Abstract:
The present invention relates to a metal oxide organic solution for forming a high refractive film, a manufacturing method thereof and a manufacturing method of a high refractive film using the same and, more specifically, to a manufacturing method of a metal oxide organic solution for forming a high refractive film in which metal oxides and organic solvents are hydrogen-bonded, comprising: a step of preparing metal oxide precursors; a step of preparing organic solvents having a carbonyl group; a step of forming metal oxide by sol-gel reaction of the metal oxide precursors under the presence of acidic catalysts; and a step of making the metal oxides react with the organic solvents.
Abstract:
A light emitting device according to the embodiment of the present invention includes an organic light emitting device layer which is formed on a substrate, a sealing layer which is provided on the substrate and covers the organic light emitting device layer, a barrier layer which is separated from the organic light emitting layer on the substrate, a panel light emitting layer which is provided between the sealing layer and the barrier layer, and an adhesive layer which is extended along the edge of the substrate and surrounds the organic light emitting device layer and the panel light emitting layer. The panel light emitting layer includes a getter part and an adhesive part which are alternatively arranged. The getter part has a square cross section. The cross section with a lattice pattern is provided by the getter part and the adhesive part.
Abstract:
According to the present invention, an organic light emitting device includes a base substrate; a polycrystalline scattering layer arranged on one side of the base substrate; a first electrode layer arranged on the base substrate; an organic light emitting layer arranged on the first electrode layer; and a second electrode layer arranged on the organic light emitting layer. The polycrystalline scattering layer increases the light efficiency of the organic light emitting device.
Abstract:
A hybrid light emitting device by an embodiment of the present invention comprises a first light emitting unit, a capping layer, and a second light emitting unit on a substrate. The first light emitting unit includes generates light with a first wavelength and includes a first electrode, an organic light emitting layer, and a second electrode laminated on the substrate in order. The second light emitting unit emits light with a second wavelength. The capping layer is interposed between the organic light emitting layer and the second light emitting unit. The capping layer reflects the light with the first wavelength and transmits the light with the second wavelength. The hybrid light emitting device by the present invention improves brightness by the combination of the first and second light emitting units and the formation of the capping layer. The hybrid light emitting device easily produces a desired color.
Abstract:
A method for manufacturing an organic light emitting device according to one embodiment of the present invention forms a light scattering layer having an uneven structure at low temperatures. The method for manufacturing the organic light emitting device comprises a step for forming a precursor layer on a substrate; a step for successively forming a metal layer and an organic layer on the precursor layer; a step for forming an organic mask from the organic layer by using heat processing; a step for forming a metal mask by patterning the metal layer; a step for forming the light scattering layer having the uneven structure by patterning the precursor layer; and a step for removing the organic mask and the metal mask. The present invention is provided to be performed at low temperatures, thereby forming light scattering layers in various organic light emitting devices. The light scattering layer is provided to improve light extraction efficiency for light in every wavelength, thereby enabling the present invention to be applied to an organic white light emitting diode.
Abstract:
PURPOSE: An organic light emitting device is provided to improve the surface roughness of a planarization layer by laminating a plurality of planarization layers on an uneven layer. CONSTITUTION: A first electrode is formed on a substrate. A second electrode is formed on the first electrode. An organic light emitting layer is formed between the first electrode and the second electrode. An uneven layer (120) is formed between the substrate and the first electrode. A planarization layer (130) is formed between the uneven layer and the first electrode.
Abstract:
PURPOSE: An organic electroluminescent device is provided to emit first and second wavelength lights with high efficiency using a capping layer for reflecting the first wavelength light and transferring the second wavelength light. CONSTITUTION: A first light emitting unit(230) is formed on a substrate(210) to emit first wavelength light. The first light emitting unit includes a first transparent electrode(231), a first organic light emitting layer(233), and a second transparent electrode(235). A second light emitting unit(330) emits second wavelength light. The second light emitting unit includes a third transparent electrode(331), a second organic light emitting layer(333), and a fourth transparent electrode(335). A capping layer(250) is laminated between the first organic light emitting layer and the second organic light emitting layer. The capping layer reflects the first wavelength light and transfers the second wavelength light.
Abstract:
PURPOSE: An organic electroluminescent device is provided to improve a color rendering index using a fluorescent substance for changing the light generated from a light emitting unit into different wavelength light. CONSTITUTION: A first light emitting unit(230) for emitting first wavelength light is formed on a substrate(210). A first light emitting unit comprises a first transparent electrode(231), a first organic light emitting layer(233), and a second transparent electrode(235). A second light emitting unit(330) for emitting second wave length light is formed on the first light emitting unit. The second light emitting unit includes a third transparent electrode(331), a second organic light emitting layer(333), and a fourth reflective electrode(335). A fluorescent substance(270) receives the light of the first and the second light emitting unit, and changes the light into different wavelength light.
Abstract:
본 발명은 광신호 조절 장치에 관한 것으로, 두 편광 모드의 광신호에 대해 서로 다른 색 분산 조절 특성을 나타내는 색 분산 조절부; 및 외부로부터 입력되는 상기 광신호를 수신하고, 상기 광신호의 편광 상태를 상기 색 분산 조절부의 편광 모드 중 하나에 해당하는 편광 상태로 변환한 후 상기 색 분산 조절부로 전달하는 편광 변환부를 포함하여 구성되며, 이에 의하여 광섬유 전송로에서 누적되어 발생되는 색 분산 및 편광 모드 분산 효과를 효과적으로 조절 또는 보상할 수 있다. 광 분산 보상, 색 분산, 편광 모드 분산