Abstract:
A method for detecting a storage voltage, a display apparatus using the storage voltage and a method for driving the display apparatus. The method for detecting the storage voltage includes applying a test voltage to a storage line in a display panel having an active layer disposed between the storage line and a data line while varying the test voltage, the active layer being in an active state or an inactive state according to the test voltage, and detecting the storage voltage corresponding to the test voltage in an inactive state of the active layer. Thus, the display panel is driven by using the detected storage voltage, so that an aperture ratio may be increased and current consumption may be decreased.
Abstract:
In a method of fabricating a display substrate, a photoresist layer pattern is formed on a substrate where a thin film transistor (TFT) is formed, and a transparent conductive layer is formed on the photoresist layer pattern. Then, the transparent conductive layer is patterned by a lift-off method to form a transparent conductive layer pattern while partially removing the photoresist layer pattern.
Abstract:
A liquid crystal display (LCD) includes a substrate; first and second pixel rows formed on the substrate and including a plurality of pixels; a first gate line extending in a row direction on the substrate and connected with the first pixel row; a second gate line extending in the row direction on the substrate, connected with the first pixel row; a third gate line extending in the row direction on the substrate, connected with the second pixel row, and adjacent to the second gate line; a fourth gate line extending in the row direction on the substrate, connected with the second pixel row; a plurality of data lines extending in a column direction on the substrate, wherein each of the data lines are disposed every two of the pixels; a first gate driver connected with the first and fourth gate lines and applying gate signals to the first and fourth gate lines; and a second gate driver connected with the second and third gate lines and applying gate signals to the second and third gate lines.
Abstract:
A thin film transistor (“TFT”) display plate, capable of reducing a load on a gate line, increasing an aperture ratio and preventing light leakage, includes an insulating substrate, a gate line formed on the insulating substrate, a storage electrode line spaced apart from the gate line and formed on an insulating substrate, a data line insulated from the gate line and the storage electrode line and intersecting the gate line, a pixel electrode formed for each pixel defined by the gate line and the data line, a thin film transistor (“TFT”) connected to the gate line and the data line to apply a voltage to the pixel electrode, and a storage electrode formed on the same layer as the data line and connected to the storage electrode line to form one terminal of a storage capacitor along with the pixel electrode as the other terminal of the storage capacitor.
Abstract:
A liquid crystal display (“LCD”) includes a data interconnection line including a data line, a source electrode as a branch of the data line, and a drain electrode formed spaced apart from the source electrode, a semiconductor layer formed under the data interconnection line and connected to the source electrode and the drain electrode below the source electrode and the drain electrode and forming a channel region, and a gate interconnection line formed under the semiconductor layer and including a gate line intersecting the data line, the gate line extending in a first direction and the data line extending in a second direction, and a gate electrode branched from the gate line, wherein the gate line includes a first recess having a first width and a first length.