Abstract:
An exemplary backlight module includes a first light source, and a diffusing film. The diffusing film includes a light incident surface adjacent to the first light source, a light emitting surface located at an opposite side thereof, and a plurality of first reflective portions provided at the light incident surface. A pitch between every two adjacent first reflective portions progressively increases with increasing distance away from the first light source. A liquid crystal display employing the backlight module is also provided.
Abstract:
An organic light emitting diode is provided. The organic light emitting diode includes a substrate, an anode electrode structure formed on the substrate and including at least a metal layer and a metal oxide layer, an organic layer formed on the anode electrode structure and a cathode electrode structure formed on the organic layer. The metal oxide layer includes an oxide of the metal layer and has a thickness ranged between 1 to 50 nm
Abstract:
A method of utilizing color photoresist to form black matrix and spacers on a control circuit substrate is described. Utilizing the character of the red and the blue photoresist having a non-overlapping transmittance region in the visible light region, a black matrixes consisting of overlapping red and blue photoresist on control devices are used to prevent the photo current occurring in the off state of the control devices. In addition, three different color photoresist plus another-color photoresist are overlapped to form spacers on metal lines.
Abstract:
A process is provided for repairing a defect applied in producing a liquid crystal display, wherein the liquid crystal display includes a repair circuit structure, and at least one color filter and a liquid crystal formed on a front thereof. The process includes steps of (a) providing a laser having a wavelength of infrared spectrum, and (b) welding the repair circuit from a back of the liquid crystal display by the laser to repair the defect.
Abstract:
A thin film liquid crystal display, having a high aperture ratio, is described. Said display has been designed so as to reduce the incidence of short circuits between its various parts.This has been achieved by modifying the structure of the lower electrode of the storage capacitor. Said lower electrode is formed in the shape of a hollow square, two non-adjacent sides of said hollow square being at the level of the gate electrode, the other two sides of the hollow square being at the level of the data line. Two different means for providing electrical contact between all four sides of said lower capacitor electrode are described.A process for manufacturing the display is described.
Abstract:
A touch panel includes a first electrode plate and a second electrode plate spaced from the first electrode plate. The first electrode plate includes a first substrate, a plurality of first transparent electrodes, and a plurality of first signal wires. The second electrode plate includes a second substrate, a plurality of second transparent electrodes, and a plurality of second signal wires. Both the second transparent electrode and the first transparent electrode include a transparent carbon nanotube structure, the carbon nanotube structure includes of a plurality of metallic carbon nanotubes.
Abstract:
A liquid crystal display screen includes an upper board, a lower board opposite to the upper board, and a liquid crystal layer located between the upper board and the lower board. The upper board includes a touch panel. The touch panel includes an amount of transparent electrodes. At least one of the transparent electrodes includes a transparent carbon nanotube structure. The lower board includes a thin film transistor panel. The thin film transistor panel includes an amount of thin film transistors. Each of the thin film transistors includes a semiconducting layer. The semiconducting layer includes a semiconducting carbon nanotube structure.
Abstract:
A liquid crystal display screen includes an upper component, a bottom component and a liquid crystal layer. The upper component includes a touch panel. The touch panel includes a first conductive layer. The first conductive layer includes a transparent carbon nanotube structure. The bottom component includes a thin film transistor panel. The thin film transistor panel includes a plurality of thin film transistors. Each of the plurality of thin film transistors includes a semiconducting layer, and the semiconducting layer includes a semiconducting carbon nanotube structure. The liquid crystal layer is located between the upper component and the lower component.
Abstract:
A method for fabricating a touch panel is provided. A first substrate and a second substrate are provided. A first carbon nanotube composite layer is applied on a surface of the first substrate to obtain a first electrode plate. A second carbon nanotube composite layer is applied on a surface of the first substrate to obtain a second electrode plate. The first and second electrode plates are assembled to obtain the touch panel.
Abstract:
A soldering system includes a circuit board having first soldering terminals, a soldering object having second soldering terminals, soldering blocks disposed between the circuit board and the soldering object for electrically interconnecting the first soldering terminals and the second soldering terminals respectively, and a supporting structure supporting the soldering object and having a height that determines the height of the solder blocks. A related soldering method is also provided.