Abstract:
In one embodiment of the invention, a display is provided. The display includes a light-emitting system including a plurality of light-emitting units, wherein each light-emitting unit emits light independently, a lens array including a plurality of lenses disposed on the light-emitting system, and a first liquid crystal display cell including a plurality of pixels disposed on the lens array, wherein the number of the light-emitting units of the light-emitting system is larger than that of the pixels of the first liquid crystal display cell.
Abstract:
An organic electroluminescent display (OELD) device at least includes a first assembly and a second assembly. The first assembly has a first substrate and an organic electroluminescent unit formed on the first substrate. The second assembly, assembled with the first assembly, includes a second substrate, a color filter layer and a patterned light-shielding layer. The color filter layer is disposed on the second substrate and has plural colored regions with different colors. The patterned light-shielding layer is disposed on the color filter layer and between the colored regions. A part of the patterned light-shielding layer contacts the first assembly to maintain a cell gap between the first assembly and the second assembly.
Abstract:
An embodiment of the invention provides a manufacturing method of a thin film transistor substrate including: sequentially forming a gate electrode, a gate insulating layer covering the gate electrode, an active material layer, and a photo-sensitive material layer on a first substrate; performing a photolithography process by using a half tone mask to form a photo-sensitive protective layer which is above the gate electrode and has a first recess and a second recess; etching the active material layer by using the photo-sensitive protective layer as a mask to form an active layer; removing a portion of the photo-sensitive protective layer at bottoms of the first recess and the second recess to expose a first portion and a second portion of the active layer respectively; forming a first electrode connecting to the first portion; and forming a second electrode connecting to the second portion.
Abstract:
A method of forming an alignment film is provided. A photosensitive polymer material is provided, wherein the photosensitive polymer material defines a first pixel area and a second pixel area respectively defining a first sub-pixel area and the second sub-pixel area. In a first exposure, the photosensitive polymer material is irradiate by a first exposure light and a second exposure light to form a first alignment portion and a second alignment portion with different alignment directions in the first sub-pixel of the first pixel area and the second sub-pixel of the second pixel area respectively. In a second exposure, the photosensitive polymer material is irradiated with the first exposure light and the second exposure light to form a third alignment portion and a fourth alignment portion with different alignment directions in the first sub-pixel of the second pixel area and the second sub-pixel of the first pixel area respectively.
Abstract:
An electronic device is provided. The electronic device includes a cover window, a cover frame, a display module, a backlight module, a light absorbing portion and a light reflecting portion. The cover frame is connected to the cover window, wherein the cover frame is perpendicular to the cover window. The display module is covered by the cover window and the cover frame, wherein the display module faces to the cover window. The backlight module is covered by the cover window and the cover frame, wherein the backlight module faces to the display module. The light absorbing portion is disposed on the cover frame and corresponding to the display module. The light reflecting portion is disposed on the cover frame and corresponding to the backlight module.
Abstract:
A liquid crystal display (LCD) panel includes a first substrate, a second substrate, and a liquid crystal layer. The first substrate includes a first alignment layer. The second substrate is disposed opposite to the first substrate, and includes a second alignment layer. The liquid crystal layer is disposed between the first and second substrates, and the first alignment layer and the second alignment layer contact the liquid crystal layer. The first alignment layer and the second alignment layer are defined as first-type alignment layers, and either the first substrate or the second substrates has a second-type alignment layer.
Abstract:
An autostereoscopic display apparatus is provided. The autostereoscopic display apparatus includes a liquid-crystal panel and a barrier cell. The barrier cell includes a first substrate, a second substrate, and a liquid-crystal layer. The first substrate includes a first electrode. The second substrate includes a second electrode and a third electrode, wherein the second and third electrodes are separated from each other. The liquid-crystal layer is disposed between the first and second substrates. A black region between the first and third electrodes is formed when a first voltage is applied to the first and second electrodes and a second voltage is applied to the third electrode.
Abstract:
In one embodiment of the invention, a display is provided. The display includes a light-emitting system including a plurality of light-emitting units, wherein each light-emitting unit emits light independently, a lens array including a plurality of lenses disposed on the light-emitting system, and a first liquid crystal display cell including a plurality of pixels disposed on the lens array, wherein the number of the light-emitting units of the light-emitting system is larger than that of the pixels of the first liquid crystal display cell.
Abstract:
A backlight module is provided, which includes a base, a light source, and at least one polygonal support member. The base has a lower surface, and the light source is disposed on the base. A transverse section of the polygonal support member includes a first side, and an angle formed by a projection line of a connecting line between the midpoint of the first side and the light source on the lower surface and a projection line of the first side on the lower surface is between 80 degrees and 100 degrees.
Abstract:
A composite optical film is disposed on a substrate. The substrate has a first region and a second region positioned adjacent to each other. The composite optical film includes a first optical film and a second optical film. The first optical film is disposed on the first region, while the second optical film is disposed on the first optical film and above the second region. A display apparatus containing the composite optical film and a manufacturing method of the composite optical film are also disclosed.