Abstract:
A touch panel integrated liquid crystal display panel, includes a liquid crystal display panel displaying a picture by driving liquid crystal, a polarizer formed at the top of the liquid crystal display panel, and a touch panel with a separation tag extending outwards from at least one side of the top of the polarizer.
Abstract:
An array substrate for a liquid crystal display device includes: a substrate; a gate line on the substrate; a gate insulating layer on the gate line; a data line on the gate insulating layer, the data line crossing the gate line; a data link line extending from the data line; a data pad connected to the data link line; a redundancy line adjacent to the data link line; a passivation layer covering the data link line, the data pad and the redundancy line, the passivation layer having a data link line contact hole exposing the data link line, first and second redundancy line contact holes exposing the redundancy line and a data pad contact hole exposing the data pad; a data pad terminal connected to the data pad through the data pad contact hole and to the redundancy line through the first redundancy line contact hole; a redundancy electrode connected to the redundancy line through the second redundancy line contact hole and to the data link line through the data link line contact hole; and a pixel electrode on the passivation layer.
Abstract:
An apparatus for driving a liquid crystal display that includes a normal driving interval for providing normal driving of the liquid crystal display with a real-data signal after a reset period, wherein the liquid crystal display includes a liquid crystal between pixel and common electrodes in which the liquid crystal is transitioned from a splay state into a bend state at a voltage difference between the pixel and common electrodes greater than a transition voltage. The apparatus includes a reset circuit for setting a voltage difference between the pixel electrode and the common electrode during the reset period to be larger than an average voltage of the real-data signal in said normal driving interval and a controller for controlling voltages that are supplied to at least one of the pixel electrode and the common electrode.
Abstract:
An organic electro luminescence device includes a gate line for supplying a gate signal, a data line for supplying image information that crosses the gate line, a pixel area adjacent to where the gate line and the data line cross over each other, an organic emitting layer formed in the pixel area, a switching unit for switching image information supplied from the data line in response to the gate signal supplied from the gate line, a driving unit for applying an electric field across the organic emitting layer according to the image information supplied through the switching unit and a power line for providing the driving unit with a source voltage, wherein at least one of the gate line, data line and power line is a three-layer structure having an intermediate layer made of copper.
Abstract:
A liquid crystal display device and a method of fabricating the same are disclosed in the present invention. The device includes first and second substrates bonded to each other, each having a liquid crystal display panel region divided into an active area and a dummy area, a sealant in a periphery of the liquid crystal display panel region bonding the first and second substrates to each other, at least one column spacer both in the dummy area and outside the liquid crystal display panel region maintaining a cell gap between the first and second substrates, and a liquid crystal layer between the first and second substrates.
Abstract:
A liquid crystal display device and a method of fabricating the same are disclosed in the present invention. The liquid crystal display device includes first and second substrates facing into each other, a sealant outside a liquid crystal display panel region between the first and second substrates, a first column spacer surrounded by the sealant, and a liquid crystal layer between the first and second substrates.
Abstract:
A method of driving a liquid crystal display in which frames having data values indicate the gray scale for liquid crystal in a display panel including the steps of determining a modulating data value for a first temperature interval within a temperature range, storing the modulating data as look-up table, sensing a temperature of a display panel, and modulating the input signal to the liquid crystal display based upon the sensed temperature.
Abstract:
The present invention discloses an etchant for etching at least two different metal layers, the etchant comprising hydrogen peroxide (H2O2) and one of carboxylic acid, carboxylate salt, and acetyl group (CH3COnull). The present invention also discloses a method of fabricating a metal wiring on a substrate, the method comprising forming a first metal layer on a substrate, forming a second metal layer on the first metal layer, and simultaneously etching the first metal layer and the second metal layer with an etchant comprising hydrogen peroxide (H2O2) and one of carboxylic acid, carboxylate salt, and acetyl group (CH3COnull)
Abstract translation:本发明公开了用于蚀刻至少两种不同金属层的蚀刻剂,所述蚀刻剂包括过氧化氢(H 2 O 2)和羧酸,羧酸盐和乙酰基(CH 3 CO-)之一。 本发明还公开了一种在基板上制造金属布线的方法,该方法包括在基板上形成第一金属层,在第一金属层上形成第二金属层,同时蚀刻第一金属层和第二金属 含有过氧化氢(H 2 O 2)和羧酸,羧酸盐和乙酰基(CH 3 CO-)之一的蚀刻剂的层,
Abstract:
The present invention discloses an apparatus and method for data-driving a liquid crystal display wherein data lines are time-divided to reduce the number of data driver integrated circuits and to improve the display quality of a picture at the same time. More specifically, the apparatus includes a first multiplexor array applying an input pixel data on a time-division basis, a digital-to-analog converter array converting the time-divided pixel data into pixel voltage signals, and a demultiplexor array performing the pixel voltage signals to the time-divided data lines.
Abstract:
A method of fabricating a liquid crystal display device includes forming a thin film transistor array on an active area of a first substrate, forming a color filter layer and a black matrix layer on a second substrate, forming a sealant along a peripheral portion of the second substrate, bonding the first and second substrates, and hardening the sealant by exposure to light, wherein the black matrix layer and the sealant are offset and do not overlap each other.