Patents by Inventor Sung Ui Hong
Sung Ui Hong 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: 9006749Abstract: Provided are a quantum dot laser diode and a method of manufacturing the same. The method of manufacturing a quantum dot laser diode includes the steps of: forming a grating structure layer including a plurality of gratings on a substrate; forming a first lattice-matched layer on the grating structure layer; forming at least one quantum dot layer having at least one quantum dot on the first lattice-matched layer; forming a second lattice-matched layer on the quantum dot layer; forming a cladding layer on the second lattice-matched layer; and forming an ohmic contact layer on the cladding layer. Consequently, it is possible to obtain high gain at a desired wavelength without affecting the uniformity of quantum dots, so that the characteristics of a laser diode can be improved.Type: GrantFiled: July 9, 2009Date of Patent: April 14, 2015Assignee: Electronics and Telecommunications Research InstituteInventors: Jin Soo Kim, Jin Hong Lee, Sung Ui Hong, Ho Sang Kwack, Byung Seok Choi, Dae Kon Oh
-
Publication number: 20110165716Abstract: A quantum dot laser diode and a method of fabricating the same are provided. The quantum dot laser diode includes: a first clad layer formed on an InP substrate; a first lattice-matched layer formed on the first clad layer; an active layer formed on the first lattice-matched layer, and including at least one quantum dot layer formed of an InAlAs quantum dot or an InGaPAs quantum dot which is grown by an alternate growth method; a second lattice-matched layer formed on the active layer; a second clad layer formed on the second lattice-matched layer; and an ohmic contact layer formed on the second clad layer.Type: ApplicationFiled: March 2, 2011Publication date: July 7, 2011Applicant: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTEInventors: Jin Soo KIM, Jin Hong LEE, Sung Ui HONG, Ho Sang KWACK, Byung Seok CHOI, Dae Kon OH
-
Patent number: 7907851Abstract: Provided is a self-oscillation communication module in which an optical device, a solar battery, and a radio frequency (RF) device are monolithic-integrated. When an active layer of the optical device contains In(Ga)As quantum dots, the optical device can emit light ranging from 800 to 1600 nm and transmit signals at a high speed of 20 Gbps or higher. Since a light absorption layer of the solar battery is formed of InGa(Al)P which has a higher bandgap than silicon and high visible light absorptivity, the solar battery can generate a large current even with a very small light reception area. Therefore, the self-oscillation communication module can always operate using the solar battery without an external power source even in polar regions and deserts and can perform optical communication or high-frequency wireless communication with a wide frequency range.Type: GrantFiled: December 7, 2005Date of Patent: March 15, 2011Assignee: Electronics and Telecommunications Research InstituteInventors: Dae-Kon Oh, Jin-Hong Lee, Jin-Soo Kim, Sung-Ui Hong, Byung-Seok Choi
-
Publication number: 20100260223Abstract: A quantum dot laser diode and a method of fabricating the same are provided. The quantum dot laser diode includes: a first clad layer formed on an InP substrate; a first lattice-matched layer formed on the first clad layer; an active layer formed on the first lattice-matched layer, and including at least one quantum dot layer formed of an InAlAs quantum dot or an InGaPAs quantum dot which is grown by an alternate growth method; a second lattice-matched layer formed on the active layer; a second clad layer formed on the second lattice-matched layer, and an ohmic contact layer formed on the second clad layer.Type: ApplicationFiled: December 4, 2006Publication date: October 14, 2010Inventors: Jin Soo Kim, Jin Hong Lee, Sung Ui Hong, Ho Sang Kwack, Byung Seok Choi, Dae Kon Oh
-
Patent number: 7749787Abstract: Provided is a method of forming quantum dots, including: forming a buffer layer on an InP substrate so as to be lattice-matched with the InP substrate; and sequentially alternately depositing In(Ga)As layers and InAl(Ga)As or In(Ga, Al, As)P layers that are greatly lattice-mismatched with each other on the buffer layer so as to form In(Ga, Al)As or In(Ga, Al, P)As quantum dots.Type: GrantFiled: November 14, 2005Date of Patent: July 6, 2010Assignee: Electronics and Telecommunications Research InstituteInventors: Jin Soo Kim, Jin Hong Lee, Sung Ui Hong, Byung Seok Choi, Ho Sang Kwack, Dae Kon Oh
-
Publication number: 20090296766Abstract: Provided are a quantum dot laser diode and a method of manufacturing the same. The method of manufacturing a quantum dot laser diode includes the steps of: forming a grating structure layer including a plurality of gratings on a substrate; forming a first lattice-matched layer on the grating structure layer; forming at least one quantum dot layer having at least one quantum dot on the first lattice-matched layer; forming a second lattice-matched layer on the quantum dot layer; forming a cladding layer on the second lattice-matched layer; and forming an ohmic contact layer on the cladding layer. Consequently, it is possible to obtain high gain at a desired wavelength without affecting the uniformity of quantum dots, so that the characteristics of a laser diode can be improved.Type: ApplicationFiled: July 9, 2009Publication date: December 3, 2009Inventors: Jin Soo Kim, Jin Hong Lee, Sung Ui Hong, Ho Sang Kwack, Byung Seok Choi, Dae Kon Oh
-
Patent number: 7606284Abstract: Provided is a distributed feedback semiconductor laser structure including: a first clad layer; a first ridge waveguide formed on the first clad layer; an active layer formed on the first ridge waveguide; a second ridge waveguide formed on the active layer; a second clad layer formed on the second ridge waveguide; an ohmic contact layer formed on the second clad layer; and a plurality of gratings formed in at least one of the first and second clad layers, making a predetermined angle with the first ridge waveguide or the second ridge waveguide, and periodically arranged in a longitudinal direction of the first or second ridge waveguide. As a result, a general hologram lithography process capable of mass production is applied to the present invention so that process time can be reduced. Also, a distributed feedback semiconductor laser structure using a quantum-dot active layer that does not require an additional process for obtaining a pure single-wavelength is provided.Type: GrantFiled: November 9, 2006Date of Patent: October 20, 2009Assignee: Electronics and Telecommunications Research InstituteInventors: Dae Kon Oh, Jin Hong Lee, Jin Soo Kim, Sung Ui Hong, Ho Sang Kwack
-
Publication number: 20090223565Abstract: Provided is a self-oscillation communication module in which an optical device, a solar battery, and a radio frequency (RF) device are monolithic-integrated. When an active layer of the optical device contains In(Ga)As quantum dots, the optical device can emit light ranging from 800 to 1600 nm and transmit signals at a high speed of 20 Gbps or higher. Since a light absorption layer of the solar battery is formed of InGa(Al)P which has a higher bandgap than silicon and high visible light absorptivity, the solar battery can generate a large current even with a very small light reception area. Therefore, the self-oscillation communication module can always operate using the solar battery without an external power source even in polar regions and deserts and can perform optical communication or high-frequency wireless communication with a wide frequency range.Type: ApplicationFiled: December 7, 2005Publication date: September 10, 2009Applicant: Electronics and Techcommunications Research InstituteInventors: Dae-Kon Oh, Jin-Hong Lee, Jin-Soo Kim, Sung-Ui Hong, Byung-Seok Choi
-
Patent number: 7575943Abstract: Provided are a quantum dot laser diode and a method of manufacturing the same. The method of manufacturing a quantum dot laser diode includes the steps of: forming a grating structure layer including a plurality of gratings on a substrate; forming a first lattice-matched layer on the grating structure layer; forming at least one quantum dot layer having at least one quantum dot on the first lattice-matched layer; forming a second lattice-matched layer on the quantum dot layer; forming a cladding layer on the second lattice-matched layer; and forming an ohmic contact layer on the cladding layer. Consequently, it is possible to obtain high gain at a desired wavelength without affecting the uniformity of quantum dots, so that the characteristics of a laser diode can be improved.Type: GrantFiled: December 1, 2006Date of Patent: August 18, 2009Assignee: Electronics and Telecommunications Research InstituteInventors: Jin Soo Kim, Jin Hong Lee, Sung Ui Hong, Ho Sang Kwack, Byung Seok Choi, Dae Kon Oh
-
Patent number: 7551662Abstract: A distributed feedback (DFB) quantum dot semiconductor laser structure is provided. The DFB quantum dot semi-conductor laser structure includes: a first clad layer formed on a lower electrode; an optical waveguide (WG) formed on the first clad layer; a grating structure layer formed on the optical WG and including a plurality of periodically disposed gratings; a first separate confinement hetero (SCH) layer formed on the grating structure layer; an active layer formed on the first SCH layer and including at least a quantum dot; a second SCH layer formed on the active layer; a second clad layer formed on the second SCH layer; an ohmic layer formed on the second clad layer; and an upper electrode formed on the ohmic layer. Accordingly, an optical WG is disposed on the opposite side of the active layer from the grating structure layer, thereby increasing single optical mode efficiency.Type: GrantFiled: November 24, 2006Date of Patent: June 23, 2009Assignee: Electronics and Telecommunications Research InstituteInventors: Dae Kon Oh, Jin Hong Lee, Jin Soo Kim, Sung Ui Hong, Byung Seok Choi, Hyun Soo Kim, Sung Bock Kim
-
Patent number: 7508857Abstract: Provided are a semiconductor laser diode and a method of manufacturing the same. The semiconductor laser diode includes a lower cladding layer disposed on a substrate; a ridge including an optical waveguide layer, an active layer, an upper cladding layer, and an ohmic contact layer, which are sequentially stacked on the lower cladding layer, and having a predetermined width, which is obtained by performing a channel etching process on both sides of the ridge; an oxide layer disposed on surfaces of the upper and lower cladding layer to control the width of the ridge; a dielectric layer disposed on left and right channels of the ridge; an upper electrode layer disposed on the entire surface of the resultant structure to enclose the ridge and the dielectric layer; and a lower electrode layer disposed on a bottom surface of the substrate. The method is simpler than a conventional process of manufacturing a semiconductor laser diode.Type: GrantFiled: November 2, 2005Date of Patent: March 24, 2009Assignee: Electronics and Telecommunications Research InstituteInventors: Sung Ui Hong, Jin Hong Lee, Jin Soo Kim, Ho Sang Kwack, Dae Kon Oh
-
Publication number: 20080279243Abstract: A distributed feedback (DFB) quantum dot semiconductor laser structure is provided. The DFB quantum dot semi-conductor laser structure includes: a first clad layer formed on a lower electrode; an optical waveguide (WG) formed on the first clad layer; a grating structure layer formed on the optical WG and including a plurality of periodically disposed gratings; a first separate confinement hetero (SCH) layer formed on the grating structure layer; an active layer formed on the first SCH layer and including at least a quantum dot; a second SCH layer formed on the active layer; a second clad layer formed on the second SCH layer; an ohmic layer formed on the second clad layer; and an upper electrode formed on the ohmic layer. Accordingly, an optical WG is disposed on the opposite side of the active layer from the grating structure layer, thereby increasing single optical mode efficiency.Type: ApplicationFiled: November 24, 2006Publication date: November 13, 2008Applicant: Electronics and Telecommunications Research InstituteInventors: Dae Kon OH, Jin Hong Lee, Jin Soo Kim, Sung Ui Hong, Byung Seok Choi, Hyun Soo Kim, Sung Bock Kim
-
Publication number: 20070133639Abstract: Provided is a distributed feedback semiconductor laser structure including: a first clad layer; a first ridge waveguide formed on the first clad layer; an active layer formed on the first ridge waveguide; a second ridge waveguide formed on the active layer; a second clad layer formed on the second ridge waveguide; an ohmic contact layer formed on the second clad layer; and a plurality of gratings formed in at least one of the first and second clad layers, making a predetermined angle with the first ridge waveguide or the second ridge waveguide, and periodically arranged in a longitudinal direction of the first or second ridge waveguide. As a result, a general hologram lithography process capable of mass production is applied to the present invention so that process time can be reduced. Also, a distributed feedback semiconductor laser structure using a quantum-dot active layer that does not require an additional process for obtaining a pure single-wavelength is provided.Type: ApplicationFiled: November 9, 2006Publication date: June 14, 2007Inventors: Dae Kon Oh, Jin Hong Lee, Jin Soo Kim, Sung Ui Hong, Ho Sang Kwack
-
Publication number: 20060222027Abstract: Provided is a method of forming quantum dots, including: forming a buffer layer on an InP substrate so as to be lattice-matched with the InP substrate; and sequentially alternately depositing In(Ga)As layers and InAl(Ga)As or In(Ga, Al, As)P layers that are greatly lattice-mismatched with each other on the buffer layer so as to form In(Ga, Al)As or In(Ga, Al, P)As quantum dots.Type: ApplicationFiled: November 14, 2005Publication date: October 5, 2006Inventors: Jin Soo Kim, Jin Hong Lee, Sung Ui Hong, Byung Seok Choi, Ho Sang Kwack, Dae Kon Oh
-
Publication number: 20060120428Abstract: The distributed feedback semiconductor laser includes: a lower clad layer formed on a substrate; a ridge including an active layer and an upper clad layer sequentially formed on the lower clad layer; and a grating formed at a sidewall or both sidewalls of the ridge including the active layer in a direction perpendicular to the active layer and a resonance axis so as to enable a single longitudinal mode oscillation. The grating has parallel grooves that are equally spaced at a period equal to an integer multiple of half of an oscillation wavelength ? (n?/2, n=1, 2, 3 . . . ).Type: ApplicationFiled: November 14, 2005Publication date: June 8, 2006Inventors: Dae Kon Oh, Jin Hong Lee, Jin Soo Kim, Sung Ui Hong, Ho Sang Kwack
-
Publication number: 20040216660Abstract: Provided is a method of forming quantum dots in which the quantum dots are formed on a thin InxGa1-xAs strained layer. The In(Ga)As quantum dots can be applied to an active layer of an optical device such as a laser diode or an optical detector.Type: ApplicationFiled: December 12, 2003Publication date: November 4, 2004Inventors: Jin Soo Kim, Won Seok Han, Jin Hong Lee, Sung Ui Hong, Ho Sang Kwack, Dae Kon Oh
-
Patent number: RE45071Abstract: Provided are a semiconductor laser diode and a method of manufacturing the same. The semiconductor laser diode includes a lower cladding layer disposed on a substrate; a ridge including an optical waveguide layer, an active layer, an upper cladding layer, and an ohmic contact layer, which are sequentially stacked on the lower cladding layer, and having a predetermined width, which is obtained by performing a channel etching process on both sides of the ridge; an oxide layer disposed on surfaces of the upper and lower cladding layer to control the width of the ridge; a dielectric layer disposed on left and right channels of the ridge; an upper electrode layer disposed on the entire surface of the resultant structure to enclose the ridge and the dielectric layer; and a lower electrode layer disposed on a bottom surface of the substrate. The method is simpler than a conventional process of manufacturing a semiconductor laser diode.Type: GrantFiled: March 24, 2011Date of Patent: August 12, 2014Assignee: Electronics and Telecommunications Research InstituteInventors: Sung Ui Hong, Jin Hong Lee, Jin Soo Kim, Ho Sang Kwack, Dae Kon Oh