Abstract:
A thin film transistor array substrate including a gate pattern having a gate electrode, a gate line connected to the gate electrode, and a gate pad connected to the gate line, a source/drain pattern having a source electrode, a drain electrode, a data line connected to the source electrode, and a data pad connected to the data line, a gate insulating pattern formed along a matrix pattern including the gate pattern and the source/drain pattern except for a pixel area, a semiconductor pattern formed on the gate insulating pattern having a same pattern as the gate insulating pattern and partially removed at a thin film transistor area and the gate line area, and a transparent electrode pattern having a pixel electrode formed at the pixel area and connected to the drain electrode, a gate pad protective electrode formed on the gate-pad, and a data pad protective electrode formed on the data pad.
Abstract:
A substrate loading/unloading apparatus include a body part, an arm part connected to the body part for loading/unloading a substrate, a finger connector connected to the arm part, and a plurality of finger parts connected to the finger connector, wherein each of the finger parts include a plurality of protrusions to contact a bottom surface of the substrate.
Abstract:
A method for forming a low resistivity copper conductor line includes forming a silver material layer on silicon material, and forming a copper material layer on the silver material layer using an electroplating process.
Abstract:
A method for cutting a liquid crystal display panel is disclosed in the present invention. The method includes forming a plurality of unit liquid crystal display panels on first and second mother substrates, wherein the unit liquid crystal display panels have at least two different sizes, forming a plurality of first scribing lines on a surface of the first mother substrate, rotating the first and second mother substrates by 90null, and forming a plurality of second scribing lines on the surface of the first mother substrate.
Abstract:
An active matrix organic electroluminescent display device includes a substrate, a gate line disposed on the substrate, a data line disposed on the substrate crossing the gate line to form a pixel region, a first switching thin film transistor disposed on the substrate and electrically connected to the gate line and the data line, a first driving thin film transistor disposed on the substrate and electrically connected to the first switching thin film transistor, a capacitor electrode formed on the substrate and electrically connected to the first switching thin film transistor, the capacitor electrode having first and second parts disposed in parallel to the data line, and a third part connecting a first end of the first part to a first end of the second part, a power line electrically connected to the first driving thin film transistor, the power line having first, second, and third portions overlapping the capacitor electrode to form a storage capacitor, a pixel electrode disposed within the pixel region and electrically connected to the first driving thin film transistor, an organic emissive layer disposed on the pixel electrode, and a partition wall disposed between adjacent organic layers to overlap the data line and the first and second parts of the capacitor electrode.
Abstract:
A liquid crystal display device includes a plurality of gate lines arranged in a first direction and spaced apart at a constant interval, a plurality of data lines arranged in a second direction perpendicular to the gate lines at a constant interval so as to define pixel regions arranged in a matrix configuration, a plurality of pixel electrodes formed in the respective pixel regions, and a dummy data line formed at one side of the pixel electrodes connected to the last data line.
Abstract:
A liquid crystal display device includes a first substrate having a plurality of thin film transistors and a plurality of metal lines, a first insulation material layer formed on the metal lines, a second insulation material layer formed on the first insulation material layer on the metal lines, a first hole formed in the second insulation material layer over at least two of the metal lines, a second contact hole formed in the first and second insulation layers exposing a drain electrode of the thin film transistors, a pixel electrode connected to the drain electrode through the second contact hole, a sealing material formed within the first hole, a second substrate bonded to the first substrate via the sealing material, and a liquid crystal material disposed between the first and second substrates.
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:
An apparatus for printing an alignment layer of a liquid crystal display device includes a dispenser dropping an alignment material, an anilox roll receiving the dropped alignment material, a doctor roll evenly spreading the dropped alignment material coated onto the anilox roll, and a printing roll receiving the alignment material from the anilox roll, and transferring the alignment material onto a substrate, wherein the printing roll has a plurality of masks each having a numerical aperture of about 5% to 25%.
Abstract:
A liquid crystal display device includes first and second substrates facing and spaced apart from each other, a common electrode on an inner surface of the first substrate, a gate line on an inner surface of the second substrate, a data line crossing the gate line, a switching device connected to the gate and data lines, a first pixel electrode connected to the switching device and spaced apart from the data line, a black matrix covering the data line and having a first portion width extending from a center line of the data line to a first edge of the black matrix, and a second portion width different from the first portion width extending from the center line of the data line to a second edge of the black matrix opposite to the first edge of the black matrix, and a liquid crystal material layer interposed between the first pixel electrode and common electrode.