Abstract:
A display substrate includes a pixel electrode disposed in a display area, a first pad part disposed in a first area of a peripheral area which is disposed adjacent to the display area, where the first pad part is electrically connected to a driver circuit, a second pad part disposed in a second area of the peripheral area facing the first pad part, where the second pad part is electrically connected to a flexible circuit film which transfers a transmission signal to the driver circuit, and a connection line part disposed in an area between the first and second pad parts as a vertical line type, where the connection line part connects the first and second pad parts to each other.
Abstract:
A thin film transistor substrate includes a substrate; a gate electrode on the substrate; a semiconductor pattern on the gate electrode; a source electrode on the semiconductor pattern; a drain electrode on the semiconductor pattern and spaced apart from the source electrode; a pixel electrode connected to the drain electrode; and a common electrode partially overlapped with the pixel electrode. The semiconductor pattern is in a same layer of the thin film transistor substrate as the pixel electrode and has an electrical property different from an electrical property of the pixel electrode.
Abstract:
A display apparatus includes a first substrate and a second substrate. The first substrate includes a switching element and a pixel electrode electrically connected to the switching element. A display panel driver applies a driving signal to the display panel. The display panel driver includes a printed circuit board including a first bonding pad and a flexible substrate electrically connecting the printed circuit board with the display panel. The flexible substrate includes a second bonding pad. The second bonding pad is electrically connected to the first bonding pad of the printed circuit board. The first bonding pad overlaps the second bonding pad. At least a portion of the first bonding pad and at least a portion of the second bonding pad extend in a direction which is at an acute angle with respect to a first direction parallel with a relatively longer side of the display panel.
Abstract:
A display apparatus includes a first substrate and a second substrate. The first substrate includes a switching element and a pixel electrode electrically connected to the switching element. A display panel driver applies a driving signal to the display panel. The display panel driver includes a printed circuit board including a first bonding pad and a flexible substrate electrically connecting the printed circuit board with the display panel. The flexible substrate includes a second bonding pad. The second bonding pad is electrically connected to the first bonding pad of the printed circuit board. The first bonding pad overlaps the second bonding pad. At least a portion of the first bonding pad and at least a portion of the second bonding pad extend in a direction which is at an acute angle with respect to a first direction parallel with a relatively longer side of the display panel.
Abstract:
A liquid crystal display includes: a first substrate including a first through-hole; a second substrate facing the first substrate and including a second through-hole corresponding to the first through-hole; a sealant coupling the first substrate and the second substrate; a liquid crystal layer disposed between the first substrate and the second substrate; a spacer disposed between the first substrate and the second substrate; and a supporting assistance member including a third through-hole connected to the first through-hole and the second through-hole, wherein the supporting assistance member includes a first supporting assistance member made with the same material as the spacer.
Abstract:
A liquid crystal display includes pixels arranged in areas defined by gate lines and data lines, a gate driver to drive the gate lines, a data driver to drive the data lines in response to an inversion control signal, and a timing controller to control the gate driver and the data driver in response to an image signal and a control signal from an external source. The inversion control signal carries inversion information corresponding to each of the pixels, and the inversion information is repeated at every inversion block including I by J pixels and at every K frame, I, J, and K each being a positive integer.