Abstract:
Embodiments of the disclosure disclose an electroluminescence display device and a fabrication method thereof. The device comprises a color filter substrate. The color filter substrate comprises: a first substrate, and a first electrode, an organic electroluminescence layer and a second electrode sequentially provided on the first substrate. The color filter substrate further comprises: a first protective layer, provided on the second electrode and covering the second electrode and the organic electroluminescence layer below the second electrode; and a first connection electrode, provided on the first protective layer and connected to the second electrode.
Abstract:
A reflective sheet, a backlight module and a display device are disclosed. The reflective sheet includes a reflective sheet body provided with a plurality of opening areas and an open-closed structure located in each of the opening areas. The open-closed structure comprises at least a movable type vane, and one side of the movable type vane is connected with an edge of the opening area of the reflective sheet body. The movable type vane has a reflective surface, and the reflective surface of the movable type vane is disposed on the same side as a reflective surface of the reflective sheet body. The reflective sheet body is able to alleviate the interference in reflection effect of light ray due to the positioning posts, thus, a good display quality can be achieved.
Abstract:
A barrier film layer, a photoelectric device comprising the barrier film layer and a manufacturing method of the photoelectric device are provided. A material forming the barrier film layer includes a topological insulator, and the barrier film layer is formed on a surface of an base plate which is patterned. In this way, a better package of the photoelectric device can be achieved.
Abstract:
The present invention discloses an array substrate and a display panel. The array substrate comprises a plurality of data lines and a plurality of gate lines which are provided to intersect each other. The data lines are provided in parallel and the gate lines are provided in parallel, and the data lines and the gate lines vertically intersect to divide the array substrate into a plurality of pixel units each having a pixel electrode provided therein. The pixel electrode comprises a sub-pixel electrode comprising a root portion and a branch portion group connected to the root portion, the branch portion group consisting of a plurality of branch portions, adjacent ones of which are separated by slits. The branch portion group partially overlaps the data lines and/or the gate lines.
Abstract:
The present subject matter relates to a touch panel, a driving method thereof, and a display device, for multi-touch function of an in cell capacitive touch panel in a twisted nematic mode. The touch panel includes an array substrate and a color filter substrate arranged oppositely, and a liquid crystal layer formed therebetween. The array substrate includes gate lines, data lines and pixel units each formed by adjacent gate lines and adjacent data lines arranged crosswise. Each pixel unit includes a thin film transistor and a pixel electrode, and the color filter substrate includes common electrodes. The pixel electrodes load data signals through the data lines in a display period, and load driving signals through the data lines in a touch-control period. The common electrodes load common electrode signals through common electrode lines in the display period, and output sensing signals through the common electrode lines in the touch-control period.
Abstract:
Embodiments of the invention disclose an organic light-emitting diode array substrate and a manufacturing method thereof, and a display device. The array substrate comprises: a base substrate, a thin film transistor disposed above the base substrate, an organic light-emitting diode and a filling layer, the organic light-emitting diode including a first electrode, a second electrode, and an organic light-emitting layer disposed between the first electrode and the second electrode, wherein, in a light transmissive region of the organic light-emitting diode array substrate, the base substrate, the filling layer and the organic light-emitting layer of the organic light-emitting diode are disposed to be sequentially abutting.
Abstract:
An array substrate and a display device belonging to the field of display technology. The array substrate comprises a plurality of gate lines, a plurality of data lines which intersect the plurality of gate lines, and a plurality of pixels units comprised of electrodes defined by neighboring gate lines and neighboring data lines. The array substrate includes a plurality of common electrode lines extending in a gate line direction. Each of the common electrode lines comprises a plurality of branches extending in a data line direction. The array substrate can shield an electric field formed between the data lines and the pixel electrodes, so that a problem of light leakage in the array substrate is solved.
Abstract:
An electrical connection structure with a via hole, an array substrate and a display device are provided, and the electrical connection structure with the via hole includes: a first insulating layer disposed on a first electrical conductor and under a second electrical conductor and provided with a first via hole which overlaps the first electrical conductor and the second electrical conductor; and a conductive connection portion which passes through the first via hole, electrically connects the first electrical conductor to the second electrical conductor, and is electrically connected with at least one lateral surface of the first electrical conductor. The electrical connection structure with the via hole can solve the problem of a poor contact between the first electrical conductor and the conductive connection portion which is formed in the via hole.
Abstract:
Embodiments of the disclosure disclose an electroluminescence display device and a fabrication method thereof. The electroluminescence display device comprises an opposed substrate (20) and an array substrate (10). The array substrate (10) comprises: a first substrate (11), and a thin film transistor (12), a first protective layer (131) and a first connection electrode (141) sequentially disposed on the first substrate (11). The first connection electrode (141) is connected to a drain electrode of the thin film transistor (12). The opposed substrate (20) comprises: a second substrate (21), and a first electrode (24), an organic electroluminescence layer (25) and a second electrode (26) sequentially disposed on the second substrate (21). The second electrode (26) and the first connection electrode (141) are connected with each other by a conductive adhesive (40). Thereby, the reliability of the electrical connection between the thin film transistor and the second electrode is enhanced, a film-forming time in the fabrication process of the connection electrode is shortened, and etching difficulty of the connection electrode reduced, and thus the productivity is improved.
Abstract:
The present disclosure relates to a display substrate, a display device and a method for manufacturing the display substrate. The display substrate comprises a substrate, and a plurality of gate lines, a plurality of data lines and a plurality of common electrode lines which are formed above the substrate. The plurality of gate lines and the plurality of data lines are crossed to form a plurality of pixel units. Each of the plurality of pixel units comprises a thin film transistor and a pixel electrode electrically connected to the thin film transistor. The display substrate further comprises connection electrodes located above the substrate. Each of the connection electrodes connects two adjacent common electrode lines.