Abstract:
A liquid crystal display device includes a liquid crystal display panel having liquid crystal cells, a gate driver for driving gate lines of the liquid crystal display panel, a data driver for driving a first to (2m+1)th data lines of the liquid crystal display panel, wherein the liquid crystal display panel includes first thin film transistors connected to odd numbered data lines arranged on each horizontal line in zigzag with reference to the odd numbered data lines, second thin film transistors connected to even numbered data lines arranged on each horizontal line in zigzag with reference to the even numbered data lines, pixel electrode connected to the first thin film transistor for having a first data signal supplied thereto through the odd numbered data lines, and a common electrode connected to the second thin film transistor for having a second data signal supplied thereto through the even numbered data line and forming a horizontal electric field together with the pixel electrode.
Abstract:
A liquid crystal display device (LCD) includes a liquid crystal panel displaying an image; a transparent plate disposed on the liquid crystal panel; a support member supporting the liquid crystal panel; and a fixing member disposed on the transparent plate, the fixing member coupled with the support member to fix the liquid crystal panel and the transparent plate in place, and to protect the liquid crystal panel and the transparent plate.
Abstract:
A liquid crystal display (LCD) device is disclosed which defines an open area of a lower substrate by a common electrode, for preventing stitching spots and changes of the aperture ratio by the bonding process on a large-sized LCD panel, which includes first and second substrates facing each other at a predetermined interval therebetween; gate and data lines crossing each other on the first substrate to define a pixel region; a common line in parallel to the gate line; a thin film transistor at a crossing portion of the gate and data lines; a plurality of common electrodes connected to the common line at fixed intervals in the same direction as the data line; a pixel electrode in contact with a drain electrode of the thin film transistor, between the common electrodes at fixed intervals; a black matrix layer provided on the second substrate, inside the outermost-opening limiting line of the first substrate (below the bonding margin); and a color filter layer provided on the second substrate.
Abstract:
A method of forming a liquid crystal cell for a liquid crystal display device includes defining a first cell region, second cell regions having smaller sizes than the first cell region, and a buffer region disposed between adjacent second cell regions on a first base substrate. After the regions are defined, elements are formed in the first and second cell regions and a buffer pattern is formed in the buffer region. An alignment layer is formed to cover the elements and the buffer pattern. The alignment layer is then rubbed along a direction from the second cell regions to the first cell region.
Abstract:
An in-plane switching mode liquid crystal display device includes a plurality of gate lines and data lines defining a plurality of pixel areas including at least first and second regions, a driving device for supplying a signal to adjacent pixel areas, a plurality of pixel electrodes within the first and second regions within the pixel area, the pixel electrodes being supplied a first data voltage from the driving device of the corresponding pixel to the first region and being supplied a second voltage from the driving device of an adjacent pixel within the second region, and a plurality of common electrodes within the first and second regions of the pixel areas for forming a horizontal electric field together with the pixel electrodes.
Abstract:
A liquid crystal display panel device includes a liquid crystal display panel including first and second substrates, a liquid crystal material between the first and second substrates, a first sealing line at an outer peripheral region of the liquid crystal display panel, and at least one second sealing line spaced from the first sealing line to form a space for receiving an excess of the liquid crystal material.
Abstract:
This invention discloses a liquid crystal display device and a fabricating method therefore. In addition, the present invention discloses a pixel repairing method for increasing an aperture ratio and increasing a repair efficiency. If a fault occurs in a channel of a TFT, a pixel electrode is connected with a repair drain electrode of a previous TFT, after cutting a data signal from a data line to a TFT using a laser. Thus, a bad pixel cell can realize the same color as a previous pixel cell. By this arrangement, a brightness point may be removed from the display. Also, a repair efficiency is improved. Also, since the source electrode of a repair TFT and a main TFT is used commonly, a display area is increased and a high aperture ratio can be realized.
Abstract:
A substrate has an array testing system for use in a liquid crystal display device. The substrate includes a plurality of array cells each including a display area, a non-display area surrounding the display area, and a pad area adjacent to first and second sides of the non-display area. The substrate further includes a plurality of test pads outside the plurality of array cells and a plurality of test lines each connecting a corresponding one of the array cells with a corresponding one of the test pads. Here, each one of the test lines partially pass through the non-display area of an array cell adjacent to the corresponding one of the array cells.
Abstract:
There is provided an in-plane switching mode liquid crystal display device which includes a lower substrate defined and surrounded by a plurality of gate lines, common lines, and data lines, and including a thin film transistor, a plurality of common electrodes extending from the common line, and a plurality of pixel electrodes extending from a lead interconnection line connected with a drain electrode of the thin film transistor, and having sub-pixels aligned in a matrix shape and divided into an aperture region and a non-aperture region; an upper substrate having sub-color filters and a black matrix completely overlapping with the non-aperture region inside the sub-pixel, formed thereon; and a liquid crystal layer interposed between the lower substrate and the upper substrate.
Abstract:
An array substrate for an in-plane switching mode liquid crystal display device includes a first TFT in a pixel region and connected to a gate line and a first data line; a second TFT in the pixel region and connected to the gate line and a second data line; a first pattern connected to the first TFT and extending along the gate line; a plurality of first electrodes connected to the first pattern; a second pattern extending to be parallel to the first pattern; a second electrode extending along the first data line; a third electrode connected to the second pattern and extending along the second data line, the third electrode connected to the second TFT; and a plurality of fourth electrodes connected to the second pattern and alternately arranged with the plurality of first electrodes, wherein the plurality of first electrodes and the plurality of fourth electrodes are disposed between the second and third electrodes.