Abstract:
An antenna includes a first substrate and a second substrate oppositely arranged; the first substrate includes: a first dielectric substrate having a first surface and a second surface oppositely arranged; a reference electrode layer on the first surface; at least one first radiation part on the second surface and having an orthographic projection on the first dielectric substrate at least partially overlapping that of the reference electrode layer; and at least one feeding structure on the second surface, electrically connected to the first radiation part, and having an orthographic projection on the first dielectric substrate at least partially overlapping that of the reference electrode layer; the second substrate includes: a second dielectric substrate opposite to the second surface; and at least one second radiation part on the second dielectric substrate, and each having an orthographic projection on the first surface within that of one first radiation part.
Abstract:
The present disclosure discloses an array substrate, a method for manufacturing the same and a liquid crystal display device. The method includes: step 101, sequentially forming a metal oxide semiconductor layer and an etching stop layer on a gate insulating layer; step 102, performing one patterning process in the etching stop layer to form a source electrode contact region via hole, a drain electrode contact region via hole and an insulation region; step 103, forming a source-drain electrode layer on the etching stop layer obtained in the step 102; step 104, during a process of performing one patterning process in the source-drain electrode layer to form a source-drain electrode pattern, removing a portion of the metal oxide semiconductor layer corresponding to the insulation region so that the metal oxide semiconductor layer is disconnected at a position corresponding to the insulation region. The insulation region surrounds the source-drain electrode pattern.
Abstract:
Provided are an array substrate and a display device. The array substrate comprises a base substrate and a metal pattern on the base substrate. The metal pattern comprises a metal layer formed of a mixture of aluminum and a second metal, with a molar ratio of the second metal to the aluminum being lower than 1/99 in the metal layer. By controlling content of the second metal being lower than 1% in the metal layer, and applying the metal layer to a gate scanning line and a data scanning line, the present disclosure may suppress a phenomenon of generating a hillock in the gate scanning line and the data scanning line caused by being heated.
Abstract:
The present invention provides an oxide thin film transistor and a manufacturing method thereof, an array substrate and a display device. The oxide thin film transistor of the present invention comprises a substrate, and a gate, a gate insulation layer, an oxide semiconductor active layer, a source and a drain, which are sequentially formed on the substrate, wherein, the oxide thin film transistor further comprises a transition layer formed between the oxide semiconductor active layer and the source and between the oxide semiconductor active layer and the drain, the transition layer comprises a metal layer and a protective layer, and the protective layer is in contact with the oxide semiconductor active layer, the metal layer is arranged on the protective layer and in contact with the source and the drain, and the protective layer is made of a metal oxide.
Abstract:
A thin film transistor liquid crystal display (TFT-LCD) array substrate comprises a gate line, a data line, a pixel electrode and a thin film transistor. The pixel electrode and the thin film transistor are formed in a pixel region defined by intersecting of the gate line and the data line, and the thin film transistor comprises a gate electrode, a semiconductor layer, a source electrode and a drain electrode. Two separate parts of the surface of the semiconductor layer are treated by a surface treatment to form into an ohmic contact layer, and the source electrode and the drain electrode are connected with the semiconductor layer through the ohmic contact layer in the two separate parts, respectively.
Abstract:
Provided are a light guide plate and a method for preparing the same, a backlight module, and a display device. The light guide plate includes a substrate having a first surface and a second surface; and a dot layer arranged on the second surface, in which the dot layer includes magnetic particles, and the first surface is a light exiting surface of the light guide plate.
Abstract:
A substrate inspection device includes a laser emitting unit, arranged at one side of a transmission device, and configured to emit a laser beam to each substrate to be inspected on the transmission device when the substrate to be inspected is moved to an inspection position; a laser receiving unit, arranged at the other side of the transmission device, and configured to receive the laser beam transmitted through the substrate to be inspected; and a calculation unit, configured to calculate transmissibility of the laser beam relative to the substrate to be inspected based on an intensity of the laser beam emitted by the laser emitting unit and an intensity of the laser beam received by the laser receiving unit, and determine whether a line width of a black matrix in the substrate to be inspected is within a predetermined range of the line width based on the transmissibility.
Abstract:
The invention provides a position-limiting structure for a backlight module, a backlight module and a display device, belongs to the field of display technology, and can solve the problem in the prior art that an alignment error occurs in the light-guiding plate due to the fact that the double-sided adhesive tape is adhered to fix the backplane and the light-guiding plate. The position-limiting structure for a backlight module of the invention is made of an elastic material, and is configured to be connected to the backplane; the position-limiting structure includes the position-limiting part, which is arranged outside an edge at least one non light-incoming side of the light-guiding plate and is configured to fix the light-guiding plate to the backplane.
Abstract:
The present invention belongs to the field of display technology and particularly relates to an electrode lead-out structure, an array substrate and a display device. The electrode lead-out structure comprises a substrate electrode, an isolating layer and an lead-out electrode. The isolating layer covers the substrate electrode to expose a part of region of the substrate electrode through a via formed in the isolating layer, and the lead-out electrode is in contact with the exposed region of the substrate electrode, wherein the lead-out electrode covers the wall and bottom of the via of the isolating layer and extends from an upper edge of the via of the isolating layer along an upper surface of the isolating layer to overlap with the upper layer of the isolating layer.
Abstract:
A manufacturing method of an array substrate, including: forming a pattern layer including a pixel electrode, and a pattern layer including a gate electrode and a gate line on a base substrate; on the substrate with the pattern layer including the gate electrode and the gate line formed thereon, forming a gate insulating layer, a pattern layer at least including a metal oxide semiconductor active layer and a pattern layer at least including an etch stop layer; wherein, a first via hole for exposing the pixel electrode is formed over the pixel electrode; on the substrate with the etch stop layer formed thereon, forming a pattern layer including a source electrode, a drain electrode and a data line; wherein, the source electrode and the drain electrode each contact a metal oxide semiconductor active layer, and the drain electrode is electrically connected to the pixel electrode through the first via hole.