Abstract:
A multi-view liquid crystal display for different users to watch different images from different viewing angles is provided. The multi-view liquid crystal display includes a liquid crystal display panel, a first backlight module and a second backlight module. The first backlight module is disposed below the liquid crystal display panel. The second backlight module is disposed between the first backlight module and the liquid crystal display panel. Furthermore, the first backlight module provides a first plane light source and the second backlight module provides a second plane light source. An included angle α formed between transmitting directions of the first and the second plane light sources ranges from 6 degrees to 176 degrees. Therefore, when different users watch the multi-view liquid crystal display which displays different images from different viewing angles, the resolutions of the images are the same as the resolution of the multi-view liquid crystal display panel.
Abstract:
A transflective liquid crystal display. A first substrate comprises a plurality of pixels, each pixel comprises a plurality of sub-pixels and each sub-pixel comprises at least one transmissive and at least one reflective regions. A second substrate is opposite to the first substrate, divided into a plurality of regions corresponding to the sub-pixels, and at least three of the regions are color regions and at least one of the regions is a fourth region. A first covering layer covers the first substrate, wherein the first covering layer in the transmissive region corresponding to the fourth region is substantially thicker than that corresponding to the three color regions, and the first covering layer in the reflective region corresponding to the fourth region has a thickness substantially equal to that corresponding to the three color regions. A liquid crystal layer is disposed between the first and second substrates.
Abstract:
A three-dimension display suitable for a viewer wearing a pair of eyeglasses is disclosed. The eyeglasses have two circular polarized eyeglass lenses with different polarizations. The three-dimension display includes a flat display panel, a quarter-wave plate and a patterned half-wave plate. The flat display panel has a plurality of pixels arranged in an array, wherein the flat display panel is suitable to display a linear polarized image. The quarter-wave plate is disposed between the flat display panel and the eyeglasses. The patterned half-wave plate is disposed between the flat display panel and the eyeglasses, wherein the patterned half-wave plate corresponds to a part of the pixels. The present invention also provides a fabrication method of a three-dimension display.
Abstract:
A pixel structure including a first transparent electrode, a second transparent electrode, a reflective electrode, a first active device and a second active device is provided. The reflective electrode connects the second transparent electrode, while the first transparent electrode is electrically insulated from the second transparent electrode and the reflective electrode. The first active device electrically connects the first transparent electrode to apply a first driving voltage to the first transparent electrode. The second active device electrically connects the second transparent electrode and the reflective electrode to apply a second driving voltage to the second transparent electrode and the reflective electrode. The first driving voltage differs from the second driving voltage. An active device array substrate having the abovementioned pixel structure and a driving method of the active device array substrate are also provided and applied to a transflective liquid crystal display for improving the display quality thereof.
Abstract:
A pixel structure disposed on a substrate and electrically connected to two scan lines and a data line is provided. The pixel structure includes a reflective electrode, a first transparent electrode, a second transparent electrode and a semiconductor layer. The first transparent electrode is electrically connected to the reflective electrode and is insulated from the second transparent electrode. The semiconductor layer has two first conductive regions, a second conductive region and two first channel regions, wherein the first conductive regions are respectively electrically connected to the reflective electrode and the second transparent electrode, the second conductive region is located between the first conductive regions and electrically connected to the data line, a part of the semiconductor layer overlapped with the scan lines is defined as first channel regions and each of the first channel regions is respectively electrically connected between the second conductive region and each first conductive region.
Abstract:
A display panel is disclosed. The display panel includes a first substrate, a second substrate, and a pixel and a color filter disposed between the first substrate and the second substrate. The pixel including a plurality of subpixels has a transmitting region and a reflecting region. The color filter includes a plurality of colors corresponding to the subpixels respectively. The adjacent colors of the color filter overlap with each other and the width of the overlapped portion of the transmitting region is greater than that of the reflecting region.
Abstract:
A transflective pixel structure is provided. The transflective pixel structure includes an active device, a storage capacitor, a transparent electrode, and a first reflective electrode. The storage capacitor includes a bottom electrode, a floating electrode, and an upper electrode. The upper electrode is disposed above the bottom electrode and the floating electrode and electrically connected to the active device. The transparent electrode is electrically connected to the upper electrode. The first reflective electrode is electrically connected to the floating electrode and electrically insulated from the transparent electrode. As mentioned above, the transflective pixel structure can improve the image quality of a transflective liquid crystal display panel with single cell gap.
Abstract:
A transflective liquid crystal display panel includes a first substrate, a second substrate arranged opposite to the first substrate, and a plurality of pixels positioned between the first substrate and the second substrate. Each of the pixels having at least one reflecting region and at least one transmitting region includes a color filter layer formed on the substrate and located in both of the reflecting region and the transmitting region, at least one first reflective layer formed between the color filter layer and the substrate and located in the reflecting region, at least one switch element located in the reflecting region, and at least one second reflective layer located in the reflecting region.
Abstract:
In a transflective liquid crystal display comprising a plurality of pixels, each is divided into three color sub-pixels in red, green and blue. Each of the color sub-pixels is further divided into a main sub-pixel and an auxiliary sub-pixel. The main sub-pixel comprises a transflective area and a reflective area. The auxiliary sub-pixel can be entirely transmissive, reflective or partially transmissive and reflective. The liquid crystal display further comprises a plurality of first gate lines for electrically controlling the main sub-pixels and a plurality of second gate lines for electrically controlling the auxiliary sub-pixels. The auxiliary sub-pixels may have a color filter for partially filtering light encountering the auxiliary sub-pixels according to the color of the color sub-pixels.
Abstract:
An liquid crystal method, system and method is provided to optimize the view-angle distribution characteristics of 2D/3D LCDs, wherein the photoactive layers, e.g., parallax, lenticular, etc, have their individual respective distances adjusted. The method also permits the adjustment of the relative prism vertex angles among the photoactive layers to further control the view-angle distribution of the light transmitted to the LDC display means. Moreover, the method, system and method provides for the enhanced, as modified by or in accordance with and as a function of both, scope and distance of human vision and vantage point in 2D/3D LCDs.
Abstract translation:提供了一种液晶方法,系统和方法来优化2D / 3D LCD的视角分布特性,其中诸如视差,透镜等的光活性层具有各自的各自的距离。 该方法还允许调节光敏层之间的相对棱镜顶角,以进一步控制透射到LDC显示装置的光的视角分布。 此外,该方法,系统和方法提供了在2D / 3D LCD中由人类视觉和有利位置的范围和距离进行修改或者根据和作为功能的增强。