Abstract:
An array substrate is provided. The array substrate includes a first semiconductor material layer and a second semiconductor material layer on a side of the first semiconductor material layer away from a base substrate. The first semiconductor material layer includes at least active layers of the driving transistor and the data write transistor. The second semiconductor material layer includes at least an active layer of the compensating transistor. A first capacitance is at least partially formed between a gate connecting pad and at least one of the second semiconductor material layer or a first node connecting line. A second capacitance is formed between the first node connecting line and a respective second gate line. The first capacitance is greater than the second capacitance.
Abstract:
A touch-sensitive device comprises: a touch-sensing carrier panel; a driving signal line and a inductive signal line; a touch-sensitive circuit connected with the driving signal line and the inductive signal line; an array of first electrodes and an array of second electrodes located on the touch-sensing carrier panel; a first switch having an end connected to the array of the first electrodes and the other end connected to the corresponding driving signal line and the corresponding inductive signal line; and a second switch having an end connected to the array of the second electrodes and the other end connected to the corresponding driving signal line and the corresponding inductive signal line, wherein each of the first switch and the second switch is adapted to switch between a respective driving signal line and a respective inductive signal line such that the array of first electrodes is connected with one of the driving signal line and the inductive signal line and the array of second electrodes is connected with the other one of the driving signal line and the inductive signal line. The present disclosure also provides a method for driving the above touch-sensitive device. The present invention may perform the signal conversion by switches such that the first electrodes and the second electrodes are switched between the connections to the inductive signal lines and the connections to the driving signal lines by performing signal switching by switches, so as to achieve the double side touch sensing.
Abstract:
A method for fabricating a flexible display device is provided. The method comprises: attaching a first flexible substrate of the flexible display device onto a conductive adhesive layer, wherein the conductive adhesive layer is disposed on a conductive rigid substrate; fabricating other parts of the flexible display device on the first flexible substrate; aging the conductive adhesive layer; peeling off the flexible substrate from the conductive rigid substrate so as to obtain the flexible display device.
Abstract:
Embodiments of this disclosure provide a transparent display panel and a manufacturing method thereof, and a display device. The transparent display panel comprises a plurality of light-emitting regions and a plurality of transparent regions. The transparent display panel further comprises at least one light-guiding component disposed on a light-emitting side of the transparent display panel, wherein the at least one light-guiding component is configured to transmit a part of light emitted from the light-emitting regions to the transparent regions. In the transparent display panel, a light-guiding component is used to transmit the light emitted by the light-emitting subpixels in the light-emitting regions to the transparent regions, and a plurality of light-redirecting members formed on a surface of the light-guiding component are used to change the direction of light transmitted to the transparent regions and to emit the light from the light-emitting side of the transparent regions. As a result, display uniformity of the whole transparent display panel is improved, and a better display performance can be achieved.
Abstract:
An electroluminescent device and manufacturing method thereof are provided. The electroluminescence device comprises an array substrate (10). The array substrate (10) comprises a substrate (11); and a thin film transistor (12), a protection layer (13) and a connection electrode (14) provided in turn on the substrate (11). The protection layer (13) covers the thin film transistor (12); and the connection electrode (14) is provided on the protection layer (13). The protection layer (13) below the connection electrode (14) protrudes towards a side away from the substrate (11) to form a boss (131). The protection layer (13) comprises a via hole (132) provided at a position corresponding to a drain electrode (122) of the thin film transistor (12). The connection electrode (14) is connected with the drain electrode (122) of the thin film transistor (12) through the via hole (132). The electroluminescent device and manufacturing method thereof shorten the film formation time, reduce the etching difficulty and accordingly improves the production efficiency in the process of manufacturing the connection electrode while the reliability of electrical connection between a thin film transistor and a second electrode is improved.
Abstract:
An electroluminescent device and its manufacture method are disclosed. The electroluminescent device comprises a color film substrate (20) comprising a substrate (21) and a color filter layer, a boss layer (27), a first electrode (24), an organic electroluminescence layer (25) and a second electrode (26) disposed on the substrate (21); said color filter layer comprises a black matrix (221) and color blocks (222) separated by the black matrix (221); said boss layer (27) is disposed between said color filter layer and said first electrode (24), and the boss layer located above the color blocks (222) protrudes towards the side away from the substrate (21) to form a boss (271); said first electrode (24), said organic electroluminescence layer (25) and said second electrode (26) are disposed on the boss layer (27) orderly, and the second electrode (26) is located above said boss (271). In this electroluminescent device, the reliability of the electrical connection between the thin film transistors and the second electrode can be assured, and the etching difficulty during the manufacture process can be reduced, thereby improving the production efficiency.
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 invention discloses a flexible display substrate including a first flexible substrate and a plurality of display elements disposed on a first side of the first flexible substrate, each of the display elements including a thin film transistor. The flexible display substrate further includes a plurality of protrusions each provided on a second side of the first flexible substrate opposite to the first side and corresponding to a respective thin film transistor in a thickness direction of the first flexible substrate. A projection area of each protrusion, in the thickness direction of the first flexible substrate, on the second side of the first flexible substrate at least partially overlaps with a projection area of the thin film transistor corresponding to the protrusion, in the thickness direction of the first flexible substrate, on the second side of the first flexible substrate. In the present invention, it can avoid or alleviate the damage to the thin film transistor during bending the flexible display substrate.
Abstract:
A method for fabricating a flexible display device is provided. The method comprises: attaching a first flexible substrate of the flexible display device onto a conductive adhesive layer, wherein the conductive adhesive layer is disposed on a conductive rigid substrate; fabricating other parts of the flexible display device on the first flexible substrate; aging the conductive adhesive layer; peeling off the flexible substrate from the conductive rigid substrate so as to obtain the flexible display device.
Abstract:
Provided are a display substrate, a preparation method thereof, and a display device. The display substrate includes a display region and a bonding region on one side of the display region. The bonding region at least includes a lead area; the display region includes a plurality of data lines and a plurality of data fanout lines, the lead area includes a plurality of lead wires, and orthographic projections of the plurality of data lines and the plurality of data fanout lines on a plane of the display substrate are at least partially overlapped. At least one lead wire is connected to the data line through the data fanout line. In the lead area, an orthographic projection of any one of the lead wires on the plane of the display substrate and orthographic projections of other lead wires on the plane of the display substrate have no overlap region.