Abstract:
The backlight module provided in the present disclosure comprises a backplate and a light-emitting device, and the backplate has a mounting surface. The light-emitting device comprises a mounting member and a light source disposed on the mounting member. Moreover, the backplate comprises a concave portion and/or a convex portion, and the concave portion and/or the convex portion fixes the mounting member onto the mounting surface. The backlight module provided in the present disclosure can simplify steps of assembling or disassembling the light-emitting device, thus production efficiency can be improved and high integration manufacturing of backlight modules can be facilitated.
Abstract:
The present disclosure provides an array substrate and a method for manufacturing the same, and a display apparatus. The array substrate comprises a shielding electrode driven independently, and the shielding electrode covers at least one gate line and/or at least one data line. The shielding electrode can isolate a signal of the at least one gate line and/or the at least one data line, so that the signal of the at least one gate line and/or the at least one data line is prevented from interfering with normal deflections of liquid crystal molecules of a liquid crystal display. Moreover, since the shielding electrode is driven independently, the shielding electrode will not affect a voltage of a common electrode of the liquid crystal display.
Abstract:
An array substrate and a display device are provided. The array substrate includes a base substrate and a gate metal layer, an active layer and a source/drain metal layer disposed on the base substrate; the gate metal layer includes a gate line and a storage electrode line that extends in parallel to the gate line; the active layer includes a first pattern taken as a channel region of a thin-film transistor (TFT) and a second pattern at least partially overlapped with the storage electrode line in a thickness direction of the base substrate, or the source/drain metal layer includes a data line pattern and a metal layer pattern at least partially overlapped with the storage electrode line in the thickness direction of the base substrate.
Abstract:
An array substrate and a display device are provided. The array substrate includes a display region and a peripheral region surrounding the display region. Gate lines and data lines crossing the gate lines are arranged at the display region. A static charge shielding unit is arranged at the peripheral region. The array substrate further includes a static charge releasing line connected to the static charge shielding unit, and the static charge shielding unit is configured to release static charges at the peripheral region through the static charge releasing line.
Abstract:
Provided are an array substrate and a display device. The array substrate includes the array substrate. The array substrate includes at least one of a first support pattern layer and a second support pattern layer, the first support pattern layer and a gate line overlap with each other; the second support pattern layer and the data line overlap with each other, an orthogonal projection of at least one of the first support pattern layer and the second support pattern layer on the first base substrate is located outside an overlapping area of the orthogonal projections of the gate line and the data line on the first base substrate.
Abstract:
The present disclosure provides an array substrate and a display device. The array substrate includes a plurality of signal lines, a plurality of secondary discharging lines arranged substantially parallel to each other, each of the plurality secondary discharging being arranged to cross the plurality of signal lines, a plurality of first electrostatic discharging units arranged in one-to-one correspondence with the plurality of signal lines, and a primary discharging line connected to the plurality of secondary discharging lines. One end of each first electrostatic discharging unit is connected to its corresponding signal line, and the other end thereof is connected to one of the plurality of secondary discharging lines.
Abstract:
A display apparatus comprises a T/CON functional module for providing a timing control, wherein the T/CON functional module and at least one other functional module in the display apparatus are integrated into one printed circuit board, so that the integration of printed circuit boards is improved, the number of peripheral circuit boards and lead wires of the display apparatus is decreased, and the manufacturing cost of the display apparatus is reduced.
Abstract:
The present disclosure provides an array substrate, a flexible display device, and a method for manufacturing an array substrate. The array substrate includes a flexible substrate arranged at a display region and a peripheral region, and an array layer formed on the flexible substrate. The flexible substrate arranged at the display region has a first thickness, and at least a portion of the flexible substrate arranged at the peripheral region has a second thickness greater than the first thickness. According to the array substrate of the present disclosure, the flexible substrate arranged at the peripheral region is provided with a thickened portion so as to meet the strength requirement of an unfoldable region. Meanwhile, the thickened portion can be formed in a single process through a base plate having a corresponding concave structure, and as a result, it is able to reduce the process complexity.
Abstract:
An organic light emitting diode (OLED) display device and a preparation method thereof, and a display apparatus are disclosed. The OLED display device includes a base substrate (21), an anode (23), a cathode (26) and an organic functional layer (25), the anode (23), the cathode (26) and the organic functional layer (25) formed on the base substrate (21), and the organic functional layer (25) located between the cathode (26) and the anode (23), the anode (23) and/or the cathode (26) being a topological insulator with a two-dimensional nanostructure, and the topological insulator with the two-dimensional nanostructure being adhered on the base substrate (21) by an adhesive layer. The OLED display device overcomes the problem of non-uniform display lightness which is caused by the high transmission resistance and high IR drop of metal electrodes of OLED display devices.
Abstract:
Provided are an array substrate and driving method thereof, and a display apparatus. The array substrate comprises multiple storage electrode lines (1) each of which comprises at least two storage electrode signal input terminals (11). The array substrate can improve the driving capability of the storage electrode signals on the storage electrode lines (1).