Abstract:
The invention relates to an array substrate and a method for preparing the same, and a display device. The method for preparing an array substrate comprises steps S1) forming a pattern, which includes a gate electrode, a gate electrode insulating layer, an active layer and a source-drain electrode, on a base substrate; and S2) forming a transparent conducting layer on the base substrate on which step S1 has been accomplished, and simultaneously forming a pattern including a pixel electrode and a data line via a one-time patterning process. In this method, the steps of the manufacture process can be reduced, the production cost can be saved, and the production efficiency can be improved. Moreover, since the pixel electrode and the data line may be both formed to have a low resistance value and a high light transmission rate, the performance of the array substrate can be improved.
Abstract:
The embodiments of the present invention provide a display device, a method for manufacturing the same, and a method for controlling the same, relating to the field of display, realizing a switch between dual-view display and normal display. The display device comprises a display panel and a transparent substrate located on a light output side of the display panel; the display panel comprises a plurality of pixel units arranged in array; a first electrode and a second electrode insulated with each other are arranged between the display panel and the transparent substrate; the first electrode comprises a plurality of criss-cross strip electrodes; opening areas of the pixel units for displaying are enclosed by the plurality of strip electrodes; the second electrode is a transparent strip electrode, the second electrode corresponds to the interior of the opening area enclosed by the first electrode; wherein black conductive ink is filled in the opening areas defined by the first electrode; in a state that the first electrode is powered up, the black conductive ink gathers near the first electrode; in a state that the second electrode is powered up, the black conductive ink covers the surface of the second electrode.
Abstract:
The invention relates to the field of display technologies, and discloses a method for producing a via, a method for producing an array substrate, an array substrate and a display device to prevent a chamfer from being formed in producing the via, to promote the product quality and improve the display effect of the display device. The method for producing a via comprises: employing a first etching process to partially etch a top film layer in an area that needs to form a via above an electrode, wherein the vertical etching amount achieved by employing the first etching process is less than the thickness of the top film layer; and employing a second etching process for which the vertical etching rate is larger than the lateral etching rate to etch the remaining part in the area that needs to form a via, until the electrode is exposed.
Abstract:
A mask plate is used for implementing a graphic structure with a narrower line width on a target substrate. The mask plate includes a slit-shaped photic area and a lightproof area. An edge of the slit-shaped photic area is in a curve shape.
Abstract:
The present disclosure provides an array substrate comprising a structure to be detected disposed on a base substrate. An additional layer for detecting the structure to be detected is broken is disposed below the structure to be detected. The additional layer has a color different from that of the structure to be detected and a same pattern shape as that of the structure to be detected. The present disclosure also provides a detecting method and detecting apparatus of the array substrate described above. According to the array substrate, the detecting method and the detecting apparatus of the present disclosure, an early detection of the breakage defect occurred during the fabrication process of the array substrate can be achieved so as to discover and eliminate those defects as early as possible, which improves throughput and yield.
Abstract:
The present invention provides an active substrate and a display device for realizing color display of an electronic paper. The active substrate comprises a first substrate and a pixel electrode layer formed on the first substrate, and further comprises a color filter layer formed on the pixel electrode layer and a protective layer formed on the color filter layer, wherein the color filter layer comprises: a red sub-pixel unit, a green sub-pixel unit and a blue sub-pixel unit that are sequentially arranged; wherein the materials of the red sub-pixel unit, the green sub-pixel unit and the blue sub-pixel unit are quantum dot materials that emit red light, green light and blue light respectively when excited by the ambient light. The display device according to the present invention comprises an electrophoretic display device and an electrowetting display device.
Abstract:
A method for detecting a pattern offset amount of exposed regions comprises forming at least one pair of conductive detecting marks with a predetermined position relationship by a patterning process including two exposing processes; detecting an electrical characteristic of the at least one pair conductive detecting marks, if the detected electrical characteristic does not meet a predetermined position relationship, it is determined that the pattern offset amount of the exposed regions in two exposure steps is not qualified; and if the detected electrical characteristic meets the predetermined position relationship, it is determined that the pattern offset amount of the exposed regions in two exposure steps is qualified.
Abstract:
An array substrate and a manufacturing method thereof as well as a display panel are provided. The manufacturing method comprises: forming a pattern including a scanning line (32) and a spacer base (33) on a same layer of a substrate (31); forming a gate insulating layer (34); forming a pattern including an active layer (35), a data line, a source electrode and a drain electrode; forming a passivation layer (36); sequentially etching the passivation layer (36) and the gate insulating layer (34) through a dry etching method to form a via hole (38) exposing the spacer base (33), and inducing materials generated from an etching process in a reaction cavity to deposit on a surface of the spacer base (33) through an electric field formed by the spacer base (33) exposed in the via hole (38) and etching gas adopted in the etching process, to form a spacer (39).
Abstract:
The embodiment provides a touch screen and a display device. The touch screen has: a first substrate and a second substrate arranged in opposite to each other, and a touch-driving electrode and a touch-sensing electrode arranged in a crossing manner on the first substrate and the second substrate, a non-flat region is provided at a region of the first substrate on which the touch-sensing electrode is to be formed, and the touch-sensing electrode is arranged on the first substrate in accordance with a shape of the first substrate so as to be formed with a non-flat region; and/or a non-flat region is provided at a region of the second substrate on which the touch-driving electrode is to be formed, and the touch-driving electrode is arranged on the second substrate in accordance with a shape of the second substrate so as to be formed with a non-flat region.
Abstract:
An embodiment of the present application discloses a capacitive touch panel including a base substrate, on which a plurality of transparent conductive patters being capable of transmitting touch signals and not overlapping with each are provided, and each transparent conductive pattern is an integrated pattern made of a same material layer. An embodiment of the present application further provides a method for manufacturing a capacitive touch panel, which includes forming a plurality of transparent conductive patterns on a base substrate through one mask patterning process. An embodiment of the present application further includes a display device comprising the capacitive touch panel as described above. An embodiment of the present application can save masks and can manufacture capacitive touch panels at a low cost. Furthermore, the embodiments of the present application have advantages of high production efficiency and of high yield rate.