Abstract:
An electronic device including a glass substrate, a first circuit structure, and a second circuit structure. The glass substrate has a first side and a second side opposite to the first side, and includes a through via. The first circuit structure is disposed on the first side. The first circuit structure at least partially overlaps the through via. The second circuit structure is disposed on the second side. The second circuit structure at least partially overlaps the through via. The first circuit structure and the second circuit structure are electrically connected through the through via, and a thickness of the glass substrate is greater than or equal to 50 micrometers (μm) and less than or equal to 2 millimeters (mm).
Abstract:
A display panel includes a first substrate, a second substrate, a display medium layer disposed between the first substrate and the second substrate, a first metal layer, a first insulation layer disposed on the first metal layer, a second metal layer, a second insulation layer disposed on the second metal layer, a pixel electrode layer and an intervening layer. The first metal layer is disposed on the first substrate to form a signal wiring and a gate. The second metal layer is disposed on the first insulation layer to form a data wiring, a source and a drain. The intervening layer is a patterned layer and disposed between the second insulation layer and the pixel electrode layer. The pixel electrode layer covers the intervening layer and the second insulation layer, and the perimeter of the intervening layer of a sub-pixel ranges between 500 μm and 30000 μm.
Abstract:
A display device includes a first scan line, a second scan line, a third scan line, a data line, a pixel, a low color-shifting circuit, and a black zone generation circuit. In the low color-shifting circuit, a low color-shifting switch receives a third scan signal from the third scan line to selectively couple a compensating capacitor to the second sub-pixel electrode. The black zone generation circuit receives a black zone generation signal to selectively couple either the first sub-pixel electrode or the second sub-pixel electrode to a common node such that either the first sub-pixel or the second sub-pixel becomes a black zone.
Abstract:
An electronic device and a manufacturing method thereof are provided. The electronic device includes an antenna structure, a first circuit structure, and a chip. The antenna structure includes a first dielectric layer, a first metal pattern, a second dielectric layer, and a second metal pattern. The first dielectric layer has a first surface and a second surface. The first metal pattern is disposed on the first surface. The second dielectric layer is disposed on the first metal pattern. The second metal pattern is disposed on the second dielectric layer. The first circuit structure is disposed on the antenna structure, and includes a third dielectric layer, a first conductive layer, and a first pad. The third dielectric layer is disposed on the second surface and has a fourth surface away from the second surface. The first conductive layer is disposed on the fourth surface. The first pad is disposed on the first conductive layer. The chip is disposed on the first circuit structure and electrically connected to the first circuit structure. The first metal pattern is indirectly electrically connected to the first conductive layer. The electronic device and the manufacturing method thereof may increase a bandwidth, reduce warpage, or improve reliability.
Abstract:
A manufacturing method of an electronic device including the following steps is provided. First, a first conductive layer is formed on a substrate. Next, a first insulating layer and a second conductive layer are formed on the first conductive layer. The first insulating layer is disposed between the second conductive layer and the first conductive layer, and the first insulating layer has a via exposing a part of the first conductive layer. An aspect ratio of the via of the first insulating layer is greater than 1, and at least part of a sidewall of the first insulating layer is covered by the second conductive layer.
Abstract:
Provided is an electronic device including a first liquid crystal layer having a first side and a second side opposite thereto; a second liquid crystal layer disposed on the first liquid crystal layer and having a third side and a fourth side opposite thereto; a first alignment layer disposed on the first side and having a first alignment direction; a second alignment layer disposed on the second side and having a second alignment direction opposite to the first alignment direction; a third alignment layer disposed on the third side and having a third alignment direction; and a fourth alignment layer disposed on the fourth side and having a fourth alignment direction opposite to the third alignment direction. The second alignment layer is between the first liquid crystal layer and the third alignment layer. The third alignment layer is between the second liquid crystal layer and the second alignment layer.
Abstract:
An electronic device is provided. The electronic device includes a panel and a polarizing element. The polarizing element is disposed at one side of the panel, and the polarizing element includes a plurality of coating polarizing layers. A method for manufacturing an electronic device is further provided.
Abstract:
A display panel is disclosed, which includes: a substrate; plural scan lines disposed on the substrate and extending along a first direction; a first insulating layer disposed on the scan lines; plural data lines disposed on the first insulating layer and extending along a second direction; a second insulating layer disposed on the data lines; and a common electrode disposed on the second insulating layer and including a through hole; wherein, the through hole includes a first region and a second region, the first region has a first maximum width along the first direction, the second region has a second maximum width along the first direction, and a ratio of the second maximum width over the first maximum width is greater than 0 and less than 1.
Abstract:
A liquid crystal display device comprises a first substrate, a second substrate, a liquid crystal layer, a first polarizer, a second polarizer and a first electrode layer. The liquid crystal layer is disposed between the first and the second substrates, and comprises a liquid crystal mixture comprising a chiral dopant. The first and the second polarizers are disposed on the first and the second substrates, respectively. The first polarizer has a first absorption axis. The first electrode layer is disposed on one of the first and second substrates, and has a first trunk, a second trunk and a plurality of branches. The first and the second trunks intersect to form at least a first area. A first angle θj is formed between the branches and the first trunk, and a second angle θp is formed between the first absorption axis and the first trunk.
Abstract:
The present invention relates to a pixel electrode structure, comprising: at least one scanning line disposed on a substrate; at least one data line disposed on the substrate and intersecting the scanning line to define a pixel area; a pixel electrode disposed in the pixel area; an active element comprising a gate electrode, a source electrode and a drain electrode, wherein the gate electrode is electrically connected to the scanning line, the source electrode is electrically connected to the data line, and the drain electrode is electrically connected to the pixel electrode; and a shielding electrode overlapping one side of the scanning line and electrically connected to the pixel electrode with a first connecting part, wherein the shielding electrode has a jag structure, and the first connecting part is disposed at a junction between jags of the jag structure protruding in different orientations.