology
    Inventors: Seung Hyub Baek, Shin Ik Kim, Jin Sang Kim, Ji Won Choi, Seok Jin Yoon, Chong Yun Kang
  • Patent number: 8828845
    Abstract: Provided is a method of fabricating an oxide thin film device using laser lift-off and an oxide thin film device fabricated by the same. The method includes: forming an oxide thin film on a growth substrate; bonding a temporary substrate on the oxide thin film; irradiating laser onto the growth substrate to separate the oxide thin film on which the temporary substrate has been bonded from the growth substrate; bonding a device substrate on the oxide thin film on which the temporary substrate has been bonded; and forming an upper electrode film on the oxide thin film. Therefore, it is possible to overcome problems caused by a defective layer by transferring an oxide thin film transferred on a polymer-based temporary substrate onto a device substrate, without using an interface on which a defective layer formed due to oxygen diffusion upon laser lift-off is formed.
    Type: Grant
    Filed: December 13, 2012
    Date of Patent: September 9, 2014
    Assignee: Korea Institute of Science and Technology
    Inventors: Chong Yun Kang, Seok Jin Yoon, Young Ho Do, Ji Won Choi, Seung Hyub Baek, Hyun Cheol Song, Jin Sang Kim
  • Publication number: 20140217404
    Abstract: The present disclosure provides a gas sensor including: a substrate; an electrode formed on the substrate; and a gas-sensing layer formed on the electrode, wherein the gas-sensing layer is a self-heating nanocolumnar structure having nanocolumns formed on the electrode and inclined with respect to the electrode with an angle of 60-89° and gas diffusion pores formed between the nanocolumns. The gas sensor according to the present disclosure requires no additional heater since it self-heats owing to the nanocolumnar structure and exhibits superior gas sensitivity even when no heat is applied from outside. Also, it can be mounted on mobile devices such as mobile phones because it consumes less power.
    Type: Application
    Filed: April 11, 2014
    Publication date: August 7, 2014
    Applicant: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Ho Won JANG, Seok Jin YOON, Jin Sang KIM, Chong Yun KANG, Ji Won CHOI, Hi Gyu MOON
  • Patent number: 8785924
    Abstract: Disclosed are a high-sensitivity transparent gas sensor and a method for manufacturing the same. The transparent gas sensor includes a transparent substrate, a transparent electrode formed on the transparent substrate and a transparent gas-sensing layer formed on the transparent electrode. The transparent gas-sensing layer has a nanocolumnar structure having nanocolumns formed on the transparent electrode and gas diffusion pores formed between the nanocolumns.
    Type: Grant
    Filed: July 6, 2012
    Date of Patent: July 22, 2014
    Assignee: Korea Institute of Science and Technology
    Inventors: Ho Won Jang, Seok Jin Yoon, Jin Sang Kim, Chong Yun Kang, Ji Won Choi, Hi Gyu Moon
  • Publication number: 20130334930
    Abstract: Provided are a method of manufacturing a flexible piezoelectric energy harvesting device using a piezoelectric composite, and a flexible piezoelectric energy harvesting device manufactured by the same. The method of manufacturing the flexible piezoelectric energy harvesting device includes: forming a first electrode layer on a first flexible substrate; spin-coating a piezoelectric composite layer on the first electrode layer, wherein the piezoelectric composite layer is produced by mixing piezoelectric powder with polymer; performing heat treatment on the piezoelectric composite layer to harden the piezoelectric composite layer; and bonding a second flexible substrate with a second electrode layer on the hardened piezoelectric composite layer. Therefore, it is possible to simplify a manufacturing process and manufacture a high-performance flexible piezoelectric energy harvesting device having various sizes and patterns.
    Type: Application
    Filed: October 30, 2012
    Publication date: December 19, 2013
    Applicant: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Chong Yun KANG, Seok Jin YOON, Young Ho DO, Ji Won CHOI, Hyun Cheol SONG, Seung Hyub BAEK, Jin Sang KIM
  • Publication number: 20130334522
    Abstract: Provided is a method of fabricating an oxide thin film device using laser lift-off and an oxide thin film device fabricated by the same. The method includes: forming an oxide thin film on a growth substrate; bonding a temporary substrate on the oxide thin film; irradiating laser onto the growth substrate to separate the oxide thin film on which the temporary substrate has been bonded from the growth substrate; bonding a device substrate on the oxide thin film on which the temporary substrate has been bonded; and forming an upper electrode film on the oxide thin film. Therefore, it is possible to overcome problems caused by a defective layer by transferring an oxide thin film transferred on a polymer-based temporary substrate onto a device substrate, without using an interface on which a defective layer formed due to oxygen diffusion upon laser lift-off is formed.
    Type: Application
    Filed: December 13, 2012
    Publication date: December 19, 2013
    Applicant: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Chong Yun Kang, Seok Jin Yoon, Young Ho Do, Ji Won Choi, Seung Hyub Baek, Hyun Cheol Song, Jin Sang Kim
  • Publication number: 20130314842
    Abstract: Provided are a thin film condenser for high-density packaging, a method for manufacturing the same and a high-density package substrate. The thin film condenser for high-density packaging, includes: a support substrate; a lower electrode formed on the support substrate; a dielectric thin film formed on the lower electrode; and an upper electrode formed on the dielectric thin film. Provided also is a method for manufacturing the same. The high-density package substrate, includes: at least two stacked substrates; thin film condensers embedded in the stacked substrates; an internal connection electrode formed in the stacked substrates and connecting the thin film condensers in series or in parallel; a surface electrode formed on the surface of the outermost substrate among the stacked substrates and connected to the internal connection electrode; and an integrated circuit connected to the surface electrode via a bump.
    Type: Application
    Filed: November 15, 2012
    Publication date: November 28, 2013
    Applicant: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Chong Yun KANG, Min Gyu KANG, Seok Jin YOON, Ji Won CHOI, Seung Hyub BAEK, Jin Sang KIM
  • Publication number: 20130146865
    Abstract: Disclosed are a high-sensitivity transparent gas sensor and a method for manufacturing the same. The transparent gas sensor includes a transparent substrate, a transparent electrode formed on the transparent substrate and a transparent gas-sensing layer formed on the transparent electrode. The transparent gas-sensing layer has a nanocolumnar structure having nanocolumns formed on the transparent electrode and gas diffusion pores formed between the nanocolumns.
    Type: Application
    Filed: July 6, 2012
    Publication date: June 13, 2013
    Applicant: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
    Inventors: Ho Won JANG, Seok Jin YOON, Jin Sang KIM, Chong Yun KANG, Ji Won CHOI, Hi Gyu MOON