Abstract:
The present invention is directed to an electrophoretic display film which can be controlled to malfunction permanently within a period of time. It provides an elegant method to utilize an electrophoretic film for anti-counterfeit purposes. The concept involves the removal of strong barrier layer(s) from the film to allow the solvent in the electrophoretic fluid within the film to evaporate through weak barrier layer(s), and within a period of time, the performance of the display film will be significantly degraded and the film cannot be re-used.
Abstract:
A display device and a method of manufacturing the display device are provided. Moisture may be prevented from penetrating into the display device. The display device includes a substrate including a pixel area. A thin film transistor is formed on the substrate. A pixel electrode is connected to the thin film transistor and formed in the pixel area. A roof layer is formed on the pixel electrode. The roof layer is separated from the pixel electrode via a microcavity. A liquid crystal layer fills the microcavity. A liquid crystal injection hole is formed in the roof layer and exposes a portion of the microcavity. An encapsulation layer is formed on the roof layer. The encapsulation layer covers the liquid crystal injection hole and seals the microcavity for the pixel area. The encapsulation layer includes a multilayer structure.
Abstract:
Methods and systems for producing an electro-optic display with a barrier layer for a seamless front surface of a user device. The electro-optic display may include a barrier layer, supported by a release film, disposed above a layer of electro-optic medium disposed above a backplane. The barrier layer may have dimensions greater than the electro-optic layer, but less than the backplane. An underfill edge seal is created under the barrier layer and release firm, and the release film is removed. A front-surface material is disposed above the barrier layer. The dimensions of the front-surface material may be greater than or equal to the dimensions of the backplane to create a seamless front surface on the user device.
Abstract:
A substrate for an electro-optical device includes, on a base material, a third interlayer insulation layer, a plurality of first wirings with a light shielding property which are provided on the third interlayer insulation layer, a concave portion provided in the third interlayer insulation layer (second interlayer insulation layer) of a region interposed by adjacent first wirings of the plurality of first wirings in a plan view, a protective film provided so as to cover at least the plurality of first wirings, a color filter provided in the concave portion, a second oxide film provided on the color filters and the plurality of first wirings, and a pixel electrode provided on the second oxide film.
Abstract:
A liquid crystal display includes a first substrate and a second substrate which face opposite to each other, a thin film transistor disposed on the first substrate, a pixel electrode connected to the thin film transistor, a first light blocking member disposed on the pixel electrode, and a cover layer disposed on the first light blocking member and covering the first light blocking member.
Abstract:
A liquid crystal display device includes an array substrate, an opposite substrate and a liquid crystal display layer. The array substrate includes a pixel electrode and a lower reactive mesogen layer. The pixel electrode includes a plurality of slit portions disposed on a plurality of domains in different directions. The lower reactive mesogen layer is disposed on the pixel electrode to induce an inclined direction of liquid crystal molecules. The opposite substrate includes an upper substrate. An upper reactive mesogen layer is disposed on a common electrode of the opposite substrate. The liquid crystal layer includes liquid crystal molecules arranged to have a pretilt angle between a surface of the lower reactive mesogen layer and a surface of the upper reactive mesogen layer.
Abstract:
A display includes: a display substrate including a liquid crystal layer; a driving substrate driving the display substrate; and a damp-proof layer continuously provided along a top face and side faces of the display substrate, and a top face of the driving substrate.
Abstract:
A liquid crystal display device includes an array substrate, an opposite substrate and a liquid crystal display layer. The array substrate includes a pixel electrode and a lower reactive mesogen layer. The pixel electrode includes a plurality of slit portions disposed on a plurality of domains in different directions. The lower reactive mesogen layer is disposed on the pixel electrode to induce an inclined direction of liquid crystal molecules. The opposite substrate includes an upper substrate. An upper reactive mesogen layer is disposed on a common electrode of the opposite substrate. The liquid crystal layer includes liquid crystal molecules arranged to have a pretilt angle between a surface of the lower reactive mesogen layer and a surface of the upper reactive mesogen layer.
Abstract:
According to an embodiment of the present invention, a display panel is provided, which comprises a first substrate (1) and a second substrate (2), wherein the display panel further comprises two first partitioners (6) provided between the first substrate (1) and the second substrate (2) for holding sealant (3). According to another embodiment of the present invention, a display device is also provided, which comprises the above display panel.
Abstract:
A TFT 1 is formed on a glass substrate 11, and a flattening resin film 17 covering the TFT 1 is formed. Furthermore, a moisture-proof protective film 18 covering the entire surface of the flattening resin film 17 is formed. For the protective film 18, a SiO2 film, a SiN film, a SiON film, or a stacked film thereof is used. The edge surfaces of the flattening resin film 17 are disposed on the inner side of or under a seal 4, and are formed in a tapered shape. By this, the entry of moisture into the flattening resin film 17 is prevented, preventing display degradation. This effect becomes noticeable in a display device including an oxide semiconductor TFT.