Abstract:
A transflective display. The transflective display includes a first substrate, a first electrode formed thereon, a second substrate having a reflective area and a transmissive area opposite to the first substrate, a second electrode formed on the second substrate opposite to the first electrode, and a liquid crystal layer including a plurality of liquid crystal molecules and polymers disposed between the first electrode and the second electrode. The invention also provides a method of fabricating the transflective display.
Abstract:
A liquid crystal display including an active device array substrate, an opposite substrate disposed above the active device array substrate and a liquid crystal layer disposed between the active device array substrate and the opposite substrate is provided. The active device array substrate has a plurality of signal lines, a plurality of active devices electrically connected with corresponding signal lines, a plurality of pixel electrodes electrically connected with corresponding active devices, and an auxiliary electrode. The auxiliary electrode is disposed between the pixel electrodes. Besides, the opposite substrate has a common electrode. The voltage difference applied between the common electrode and the pixel electrode is smaller than that applied between the auxiliary electrode and the pixel electrode. Additionally, a driving method for the above-mentioned liquid crystal display is also provided.
Abstract:
A pixel structure is disclosed. The pixel structure is suitable to be disposed on a substrate and includes a first pixel electrode, a second pixel electrode and a top gate TFT. The first pixel electrode and the second pixel electrode are disposed over the substrate, wherein the first pixel electrode and the second pixel electrode are separated from each other. The top gate TFT is disposed between the substrate and the first pixel electrode and includes a patterned semiconductor layer and a gate.
Abstract:
A pixel structure disposed on a substrate and electrically connected to a scan line and a data line is provided. The pixel structure has a reflective area and includes a common line, a semiconductor lower electrode, an upper electrode, a patterned dielectric layer, a reflective electrode and an active device. The semiconductor lower electrode electrically connected to the common line is disposed on the substrate within the reflective area. The upper electrode is disposed above and electrically isolated from the semiconductor lower electrode. The patterned dielectric layer with the micro-bumps is disposed on the upper electrode and exposes a part of the upper electrode. The reflective electrode is disposed on the patterned dielectric layer and the part of the upper electrode. Besides, the reflective electrode is electrically connected to the upper electrode. The active device is electrically connected to the scan line, the data line and the reflective electrode.
Abstract:
An LCD panel including a first substrate, a second substrate disposed above the first substrate, a plurality of signal lines disposed on the first substrate, and a plurality of sub-pixel sets arranged between the first substrate and the second substrate. Each sub-pixel set includes a plurality of sub-pixels electrically connected to the corresponding signal lines. Each sub-pixel has at least one alignment pattern located therein. Additionally, the alignment pattern located in one sub-pixel of each sub-pixel set supports between the first substrate and the second substrate as a spacer.
Abstract:
A pixel structure has a pair of substrates, a liquid crystal layer, pixel regions, a patterned organic material layer, and a shielding layer. The liquid crystal layer is disposed between the pair of substrates. The pixel regions are provided on the substrates, and each of the pixel regions is defined by at least two common lines and at least one data line and includes at least two sub-pixel regions. Each pixel region has a pixel electrode which has a main slit adjacent to the border between the two sub-pixel regions. The patterned organic material layer is disposed on one of the substrates and corresponds to one of the sub-pixel regions. The shielding layer is placed corresponding to the main slit. Display panel and electro-optical device which have the pixel structure and the methods for manufacturing them are also disclosed.
Abstract:
A liquid crystal display (LCD) panel including an active device array substrate, an opposite substrate and a liquid crystal layer is provided. The active device array substrate includes a substrate, a plurality of scan lines, a plurality of data lines, and a plurality of pixel units. The scan lines, the data lines and the pixel units are disposed on the substrate. Each of the pixel units is electrically connected to one of the scan lines and one of the data lines correspondingly and crosses over two sides of the corresponding scan line. The opposite substrate includes a plurality of alignment protrusions. The alignment protrusions are located over the scan lines. Besides, the liquid crystal layer is disposed between the opposite substrate and the active device array substrate. The above-mentioned liquid crystal display panel has higher aperture ratio.
Abstract:
A liquid crystal display panel is disclosed. The liquid crystal display panel includes a first substrate and a second substrate, a liquid crystal layer disposed between the first substrate and the second substrate, a pixel, and a first protrusion and a second protrusion. The pixel includes a first pixel electrode, a second pixel electrode, and a plurality of bridge electrodes disposed on the second substrate, in which the bridge electrodes are electrically connected to the first pixel electrodes and the second electrodes. The first protrusion and a second protrusion are disposed on the first substrate with respect to the first pixel electrode and the second pixel electrode.
Abstract:
An LCD substrate is used to prevent polyimide from unevenly distributing during heat and leveling processes. A portion of dielectric layers on data lines in transmissive regions is removed to form channels, which penetrate the dielectric layers between two adjacent transmissive regions. In other words, dielectric layer has a second thickness corresponding to the channels. Polyimide is distributed to all of transmissive regions evenly via these channels. There is a wall having a fifth thickness between a transmissive region and accordingly neighboring with reflective region to prevent polyimide distributing from the reflective region to the transmissive region because of the different thickness of the dielectric layer in the transmissive regions and the reflective regions. Thereof polyimide distributes evenly among transmissive regions and reflective regions to form a uniform alignment film because of these channels and walls. Then the alignment of the liquid crystal molecules is absolutely controlled to improve and maintain the quality of LCD.
Abstract:
In a process of forming a LCD cell structure, an electrode layer provided with a recessed portion is formed over a substrate, and a transparent dielectric layer is formed to cover the recessed portion of the pixel electrode layer. The recessed portion of the electrode layer acts to distort an electric field created in the liquid crystal of the LCD system for image displaying, while the transparent dielectric layer eliminates the boundary conditions created by the concavity of the recessed portion of the electrode layer.