Abstract:
본 발명의 일 실시예에 따른 유기발광 다이오드의 제조 방법은 기판 상에 애노드 전극을 형성하는 것, 상기 애노드 전극 상에 유기 발광층을 형성하는 것, 상기 유기 발광층 상에 캐소드 전극을 형성하는 것, 및 상기 캐소드 전극 상에 광산란 필름을 형성하는 것을 포함하되, 상기 광산란 필름은 이방성 결정으로 이루어진 다결정 유전체 물질이며, 상기 유전체 물질의 입자의 이방성 결정 성장에 의해서 상기 광산란 필름의 상면은 Ra가 50nm 이상인 표면 거칠기를 갖는다.
Abstract:
본 발명의 일 실시예에 따른 유기발광 다이오드의 형성방법은 유기용액과 무기용액을 혼합하여 액상 유기 입자들을 포함하는 에멀전을 제조하는 것, 상기 에멀전을 기판 상에 도포하는 것, 상기 액상 유기 입자들을 경화하여 고상 유기 입자들을 형성하는 것, 및 상기 무기용액을 경화시켜 상기 기판 상에 광 산란층을 형성하는 것을 포함한다.
Abstract:
A method for manufacturing an organic scattering layer according to one embodiment of the present invention includes the steps of: providing a deposition device which includes a reaction chamber and a source chamber; fixing a substrate in the reaction chamber; supplying transfer gas of 25 to 50 degrees centigrade to the source chamber which is connected to the reaction chamber and supplies the evaporated organic material source; spraying the transfer gas and the evaporated organic material source to the reaction chamber through a shower head; and forming the organic scattering layer with a non-uniform surface by depositing organic particles formed by the molecule of the evaporated organic material source on the substrate.
Abstract:
The optical touch panel according to the present invention includes an optical waveguide which delivers an optical signal; a light source unit which generates an optical signal and provides the signal for the optical waveguide; and a light detector which measures the intensity of the optical signal which has passed through the optical waveguide. An optical waveguide includes multiple sensor units, and is connected to one corresponding light detector. Each sensor unit is configured to form a pre-fabricated pattern so that the light signals which are to be detected in the light detector have different intensities. [Reference numerals] (110) Light source unit; (130) Light detector; (AA) Light generation unit 1; (BB) Light generation unit 2; (CC) Light generation unit n; (DD) Light detector 1; (EE) Light detector 2; (FF) Light detector n
Abstract:
PURPOSE: An optical touch panel is provided to reduce the distance between a sensing surface and the upper surface of a sensing core unit. CONSTITUTION: An optical waveguide comprises a sensing part(120) having a sensing surface(121) and a passing part(130) having a non-sensing surface(131). A core(151) comprises a sensing core part(161) of the sensing part and a passing core part(171) of the passing part. The distance between the sensing surface and upper surface of the sensing core part is shorter than the distance between the non-sensing surface and upper surface of the passing core part.
Abstract:
Provided is imide compounds used for manufacturing a thick film for an optical waveguide, which can have a low degree of light loss. Imide compounds for an optical waveguide comprises a composition represented by the formula 1. In the formula 1, X is a halogen element; and Ar1 has one structure selected from the group consisting of A1 and A2. In the formula A1 and A2, R1, R2, R3, R4, R5, and R6 are independently H, and X or - (Y1) n-Z; at least one of R1 and R2 is -(Y1)n-Z; at least one of R3, R4, R5 and R6 is -(Y1)n-Z; m is 0 or 1; Y2 is selected from the group consisting of -O-, -S-, -C(CF3)2-, -C(CH3)2-, -CO-, -SO-, -SO2-, or -CH2-; and a is an integer of 1 to 100.
Abstract:
A photoelectric bus module is provided to perform an electrical communication process as well as an optical communication process by using an optical element and an electrical wiring. A photoelectric distribution unit(300) includes an optical waveguide(301), at least one first electrical wiring(302), and a concave or convex fine structure(303). The concave or convex fine structure is formed at a lower part of a structure including the optical waveguide and the first electrical wiring. An optical bench(103,203) includes a concave or convex fine structure which is formed at a part corresponding to the fine structure formed in the photoelectric distribution unit. A photoelectric element is mounted in the optical bench in order to perform an optical communication process. The optical bench further includes at least one second electrical wiring to be electrically connected to the semiconductor chip.
Abstract:
본 발명의 광통신 모듈은 발광 모듈, 수광 모듈 및 발광 모듈과 수광 모듈을 연결하는 플랙시블(flexible) 광도파로 소자를 포함한다. 발광 모듈은 제1 기판 상에 제1 요부(凹部)를 포함하는 제1 광학 벤치 및 발광 소자와, 제1 요부 내부로 끼워지는(삽입되는) 제1 철부(凸部)를 갖고 발광 소자와 광 정렬되는 제1 광도파로를 구비하는 제1 광도파로 소자를 포함한다. 발광 소자와 제1 광도파로 소자가 자동적으로 광결합된다. 수광 모듈은 제2 기판 상에 제2 요부(凹部)를 포함하는 제2 광학 벤치 및 수광 소자와, 제2 요부 내부로 끼워지는(삽입되는) 제2 철부(凸部)를 갖고 수광 소자와 광 정렬되는 제2 광도파로를 구비하는 제2 광도파로 소자를 포함한다. 수광 소자와 제2 광도파로 소자가 자동적으로 광결합된다.
Abstract:
A photoelectric connector module and a photoelectric communicating module including the same are provided to facilitate a formation of a photoelectric communicating structure between semiconductor chips by aligning a photoelectric element and an optical waveguide automatically. A photoelectric connector module includes an optical waveguide unit(109) and a connector unit(108). The optical waveguide unit includes an optical waveguide(111) for transmitting an optical signal. The connector unit is coupled with the optical waveguide unit in order to fix the optical waveguide unit by using a printed circuit board. A photoelectric element and a semiconductor chip(114) are mounted on the printed circuit board. A first coupling part(110) having a convex portion and a concave portion is formed at a lower part of the connection unit. The first coupling part is coupled with a second coupling part(105) having a concavo-convex structure.