Abstract:
A liquid crystal display (LCD) panel includes first and second substrates, and a liquid crystal layer interposed between the first and second substrates. The first substrate includes gate lines, data lines, a storage line and a pixel electrode. The gate lines extend along a first direction. The data lines extend along a second direction crossing the first direction, and the gate and data lines define a unit pixel. The storage line includes a first line portion extending along the second direction in the unit pixel. The pixel electrode divides the unit pixel into first and second domains. A second substrate faces the first substrate and includes a common electrode having a first hole formed on the common electrode, and the first hole is overlapped with the storage line. The first hole and the storage line are overlapped with each other, so that an opening ratio may be enhanced.
Abstract:
A liquid crystal display includes: a first substrate; a gate line formed on the first substrate; a data line intersecting the gate line; a thin film transistor connected to the gate line and to the data line; a pixel electrode electrically connected to the thin firm transistor, including first and second sub-electrodes, and overlapping with a portion of the data line; a storage electrode line formed on the first substrate, disposed between the first and second sub-electrodes, and including an overlapped portion with the pixel electrode; a second substrate arranged facing the first substrate; a common electrode formed on the second substrate and including a cutout corresponding to the first and second sub-electrodes; and a liquid crystal layer formed between the common electrode and the pixel electrode.
Abstract:
Provided is a flat panel display device and a method for fabricating the same. The flat panel display device comprises a first substrate, a light emitting unit, a second substrate, and insulating films. The light emitting unit comprises thin film transistors positioned on the first substrate, a first electrode electrically connecting with the thin film transistors, a second electrode facing the first electrode, and an emission layer or a liquid crystal layer interposed between the first and second electrodes. The second substrate is sealed with the first substrate by an ultraviolet curing sealant, and has a greater thermal expansion coefficient than the first substrate. The insulating films are positioned on one or more surfaces of the first and/or second substrates.
Abstract:
A liquid crystal display panel capable of preventing flicker and improving reflectance include a thin film transistor substrate having a gate line, a data line, a thin film transistor connected to the gage and data lines, and a reflective electrode connected to the thin film transistor and covering at least part of the gate line, a color filter substrate having a color filter and a common electrode forming an electric field with the reflective electrode. Liquid crystals are disposed between the thin film transistor substrate and the color filter substrate. The reflective electrode shields the liquid crystals from a gate signal.
Abstract:
A thin film transistor (TFT) array panel exhibiting reduced residual images includes: an insulation substrate; gate lines formed on the insulation substrate; storage electrode lines formed between gate lines on the insulation substrate and including a plurality of storage electrodes; data lines crossing the gate lines and the storage electrode lines; TFTs each having first to third terminals, the first terminal being connected with the gate line and the second terminal being connected with the data line; and pixel electrodes connected with the third terminals of the TFTs and including upper, lower, left, and right sides. Each storage electrode line includes portions that overlap the upper, lower, left, and right sides of each pixel electrode and peripheral portions exposed out of each pixel electrode, each pixel electrode includes a plurality of sub electrodes and connections connecting the sub electrodes, and the plurality of sub electrodes, excluding the portion connected with the third terminal of the TFT, are symmetrical to each other. Because the storage electrode lines exposed near the pixel electrode are formed to be symmetrical up and down and left and right, the influence of a voltage of the storage electrode lines is symmetrically made on liquid crystals.
Abstract:
A micro lens panel unit for 3D display device includes: a first panel; a resin lens formed on the first panel and having a convex shape; a second panel facing the first panel; and a liquid crystal interposed between the first and second panels.
Abstract:
Disclosed is a display device with a driving method thereof. The display device includes a plurality of gate lines, a plurality of data lines crossing the gate lines for transmitting gray voltages corresponding to image data among a plurality of the gray voltages as data voltages, and a plurality of pixels connected to the gate and the data lines for receiving the data voltages. The pixels include first color pixels, second color pixels, and third color pixels. The first color pixels express a maximum luminance upon application of a first voltage having the maximum value among the gray voltages, and the second and the third color pixels express a maximum luminance upon application of second and third voltages less than the first voltage among the gray voltages.
Abstract:
In a transflective-type display panel and a display apparatus having the transflective-type display panel, the transflective-type display panel includes a first display substrate, a second display substrate and a liquid crystal layer. The first display substrate includes a first substrate and a common electrode arranged on the first substrate. The second display substrate includes a second substrate having a main pixel area where a plurality of sub pixel areas are formed, a plurality of transmission electrodes formed in the sub pixel areas and coupled with each other, and a reflection electrode arranged in at least one sub pixel area. Thus, the transflective-type display panel improves a viewing angle and a display quality thereof and improves productivity.
Abstract:
An adhesive is applied to a side of a 3D image forming device of a lenticular lens, parallax barrier, etc., and the 3D image forming device is adhered to an image panel. The image panel and the 3D image forming device are aligned whiling observing a 3D image of the adhered panel through a camera disposed thereabove. In this case, they are determined to be correctly aligned when a black stripe is positioned at the center of the image of the camera. Subsequently, the adhesive is hardened so as to fix the image panel and the 3D image forming device.
Abstract:
A display apparatus includes a voltage applying unit formed on a base substrate. An organic layer having a plurality of micro lens parts is formed to expose an output terminal of the voltage applying unit. Each of the micro lens parts has an irregular shape of a different size to increase a light reflectance. A pixel electrode comprises a first electrode formed on the organic layer and a second electrode formed on an upper face of the first electrode. The second electrode has a light transmitting window partially formed on the second electrode. A second substrate comprises a common electrode corresponding to the pixel electrode. A liquid crystal layer is disposed between the first and second substrates. The display apparatus may improve a display quality by increasing an amount of a light reflected from the pixel electrode.