Abstract:
An exemplary one-piece backlight module (200) includes a brightness enhancement unit (240); and a light emitting unit (260) including a first electrode layer (261), a second electrode layer (264), and a light emitting layer (262) between the first and second electrode layers. The brightness enhancement unit and the light emitting unit are stacked one above the other. A liquid crystal display device using the backlight module is also provided.
Abstract:
An exemplary thin film transistor array substrate (200) includes a transparent substrate (261), a plurality of gate lines (201) and a plurality of data lines (202) formed at the transparent substrate, the gate lines and the data lines crossing each other thereby defining a plurality of pixel regions (230). Each of the pixel regions includes a storage capacitor (220). The storage capacitor includes a first capacitor and a second capacitor aligned along a direction generally perpendicular to the transparent substrate, and the first capacitor and the second capacitor are electrically connected in parallel.
Abstract:
An exemplary liquid crystal panel (7) of liquid crystal display device (2) is provided. The liquid crystal panel (7) has a pair of substrates (21, 23) and a liquid crystal layer (22) disposed between the substrates. The liquid crystal panel (7) further includes: a first pattern (233,240) disposed on a first inner surface (212,232) of one of the pair of the substrates, and a second pattern (230) aligned with the first pattern (233,240), and the second pattern (230) provided at an outer surface (231) of one of the pairs of the substrates. Wherein, the second pattern (230) has a predetermined inclined angle to emit light beams bypass the first pattern as to increase light utilization ratio.
Abstract:
An exemplary liquid crystal display (2) includes a first substrate (200), a second substrate (210), a liquid crystal layer (220) interposed between the two substrates, a color filter layer (240) disposed between the two substrates, and an optical concentrating layer (260) provided between the two substrates. The liquid crystal display has high light utilization efficiency.
Abstract:
An exemplary LCD device (2) includes a liquid crystal panel (23), a light source (25), and a polarizer (24). The polarizer has a multilayer structure having a polarizing layer (245) and a light guide layer (247). The polarizer is adjacent to a main face of the liquid crystal panel. The light source is disposed adjacent to a peripheral edge of the light guide layer. The light source and the polarizer cooperate to provide a substantially planar light source to illuminate the liquid crystal panel.
Abstract:
The present disclosure relates to a method of fabricating a capacitive touch pane where a plurality of groups of first conductive patterns are formed along a first direction, a plurality of groups of second conductive patterns are formed along a second direction, and a plurality of connection components are formed on a substrate. Each first conductive pattern is electrically connected to another adjacent first conductive pattern in the same group by each connection component and each group of the second conductive patterns is interlaced with and insulated from each group of the first conductive patterns. Next, a plurality of curved insulation mounds are formed to cover the first connection components. Then, a plurality of bridge components are formed to electrically connect each second conductive pattern with another adjacent second conductive pattern in the same group.
Abstract:
The present disclosure relates to a method of fabricating a capacitive touch pane where a plurality of groups of first conductive patterns are formed along a first direction, a plurality of groups of second conductive patterns are formed along a second direction, and a plurality of connection components are formed on a substrate. Each first conductive pattern is electrically connected to another adjacent first conductive pattern in the same group by each connection component and each group of the second conductive patterns is interlaced with and insulated from each group of the first conductive patterns. Next, a plurality of curved insulation mounds are formed to cover the first connection components. Then, a plurality of bridge components are formed to electrically connect each second conductive pattern with another adjacent second conductive pattern in the same group.
Abstract:
A liquid crystal display (400) includes a liquid crystal panel (430), a scanning driver (410), a data driver (420), and a compensator (440). The liquid crystal panel includes gate lines (401) parallel to each other, data lines (402) intersecting the gate lines, and TFTs (403) arranged at each intersection. The scanning driver is configured for providing scanning signals. The compensator is configured for compensating the scanning signals. The compensator comprises switching elements (450) connected to tail ends of the gate lines respectively. When one gate line is scanned, a high compensating voltage is applied to the tail end through a corresponding switching element to accelerate to turn on the TFTs adjacent to the tail end. And at an end of the scanning time, a low compensating voltage is applied to the tail end through the corresponding switching element to accelerate to turn off the TFTs adjacent to the tail end.
Abstract:
An exemplary touch-sensitive liquid crystal display panel includes a first substrate (21), a second substrate (22) disposed opposite to the first substrate, and a liquid crystal layer (20) interposed between the first substrate and the second substrate. Scan lines (212) and data lines (213) are formed at the first substrate. The scan lines and the data lines cross each other thereby defining pixel regions. Conductive pads (203) are arranged corresponding to and electrically coupled to the scan lines. A conductive layer (280) is arranged between the second substrate and the liquid crystal layer. Conductive protrusions (202) are arranged on the conductive layer, each of the conductive protrusions is opposite to a corresponding conductive pad with a predetermined gap.
Abstract:
An exemplary brightness enhancement film (15) includes a main body (154), a plurality of first prism structures (152), a plurality of second prism structures (156), and first and second protective layers (150, 158). The main body includes a first side, and a second side opposite to the first side. The first prism structures are formed at the first side. The second prism structures are formed at the second surface. The first protective layer covers the plurality of first prism structures, and the second protective layer covers the plurality of second prism structures.