Abstract:
A display device comprising a first substrate, a second substrate, a blue phase liquid crystal layer and an optical element is provided. The first substrate has a display area and is opposite to the second substrate. The blue phase liquid crystal layer is disposed between the first and the second substrate and reflects a light selectively. The spectrum peak of the light is within an intersection interval corresponding to a cross point of x_bar, y_bar and z_bar stimulus value spectrums, and the intersection interval has a wavelength range from 480 nm to 520 nm. The optical element has at least one function for adjusting a phase of the light or absorbing the light.
Abstract:
A pixel electrode structure including a first electrode and a second electrode is provided. The first electrode has a first stripe electrode extended along a first direction and pleural first branch electrodes connected to the first strip electrode. The first branch electrodes include pleural first branch domain electrodes extended along a second direction and pleural second branch domain electrodes extended along a third direction substantially perpendicular to the second direction. The second electrode has a second stripe electrode extended along the first direction and pleural second branch electrodes connected to the second stripe electrode. The second branch electrodes include pleural third branch domain electrodes extended along the second direction and pleural fourth branch domain electrodes extended along the third direction. The first and the third branch domain electrodes are alternated to each other. The second and the fourth branch domain electrodes are alternated to each other.
Abstract:
A liquid crystal display device is provided. The liquid crystal display device includes a first substrate having a pixel unit, wherein the pixel unit has a pixel electrode. A second substrate is disposed opposite to the first substrate, having an opposite electrode. A first polarizer is disposed under the first substrate. A second polarizer is disposed under the second substrate, wherein a polarization axis of the second polarizer is vertical to that of the first polarizer. A liquid crystal layer with chiral dopants having negative dispersion characteristics is disposed between the first and second substrates.
Abstract:
A display device including a display panel and an optical element is provided. The optical element is disposed on one side of the display panel. At least one portion of the optical element overlaps a display area of the display panel. An area of the optical element which is exposed and does not overlap the display area functions as an appearance area. Therefore, the appearance area of the optical element may be seen by a user from outward appearance of the display device. Brand trademarks, ambient light, touch buttons, and other patterns may be displayed through the appearance area. Therefore, a backlight module may be decorative or perform other additional functions besides functioning as a light source.
Abstract:
A display device is disclosed, which includes: a first substrate; a scan line disposed on the first substrate and extending along a first direction; a first thin film transistor unit electrically connecting to the scan line; a second substrate opposite to the first substrate; a spacer disposed between the first and the second substrate and partially overlapping the first thin film transistor unit; a transparent conducting electrode; and two data lines extending along a second direction different from the first direction, wherein the transparent conducting electrode is disposed on the scan line and the two data lines. The transparent conducting electrode comprises a main electrode having a longitudinal direction substantially identical to the second direction; the spacer and the main electrode respectively have a first width and a second width in the first direction, and a ratio between the first and second width ranges between 5:1 and 5:4.
Abstract:
An active-matrix substrate of display panel includes a transparent substrate and capacitor structures including first and second metal layers, first and second and third insulating layers, a conductive layer, a transparent conductive layer disposed above the transparent substrate. The second metal layer disposed on the first insulating layer partially overlaps a region of the first metal layer. The second insulating layer is disposed on the second metal layer. The conductive layer disposed on the second insulating layer partially overlaps a region of the second metal layer. The third insulating layer is disposed on the conductive layer. The transparent conductive layer is insulated from the conductive layer, and is electrically connected with the second metal layer. The transparent conductive layer partially overlaps a region of the conductive layer.
Abstract:
A display panel is disclosed, comprising: a first electrode comprising a first trunk electrode and a second trunk electrode and a second electrode comprising a third trunk electrode and a fourth trunk electrode formed thereon, wherein when light passes through the display panel, the first and second trunk electrode respectively correspond to first and second dark lines crossing to each other to form a first cross site, the third and fourth trunk electrode respectively correspond to third and fourth dark lines crossing to each other to form a second cross site, the first and third dark lines respectively comprise first and second arc portions at the first and second cross sites near to a first scan line, and a first concave side of the first arc portion and the second concave side of the second arc portion face to sides opposite to each other.
Abstract:
A display device is provided. The display device includes a first electrode and a second electrode. The first electrode includes a first main portion, a first peripheral portion, and a plurality of first extending portions. Part of the first extending portions extend into the first peripheral portion and are connected to each other via a first vertically-extending portion. Other part of the first extending portions do not extend into the first peripheral portion and are separated from each other. The second electrode includes a second main portion, a second peripheral portion, and a plurality of second extending portions. Part of the second extending portions extend into the second peripheral portion and are connected to each other via a second vertically-extending portion. Other part of the second extending portions do not extend into the second peripheral portion and are separated from each other.
Abstract:
A display device is provided. The display device includes a first substrate, a second substrate, a liquid-crystal layer, a first electrode, and an opposite electrode. The liquid-crystal layer is disposed between the first substrate and the second substrate. The first electrode is disposed on the first substrate. The opposite electrode is disposed on the side of the second substrate that faces the first substrate. The first electrode includes a first main portion and a plurality of first extending portions. The first extending portions are connected to the first main portion, at least one of the first extending portions includes a first side, a second side, and a curved structure. The curved structure connects the first side to the second side, and the curved structure has a first curvature radius greater than zero.
Abstract:
A display device includes a backlight structure, a first liquid-crystal layer, a second liquid-crystal layer, and polarized layers. The first liquid-crystal layer is disposed on the backlight structure. The second liquid-crystal layer is disposed on the first liquid-crystal layer. The polarized layers are located between the backlight structure and the first liquid-crystal layer, between the first liquid-crystal layer and the second liquid-crystal layer, and located on the second liquid-crystal layer. The extinction ratio of the polarized layers is in a range from about 5000 to 50000.