Abstract:
A display capable of providing 2D and/or 3D images. The display comprises a liquid crystal display device and a self-emissive display device. The self-emissive display device is disposed on the rear of the liquid crystal display device, in which the liquid crystal display device provides a first image and the self-emissive display device a second image and a backlight source. One of the first and second images comprises a parallax barrier pattern for forming a three-dimensional (3D) image, and the other is a 2D image.
Abstract:
An optical film for use in backlight module is provided. The optical provides quality luminance of a liquid crystal display (LCD) apparatus. The optical film assembly comprises a substrate with a polarization direction, in which the substrate has a first surface and a second surface opposing thereto. A first prismatic structure is formed on the first surface. The polarization direction of the substrate defines the first angle θ1 with respect to the configured direction of the first prismatic structure, in which 0°
Abstract:
A transflective LCD includes scan lines and data lines disposed on a substrate. The scan line and the data line forms a plurality of pixel regions. Each pixel region has a plurality of sub-pixel regions. At least three of the sub-pixel regions are as a color sub-pixel region and at least one of the sub-pixel regions is a fourth sub-pixel region. A plurality of switch devices is adapted to control the color sub-pixels and the fourth sub-pixel.
Abstract:
A transflective liquid crystal display panel having a single gap is provided. The liquid crystal display panel has a first substrate, a second substrate substantially corresponding to the first substrate, and a liquid crystal layer disposed therebetween. The first substrate includes a plurality of pixel regions, and each pixel region has at least one reflection region covered with a reflective electrode and at least one transmission region. When voltage is not applied, the liquid crystal layer in the transmission regions and in the reflection regions has a phase difference of half wavelength, and when a voltage is applied, the liquid crystal layer in the transmission regions has no phase difference, and the liquid crystal layer in the reflection regions has a phase difference of quarter wavelength.
Abstract:
A liquid crystal panel comprising a plurality of pixels arranged in a matrix. Each pixel comprises a red sub-pixel, a green sub-pixel, a blue sub-pixel, and an auxiliary sub-pixel with a transflective area.
Abstract:
A method of driving an electrophoretic display is set forth for avoiding image-edge residual while sequentially displaying a first frame and a second frame. During the time of displaying the first frame, set a common voltage to be a first voltage, apply a second voltage different from the first voltage to a first pixel for writing a first data signal into the first pixel, and apply the first voltage to a second pixel adjacent to the first pixel for retaining a second data signal of the second pixel, which is different from the first data signal. During the time of displaying the second frame, set the common voltage to be the second voltage, apply the first voltage to the first pixel for writing the second data signal into the first pixel, and apply the first voltage to the second pixel for retaining the second data signal of the second pixel.
Abstract:
A dual view display structure and a method for producing the same are provided. First, a display panel is provided. Then, a patterned barrier layer is formed on a transparent substrate. The transparent substrate with the patterned barrier layer is attached to the display panel. Because there is a gap between the display panel and the patterned barrier layer, a liquid transparent material is injected into the gap to form a transparent material layer to fill the gap. The invention can not only increase the viewing angles of the dual view display, but also increase the production yield.
Abstract:
A liquid crystal display panel including a first substrate, a second substrate, a liquid crystal layer, a scan line, a data line intersects the scan line, an active device, a pixel electrode, an insulating layer covering the pixel electrode, an auxiliary electrode, a shielding electrode, and a first polymer stabilized alignment (PSA) layer is provided.The liquid crystal layer between the first substrate and the second substrate includes liquid crystal molecules and a monomer material. The active device includes three terminals coupled to the scan line, the data line, and the pixel electrode. The auxiliary electrode on the insulating layer is electrically connected to the pixel electrode. The shielding electrode on the insulating layer located at peripheries of the pixel electrode surrounds the auxiliary electrode. The first PSA layer between the first substrate and the liquid crystal layer is polymerized from the monomer material in the liquid crystal layer.
Abstract:
A display panel includes a first substrate, a second substrate, signal lines, sub-pixels, and at least one thickness adjusting layer. The second substrate is disposed above the first substrate and has a transparent electrode layer thereon. The signal lines are disposed on the first substrate. The sub-pixels are arranged between the first and second substrates. The sub-pixels are electrically connected with the signal lines, and parts of them have at least one transparent area and at least one reflective area. The transparent area has a transparent electrode therein, and the reflective area has a reflective electrode therein, respectively. The thickness adjusting layer is disposed above the reflective electrode and located at the reflective area of the part of the sub-pixels.
Abstract:
A display device structure includes an active device, a passivation layer, a pixel electrode and a first conductive material. The passivation layer covers the active device and has a first through hole exposing a portion of the active device. The pixel electrode is disposed on the passivation layer, and the pixel electrode is a non-thin-film electrode constituted by a plurality of micro-conductive structures. The first conductive material is filled in the first through hole and electrically connected to the exposed active device. The pixel electrode is electrically connected to the first conductive material.