Abstract:
A liquid crystal display according to exemplary embodiments of the present invention includes a first panel including a first lower substrate, a first lower electrode formed on the first lower substrate, a first upper substrate facing the first lower substrate, a first upper electrode formed on the first upper substrate, and a first cholesteric liquid crystal injected between the first lower electrode and the first upper electrode, wherein the first lower electrode includes carbon nanotubes. The liquid crystal display including the first lower electrode made of the carbon nanotubes without a light absorption layer provides a simple structure capable of realizing a black state.
Abstract:
Provided is a method for forming a high-hardness inorganic coating layer, which is capable of providing a coating layer having abrasion resistance, chemical resistance, contamination resistance, high hardness and non-flammability on a surface of a metal or non-ferrous metal substrate at room temperature. The method comprises cleaning a substrate surface to remove impurities; subjecting a substrate surface to ultrasonic cleaning; preparing a high-hardness inorganic coating composition; coating the substrate surface with the high-hardness inorganic coating composition to form a high-hardness coating layer; drying the high-hardness coating layer; and heating the substrate at a temperature of 250 to 27O0C to cure the high-hardness coating layer.
Abstract:
A transparent electrode for a display device includes a nanocarbon material and a dopant comprising at least one of aluminum, alumina, palladium, and gold. In some embodiments, the transparent electrode has excellent transparency and low resistance.
Abstract:
Provided is a substrate for a liquid crystal display which is resistant to deformation. The substrate includes a flexible substrate, first and second barrier layers respectively disposed on first and second surfaces of the flexible substrate, and first and second hard coating layers respectively disposed on the first and second barrier layers.
Abstract:
A method of manufacturing an electrophoretic display (“EPD”) device includes preparing a first substrate, forming a sealing line on the first substrate, primarily curing the sealing line, filling a capsule composition within an area of the first substrate, adhering an opposite substrate to the first substrate, and secondarily curing the sealing line.
Abstract:
An electrophoretic display device and a manufacturing method thereof are provided. The manufacturing method includes forming a first mother substrate that has a first thin structure, and forming a second mother substrate that has a second thin structure. The second mother substrate faces the first mother substrate. The manufacturing method also includes disposing an electrophoretic material on one of the first mother substrate and the second mother substrate, and enclosing a region on which the electrophoretic material is disposed with a sealant. The manufacturing method further includes combining the first mother substrate and the second mother substrate using pressure applied thereto to form an electrophoretic layer between the first mother substrate and the second mother substrate.
Abstract:
A method of manufacturing a flexible display includes the steps of coating an adhesive on a first surface of a flexible substrate or a supporter, adhering the first surface of the flexible substrate to the supporter using the adhesive, and forming a thin film pattern on a second surface of the flexible substrate. The flexible substrate and the supporter are prevented from bending during the manufacturing process even when the flexible substrate is large.
Abstract:
A method of manufacturing a flexible display device includes adhering a first substrate to a supporter, half cutting the first substrate to divide the first substrate into a first region and a second region, assembling the first substrate and a second substrate facing the first substrate, combining the first and second substrates, and removing the second region of the first substrate from the first region of the first substrate.
Abstract:
A method of manufacturing a flexible display is provided, which includes: adhering a plastic substrate on a supporter using an adhesive; forming a thin film pattern on the plastic substrate; and separating the plastic substrate from the supporter using a solvent including THF (tetrahydrofuran). In this manner, the plastic substrate may be tidily separated from the supporter by using THF.
Abstract:
A jig for delivering a plastic plate used to make a lighter and thinner liquid crystal display plate and a method of fabricating a liquid crystal display are provided. The jig includes a support substrate, an adhesive layer disposed at the support substrate, and an adhesive agent layer disposed at the adhesive layer and surrounded by the adhesive layer.