Abstract:
A method of fabricating a color filter substrate includes forming a plurality of color filters on a substrate, wherein the color filters are spaced apart from each other by a first interval, and forming a common electrode on the substrate to cover the color filters. A photosensitive black material layer is formed on the common electrode to fill the first intervals between the color filters, and a mask is provided over the photosensitive black material layer. Light is then applied to the photosensitive black material layer from an upper side of the substrate through the mask and from a lower side of the substrate. The light-applied photosensitive black material layer is developed to form a plurality of black matrix portions within the first intervals between the color filters and to form a plurality of spacers above the color filters.
Abstract:
A display device includes a plurality of pixel cells divided into at least a first pixel cell group and a second pixel cell group; a first data line electrically connected to the pixel cells in the first pixel cell group, and a second data line electrically connected to the pixel cells in the second pixel cell group; and a gate driver driving at least one of the pixel cells in the first pixel cell group concurrently with at least one of the pixel cells in the second pixel cell group.
Abstract:
A color filter substrate for a liquid crystal display device includes sub-pixel regions of three primary colors of R, G, and B formed by colored layers of the three primary colors, and sub-pixel regions of complementary colors of the three primary colors, namely, C, M, and Y, each formed by arranging two of the colored layers of the three primary colors such that the two colored layers are adjacent to each other. The colored layer thickness in each complementary-color sub-pixel region is larger than the colored layer thickness in each primary-color sub-pixel region. To compensate for the thickness difference, a transparent resin layer having no influence on the transmittance of light is formed such that the surfaces of the colored layers contacting a liquid crystal layer are leveled.
Abstract:
A backlight assembly for a liquid crystal display includes a lamp to irradiate light; a light guide plate to guide incident light from the lamp to a display panel; a plurality of optical sheets disposed in front of the light guide plate, and each optical sheet having an eye part with a through-hole; a guide panel to house the lamp, and having a jaw-like step part to mount the light guide plate and the optical sheets; and an adhesive pad having a lower end that passes through the through-hole and provided on the guide panel, and an upper end that adheres to the display panel.
Abstract:
A backlight unit assembly using a light emitting diode array in a liquid crystal display device is disclosed in the present invention. The backlight unit assembly includes a light emitting diode array having a plurality of red, green, and blue light emitting diodes emitting respective light, a first housing concentrating the light emitted from the light emitting diode array to a first direction, a sub-light guiding plate positioned at one side of the light emitting diode array mixing the light to form white light, a main-light guiding plate guiding the light incident on the sub-light guiding plate to a second direction, and a pair of holders at the left and right side portions of the light emitting diode array preventing the light from leaking to the outside of the backlight unit assembly.
Abstract:
A ferroelectric liquid crystal display having alignment films with different surface polarities. The alignment films induce an internal electric field through the liquid crystal. Because of the induced internal electric field, initial liquid crystal alignment, and subsequent liquid crystal alignments, can be performed without an externally applied electric field.
Abstract:
A multi-domain LCD device and a method for manufacturing the same are disclosed in which the process steps can be simplified and picture quality can be improved. The multi-domain LCD device includes first and second substrates, data and gate lines on the first substrate in first and second directions to define a plurality of pixel regions, a pixel electrode in each pixel region, having at least one slit pattern, a dielectric frame within the pixel regions on the second substrate to define a plurality of domains, and a liquid crystal layer between the first and second substrates. The method for manufacturing a multi-domain LCD device includes forming gate and data lines on a first substrate, the data line being formed to cross the gate line, forming a passivation film on the first substrate, forming a transparent conductive film on the passivation film, patterning the transparent conductive film to form a pixel electrode having at least one slit in a pixel region defined by the gate and data lines, forming a dielectric frame within the pixel region to define a plurality of domains on a second substrate opposite to the first substrate, and forming a liquid crystal layer between the first and second substrates.
Abstract:
A liquid crystal display device having a pixel, including red, green, blue and white sub-pixels, the device includes: red, green and blue color filters on a substrate, the red, green and blue color filters corresponding to the red, green and blue sub-pixels, respectively; an overcoat layer on a surface of the substrate in the white sub-pixel and also on the red, green and blue color filters; a planarization pattern on the overcoat layer corresponding to the white sub-pixel; and a column spacer on the overcoat layer.
Abstract:
An organic electroluminescent display (ELD) device includes first and second substrates having a plurality of sub-pixels defined thereon, an array element layer on the first substrate having a plurality of thin film transistors corresponding to each of the sub-pixels, a connecting electrode on the array element layer connected to one of the thin film transistors, a first electrode on an inner surface of the second substrate, an insulating layer and an electrode separator formed within a boundary region of each of the sub-pixels, the insulating layer formed beneath the first electrode and the electrode separator formed beneath the insulating layer, and an organic light-emitting layer and a second electrode formed in each of the sub-pixels, wherein the electrode separator includes a first region having a pattern structure for separately forming the organic light-emitting layer and the second electrode within each of the sub-pixels, a second region having a pattern structure for directly contacting the connecting electrode with the second electrode under the electrode separator, and a third region having a pattern structure for preventing an electrical short between a second electrode portion in the first region and a second electrode portion in the second region, and wherein the second electrode formed within a space corresponding to the second region contacts the connecting electrode.
Abstract:
An external electrode fluorescent lamp and a method for manufacturing the same is disclosed, in which indentations are provided in a surface of a glass tube filled with a discharge gas by etching, and external electrodes are formed at both ends of the glass tube, thereby realizing close adhesion between external electrode and the glass tube.