Abstract:
A liquid crystal display device capable of realizing high aperture ratio and high brightness by reducing or removing a conventional black matrix layer is provided. The device has a lower substrate and an upper substrate confronting each other. A counter electrode is formed on the lower substrate, and a pixel electrode is formed on the counter electrode with an insulating layer interposed. A lower polarizing plate and an upper polarizing plate are attached on respective outer sides of the lower and the upper substrates. The device further has a gate bus line and a data bus line. Particularly, a rubbing direction of the lower substrate corresponds with a direction of noise field formed between the data bus line and the pixel electrode or the counter electrode and between the gate bus line and the pixel electrode or the counter electrode.
Abstract:
The present invention provides a Fringe Field Switching-Liquid Crystal Display comprising: an upper substrate and a lower substrate; a gate line and a data line for defining a unit pixel, a plurality of protrusion parts being respectively formed on an edge region of the gate line adjacent to a pixel electrode, each of protrusion parts of the gate line being positioned in a depression part formed between the protrusion parts of the pixel electrode; a counter electrode formed in the unit pixel; a common line for applying a common signal to the counter electrode; a pixel electrode forming an electric field with the counter electrode, a plurality of protrusion parts being formed on an edge region of the pixel electrode adjacent to the gate line, each of protrusion parts being positioned in a depression part formed between the protrusion parts of the gate line; and a liquid crystal filled between the upper substrate and the lower substrate.
Abstract:
Disclosed is an in-plane switching(IPS) mode liquid crystal display(LCD) to prevent generating parasitic electric field due to residual DC components and static electricity. The IPS mode LCD according to the present invention comprises a first substrate; counter electrodes formed on the first substrate; pixel electrodes formed on the first substrate and spaced apart from the counter electrodes; a first high dielectric layer formed between the counter and pixel electrodes on the first substrate in which the counter and pixel electrodes are formed; a second substrate opposed to the first substrate; and a second high dielectric layer disposed at an inner surface of the second substrate.
Abstract:
Disclosed is a LCD comprising a substrate; a signal applying unit having a gate line and a common line on the substrate; and a display unit forming a plurality of pixels with a data line, a counter electrode, a pixel electrode, a TFT and the gate line and the common line extended from the signal applying unit, wherein the pixel electrode comprises a body unit and a branch unit, the body unit being parallel to the gate line and the branch unit comprising a plurality of branches being parallel to the data line, and pixel electrode of the outmost pixel that is the most adjacent to the signal applying unit has some of branches formed on the signal applying unit.
Abstract:
Disclosed is a fringe field switching mode liquid crystal display. The fringe field switching mode liquid crystal display of the present invention comprises a transparent insulating substrate; a plurality of gate bus line arranged in selected direction on the transparent insulating substrate, the gate bus line is arranged so that each element of the pair separated at a first distance is arranged a plurality of pairs at a second distance wider than a first distance; a plurality of common bus lines arranged on the centers of each gate bus line separated at the second distance, being in parallel with the gate bus line; a plurality of data bus lines arranged crossing with the gate bus line and common bus line to define a unit pixel; a thin film transistor disposed at the intersection of the gate bus line and data bus line; a counter electrode disposed in a unit pixel area and made of a transparent conductor, being in contact with the common bus line; and a pixel electrode overlapping with the counter electrode in the unit pixel and made of a transparent conductor, being in contact with the thin film transistor.
Abstract:
The present invention is directed to provide a liquid crystal display having an improved picture quality, high transmittance and high aperture ratio. The liquid crystal display comprises: an upper and a lower substrate opposed each other to be spaced apart; a liquid crystal layer interposed between inner surfaces of the upper and lower substrates, the liquid crystal layer including a plurality of liquid crystal molecules; a gate bus line and a data bus line formed in the lower substrate in a matrix configuration and defining sub-pixel regions; a counter electrode formed on each sub-pixel region of the lower substrate; a pixel electrode formed on each sub-pixel region of the lower substrate, wherein the counter electrode and the pixel electrode form an electric field; a thin film transistor formed at an intersection of the gate bus line and the data bus line, and switching a signal transmitted from the data bus line into the pixel electrode when the gate bus line is selected; and a homogeneous alignment layer formed on inner surfaces of the upper and lower substrates, wherein a first electric field is formed between the counter and pixel electrodes of a selected sub-pixel among the sub-pixel regions, and the electric field is formed as a diagonal line with respect to the gate bus line and the data bus line, wherein a second electric field is formed between the counter electrode and the pixel electrode of another sub-pixel adjacent to said selected sub-pixel, and the second electric field is formed as a diagonal line to make a symmetry with the first electric field.
Abstract:
A method of manufacturing a liquid crystal display device driving with fringe field between counter and pixel electrodes, by the following steps. First, by depositing a first transparent conductive layer on a transparent insulating substrate and etching the first transparent conductive layer, thereby forming a counter electrode. Second, by forming a first insulating layer as a protection layer on the substrate formed on the counter electrode. Third, by depositing a first metal layer on the first insulating layer and etching the first metal layer, thereby forming a gate bus line and a common electrode line, the common electrode line being in contact with the counter electrode. Fourth, by forming a gate insulating layer, an amorphous silicon layer and a second insulating layer on the substrate formed on the gate bus line and the common electrode line. Fifth, by etching the second insulating layer to form an etch stopper. Sixth, by forming a doped amorphous silicon layer and a second metal layer on the substrate formed on the etch stopper. Seventh, by etching the second metal layer to form source/drain and a data bus line. Eighth, by etching the doped amorphous silicon layer and the amorphous silicon layer using the source/drain as a mask to form an ohmic layer and a channel layer. Ninth, by forming a passivation layer on the overall substrate formed on the ohmic layer and the channel layer. Tenth, by etching the passivation layer to open a pad portion of the gate bus line, a portion of the data bus line and the source. Finally, by depositing a second transparent conductive layer on the passivation and etching the second transparent conductive layer, thereby forming a pixel electrode, the pixel electrode being in contact with the opened source, the data bus line, and the pad portion of the gate bus line.
Abstract:
The present invention is directed to provide a manufacturing method of a liquid crystal display having high transmittance and high aperture ratio, wherein the method is capable of decreasing process time and cost by reducing numbers of photolithography process steps. The manufacturing method of the liquid crystal display according to comprises the steps of: providing a transparent insulating substrate having a displaying area and a non-displaying area; forming a light shielding pattern and a common signal line, with an opaque metal layer on the non-displaying area of the transparent insulating substrate; forming a counter electrode with a transparent metal layer on the displaying area of the transparent insulating substrate; depositing an insulating layer over the transparent insulating substrate so as to cover the light shielding pattern and the common signal line, and the counter electrode; forming source and drain electrodes to be overlapped with the light shielding pattern respectively on the insulating layer portions of both sides of the light shielding pattern and a data bus line connected to the source electrode; forming a pixel electrode with a transparent metal layer on the insulating layer portion of the displaying area; forming a channel layer on the light shielding pattern and on the source and drain electrode portion overlapped with the light shielding pattern; and forming a gate bus line having a gate insulating layer on the channel layer.
Abstract:
A liquid crystal display. The display has a first substrate and a second substrate. One of the substrates is disposed opposite the other a first distance apart. Each of the substrates has an inner surface and an outer surface that is opposite the inner surface. A liquid crystal layer is sandwiched between the inner surfaces of the substrates. At least a pair of a first electrode and a second electrode are arranged along a first direction on the inner surface of the first substrate. The first electrode is disposed parallel to the second electrode a second distance apart. A first homeotropic alignment film is disposed on the first substrate including the first and second electrodes. At least a pair of a third electrode and a fourth electrode are arranged along a second direction on the second substrate. The third electrode is disposed parallel to the fourth electrode a third distance apart, wherein the first direction is perpendicular to the second direction. A second homeotropic alignment film is (disposed on the second substrate including the third and fourth electrodes. A first polarizer is disposed on the outer surface of the first substrate; and a second polarizer is disposed on the outer surface of the second substrate.
Abstract:
A liquid crystal display. The display has a substrate and a first counter electrode formed on the substrate. The first counter electrode extends in a first direction. An insulating layer having a contact opening is formed on the substrate, which has the first counter electrode. A pixel electrode is formed on the insulating layer and has a body separated from the first counter electrode by a selected distance. The pixel electrode also has a plurality of comb-teeth, which extends parallel to the first counter electrode from the body of the pixel electrode. The body extends in a second direction substantially perpendicular to the first direction. A second counter electrode is formed on the insulating layer. The second electrode also has a body extending parallel to the body of the pixel electrode. The pixel electrode has a plurality of comb-teeth extending from the body of the second counter electrode in the first direction. The body of the second counter electrode overlaps the first counter electrode at one end thereof. The plurality of comb-teeth of the second counter electrode interdigitate with the plurality of the pixel electrode by a predetermined distance.