Abstract:
A method of driving a liquid crystal display panel of a dot inversion system having liquid crystal cells arranged at intersections between a plurality of data lines and a plurality of gate lines in a matrix array, including supplying the data lines with (nnull2)th data corresponding to the liquid crystal cells connected to an (nnull2)th gate line, conducting a data supply channel for the liquid crystal cells connected to an nth gate line such that the (nnull2)th data is supplied to the liquid crystal cells connected to the nth gate line, conducting a data supply channel for the liquid crystal cells connected to the nth gate line such that the (nnull2)th data is supplied to the liquid crystal cells connected to the nth gate line, and conducting a data supplying channel for the liquid crystal cells connected to the (nnull2)th gate line such that the (nnull2)th data is supplied to the liquid crystal cells connected to the (nnull2)th gate line, wherein conducting the data supply channel and conducting the data supplying channel are performed simultaneously.
Abstract:
A liquid crystal display device includes first and second substrates, an orientation film on at least one of the first and second substrates, the orientation film having projecting edge portions extending at least in part beyond an outer contour of an active area, a seal material along the outer contour of the orientation film at a regularly-spaced interval from the orientation film, and a liquid crystal layer between the first and second substrates.
Abstract:
A manufacturing method of liquid crystal cells for a liquid crystal display device includes forming a first plurality of liquid crystal cells that include a color filter and a common electrode on an upper substrate, forming a second plurality of liquid crystal cells that include a plurality of gate lines and a plurality of data lines on a lower substrate, forming a gate contact pad in a marginal space of the lower substrate, the gate pad connected to a first group of the plurality of gate lines of one of a common row and common column of the second plurality of cells, forming a data contact pad in the marginal space of the lower substrate, the data pad connected to a first group of the plurality of data lines of one of a common row and common column of the second plurality of cells, forming a common voltage contact pad on the lower substrate for applying a common voltage to the common electrode on the upper substrate, forming an assembled substrate by bonding the lower substrate to the upper substrate, separating the assembled substrate into sub-substrates that include at least the second plurality of liquid crystal cells arranged in the one of a common row and common column, introducing liquid crystal material into the second plurality of liquid crystal cells of the sub-substrate, and inspecting the second plurality of liquid crystal cells of the sub-substrate by applying a voltage to the gate contact pad, the data contact pad and the common voltage contact pad.
Abstract:
An electroluminescence display device includes a transparent substrate, a plurality of first electrodes formed on the transparent substrate, an electroluminescence layer and a plurality of second electrodes sequentially disposed on the first electrodes, a packaging plate having a plurality of protrusions formed at a side opposite to the plurality of second electrodes, an absorber contained within each protrusion, a plurality of semi-transparent films disposed on the packaging plate and each absorber, and an adhesive attaching the transparent substrate to the packaging plate to oppose each other.
Abstract:
A thin film transistor (TFT) array and an LCD (Liquid Crystal Display) panel made therefrom where at least one of the gate lines, the source electrodes, the drain electrodes and the data lines is formed of a copper alloy having a copper portion and a metal portion doped in the copper portion. The metal portion in the copper alloy includes a metal whose heat of metal oxide formation energy is greater than that of copper. The metal may be one selected from Ti (Titanium), Cr (Chromium), Ta (Tantalum), Mo (Molybdenum), In (Indium), Sn (Tin) and Al (Aluminum). The copper alloy has a high acid resistance, a high chemical resistance, and a high tolerance for moisture. The use of the copper alloy allows formation of a low resistance interconnection of copper that has a high electrical conductivity.
Abstract:
A method for fabricating an array substrate of a liquid crystal display device includes forming a gate line and a gate electrode connected to the gate line, forming a gate insulating layer, an amorphous silicon layer, a doped amorphous silicon layer and a metal layer on the gate line and the gate electrode, forming a data line, a source electrode, a drain electrode, an ohmic contact layer and an active layer by patterning the metal layer, the doped amorphous silicon layer and the amorphous silicon layer with a single photolithographic masking step, forming a passivation layer covering the data line, and the source and drain electrodes, the passivation layer having a contact hole exposing a portion of the drain electrode, and forming a pixel electrode connected to the drain electrode through the contact hole.
Abstract:
A liquid crystal display device includes a thin film transistor substrate, on which a plurality of data lines and gate lines are positioned perpendicular to each other; a plurality of pixel electrodes formed near intersections of the data lines and the gate lines; a color filter substrate positioned parallel to the thin film transistor substrate, including a color filter layer, a black matrix and a common electrode formed thereon; a polymer wall arrangement formed either on the thin film transistor substrate or on the color filter substrate dividing the substrate into a plurality of liquid crystal panels; and at least one liquid crystal injection opening formed on each panel of the plurality of liquid crystal panels.
Abstract:
A display with a micro light modulators including a transparent substrate, a plurality of fixed electrodes on the substrate, a plurality of movable electrodes over and between the fixed electrodes, each movable electrode having a size different from one another and overlapping portions of adjacent fixed electrodes, and a back light on a back surface of the substrate.
Abstract:
A liquid crystal display module includes a liquid crystal panel, a first frame, a second frame, a first printed circuit board, and a second printed circuit board. The liquid crystal panel has an upper substrate, a lower substrate, and a liquid crystal layer disposed between the upper and lower substrates. The first printed circuit board is electrically connected with the liquid crystal panel. The second printed circuit board is electrically connected with the first printed circuit board such that the second printed circuit board is removable from the first printed circuit board and is used for driving the liquid crystal panel. The first printed circuit board and the second printed circuit board are formed on the first frame, wherein the second printed circuit board is removable from the first frame. A second frame is coupled with the first frame with the liquid crystal panel fixed therebetween.
Abstract:
A flat panel fluorescent lamp includes first and second glass substrates coupled with each other, at least one discharge path formed in the second glass substrate, and at least one pair of electrodes formed at the discharge path.