Abstract:
Some embodiments include methods of forming plasma-generating microstructures. Aluminum may be anodized to form an aluminum oxide body having a plurality of openings extending therethrough. Conductive liners may be formed within the openings, and circuitry may be formed to control current flow through the conductive liners. The conductive liners form a plurality of hollow cathodes, and the current flow is configured to generate and maintain plasmas within the hollow cathodes. The plasmas within various hollow cathodes, or sets of hollow cathodes, may be independently controlled. Such independently controlled plasmas may be utilized to create a pattern in a display, or on a substrate. In some embodiments, the plasmas may be utilized for plasma-assisted etching and/or plasma-assisted deposition. Some embodiments include constructions and assemblies containing multiple plasma-generating structures.
Abstract:
A structure of a panel which can be thinned down to about a panel thickness of a PDP and a manufacturing method thereof are provided. A gas filling hole is provided to a surface of a rear glass substrate of a PDP, the surface coming in contact with a front glass substrate of the PDP. Vacuuming and filling of a discharge gas are performed through the gas filling hole. After filling of the discharge gas, a mechanism for lifting solder iron up and down and supplying solder provided inside a chamber inserts a tip of an ultrasonic soldering iron into the gas filling hole to start supplying a solder which is a material for a plug sealant. When a series of forming steps of the plug sealant are finished, the ultrasonic soldering iron is retreated before the solder is solidified to finish formation of the plug sealant.
Abstract:
A float glass for a display substrate, characterized in that its composition consists essentially of, as represented by mass % based on oxide, from 52 to 62% of SiO2, from 5 to 15% of Al2O3, from more than 0% to 9% of MgO, from 3 to 12% of CaO, from 9 to 18% of SrO, from 0 to 13% of BaO, from 25 to 30% of MgO+CaO+SrO+BaO, from 6 to 14% of Na2O+K2O+Li2O, from 0 to 6% of ZrO2 and from 0 to 1% of SO3, the temperature of glass melt corresponding to the viscosity of 102 dPa·s is at most 1,520° C., the temperature of glass melt corresponding to the viscosity of 104 dPa·s is at most 1,120° C., the glass transition temperature is at least 610° C., and the specific gravity is at most 2.9.
Abstract translation:一种用于显示基板的浮法玻璃,其特征在于其组成基本上由以氧化物为基准的质量%表示,52至62%的SiO 2,5至15%的Al 2 O 3,大于0%至9% 的MgO,3〜12%的CaO,9〜18%的SrO,0〜13%的BaO,25〜30%的MgO + CaO + SrO + BaO,6〜14%的Na2O + K2O + Li 2 O,0〜6%的ZrO 2和0〜1%的SO 3,对应于粘度为102dPa·s的玻璃熔体的温度为1520℃以下,玻璃熔体的温度对应于粘度 104dPa·s为1100℃以下,玻璃化转变温度为610℃以上,比重为2.9以下。
Abstract:
To provide a glass plate for display panels which has a low 8203 content and a low compaction and which can be used as a glass substrate for large TFT panels.A glass plate for display panels, which comprises, as a glass matrix composition as represented by mass% based on oxide: SiO2 50.0 to 73.0, Al2O3 6.0 to 20.0, B2O3 0 to 2.0, MgO 4.2 to 9.0, CaO 0 to 6.0, SrO 0 to 2.0, BaO 0 to 2.0, MgO+CaO+SrO+BaO 6.5 to 11.3, Li2O 0 to 2.0, Na2O 2.0 to 18.0, K2O 0 to 13.0, and Li2O +Na2O+K2O 8.0 to 18.0, and has a heat shrinkage (C) of at most 20 ppm.
Abstract translation:提供具有低8203含量和低压实性的显示面板用玻璃板,可用作大型TFT面板用的玻璃基板。 一种显示面板用玻璃板,其特征在于,以氧化物质量%表示的玻璃基质组合物:SiO 2 50.0〜73.0,Al 2 O 3 6.0〜20.0,B 2 O 0〜2.0,MgO 4.2〜9.0,CaO 0〜6.0,SrO 0〜2.0,BaO 0〜2.0,MgO + CaO + SrO + BaO 6.5〜11.3,Li 2 O 0〜2.0,Na 2 O 2.0〜18.0,K 2 O〜13.0,Li 2 O + Na 2 O + K 2 O 8.0〜18.0, (C)为20ppm以下。
Abstract:
A plasma display apparatus includes an image data transmitter to convert an externally input image signal into image data and to transmit the converted image data, an image data receiver to receive the image data and to restore an image signal from the image data, and a data driver to supply the restored image signal to an address electrode of the plasma display panel through a switching operation. The image data may be transmitted as a differential signal.
Abstract:
Disclosed herein is a transparent electrode featuring the interposition of a nano-metal layer between a grid electrode on a transparent substrate and an electroconductive polymer layer, and a preparation method thereof. The transparent electrode can be produced in a continuous process at high productivity and low cost and can be applied to various display devices.
Abstract:
An optical filter including: a base film; and a function incorporation layer on the base film and for shielding electromagnetic interference and absorbing external light, the function incorporation layer having a cross mesh pattern, wherein the cross mesh pattern includes a plurality of pattern lines, and wherein at least a part of the cross mesh pattern protrudes from a surface of the function incorporation layer facing toward the reflection prevention layer.
Abstract:
A filter for a plasma display includes: a transparent substrate having a first surface and a second surface opposite to the first surface; a first external light shielding layer having a first pattern disposed on the first surface of the transparent substrate and having a mesh structure to shield electromagnetic waves and external light and a filter layer covering the first pattern and the first surface of the transparent substrate; a second external light shielding layer having a second pattern corresponding to the first pattern and formed on the filter layer to shield external light and an overcoating layer covering the second pattern and the filter layer; and a third external light shielding layer having a third pattern corresponding to the second pattern and formed on the overcoating layer to shield external light and a hard coating layer covering the third pattern to protect the third pattern.
Abstract:
A display filter for a display device can reduce moiré patterns and remove air pollutants. The display filter includes a transparent substrate located in front of a display module of the display device and an anti-glare layer provided at a front of the display filter which is exposed to the outside. The anti-glare layer contains photo-catalyst particles as filler.
Abstract:
A display filter includes a base layer having a plurality of structures, the plurality of structures being projected from a first surface of the base layer, an external light shielding layer on the plurality of structures, the external layer being on an upper surface and on a first side surface of the structures, and an electromagnetic wave shielding layer on the plurality of structures, the electromagnetic wave shielding layer being on the upper surface and on a second side surface of the structures, the first and second side surfaces of the structures being opposite each other, and a portion of the external light shielding layer being between the structures and a portion of the electromagnetic wave shielding layer.