Abstract:
A liquid crystal display device and method for driving the same are provided. A liquid crystal display device includes a driving circuit that includes a data driver that is inputted with a m-bit data signal. The data driver is operative to extract a n-bit data signal from the m-bit data signal and a (m-n)-bit data signal, and adjust a gray level of the (m-n)-bit data signal using the n-bit data signal. A liquid crystal panel includes a pixel that is supplied with the (m-n) -bit data signal during a plurality of frames.
Abstract:
A backlight of an LCD device includes a protection circuit that permits leakage of a high voltage to a ground terminal. This high voltage is generated by insertion failures of connectors or other failures caused by damage. The backlight driving circuit includes a high-voltage part applying an A.C. high voltage to a first terminal of a plurality of fluorescent lamps, a low-voltage part applying a lower voltage than that of the high-voltage part to a second terminal of the plurality of fluorescent lamps, a connection part that connects the high-voltage part to the low-voltage part and the protection circuit between the low-voltage part and the connection part.
Abstract:
A light emitting device comprises a first pixel portion that includes a light emitting portion arranged between two electrodes on a first substrate, a transistor portion formed on a second substrate arranged to be opposed to the first substrate, a connection electrode extended from one of the two electrodes, and an electrical contact portion in surface contact with both the connection electrode and a drain of the transistor portion.
Abstract:
A substrate includes adjacent first and second pixel regions defined by first and second gate lines extending in a first direction and a data line extending in a second direction that crosses the gate lines. First and second driving thin film transistors formed in the first and second pixel regions, respectively, are connected to the data line. A first synchronization adjusting thin film transistor formed in the first pixel region and is connected to the second gate line. A first connection line is connected to the first driving thin film transistor and the first synchronization adjusting thin film transistor. The first connection line overlaps a conductive line along a direction of extension of the conductive line. First and second pixel electrodes are connected to the first synchronization adjusting thin film transistor and the second driving thin film transistor, respectively.
Abstract:
A liquid crystal display is provided. The liquid crystal display includes a plurality of first pixels provided with RGB color filters and a plurality of second pixels provided with CMY color filters are formed at a liquid crystal display panel. A video processing part is inputted with RGB data to generate CMY data, and selectively outputs RGB data inputted in accordance with a clock signal and CMY data generated in accordance with a clock signal. A control part controls a supply of RGB data or CMY data inputted from the video processing part in accordance with the clock signal. In accordance with a control part, a data driving part converts RGB data or CMY data outputted from the control part into an analog data, and then supplies it to the plurality of first pixel or the plurality of second pixel.
Abstract:
A liquid crystal display module includes a liquid crystal display panel and a backlight unit under the liquid crystal display panel. The backlight unit includes at least one light emitting diode. The liquid crystal display module further comprises a bottom frame surrounding the backlight unit. The bottom frame comprises a printed circuit board and the at least one light emitting diode is disposed on the printed circuit board. The liquid crystal display module also includes a main frame surrounding the liquid crystal display panel and a top frame surrounding a front edge of the liquid crystal display panel and combined with the bottom frame through the main frame.
Abstract:
An electro-luminescence display which obtains proper color realization even though identical data driving waveforms are applied to each group of R, G and B pixel cells. In the display, a plurality of data lines cross a plurality of gate lines to define a plurality of pixel cell areas. A plurality of power supply lines pass through the pixel cell areas. A switching device is provided in each pixel cell area in such a manner to be electrically connected to the gate line and the data line. A plurality of driving devices are patterned based on a ratio of channel width to channel length in accordance with the type of pixel cell area. Each driving device having a gate connected to one electrode of the switching device and a source connected to the power supply line at each of the pixel cell areas. A plurality of EL diodes are connected to the plurality of driving devices, respectively. A wiring is commonly connected to the plurality of power supply lines. The R, G and B pixel cells are independently driven using different currents, although a common voltage is received by the driving devices.
Abstract:
A manufacturing method of an array substrate for a liquid crystal display device includes forming a switching element in a pixel area on a substrate, wherein the pixel area includes a reflective area and a transmissive area, forming an organic layer on an entire surface of the substrate including the switching element, first exposing the organic layer using a first mask, second exposing the first exposed organic layer using a second mask, developing the first and second exposed organic layer to form a passivation layer having an unevenness pattern in the reflective area, forming a reflector on the passivation layer in the reflective area, and forming a pixel electrode on the reflector in the reflective area and the transmissive area.
Abstract:
A gate electrode (wiring) (40) having a Cu layer (40a) surrounded by a coating film (40b) made of titanium or titanium oxide; a TFT substrate (31) comprising the gate electrode (wiring) (40) and a LCD comprising a pair of opposing substrates and a liquid crystal disposed between the opposing substrates, wherein one of the pair of opposing substrates is a TFT substrate (31), are disclosed.
Abstract:
A light emitting lamp and a backlight unit having the same are disclosed. The light emitting lamp is capable of reducing a tube voltage thereof and increasing an effective light emitting region via an increased area of external electrodes. The light emitting lamp includes a linear lamp tube having a plurality of protuberances formed at both ends thereof, and first and second external electrodes externally arranged at both ends of the lamp tube and having a plurality of protuberances to be engaged with the protuberances of the lamp tube.