Abstract:
A low color shift display panel includes a pixel array. The pixel array includes a first sub-pixel and a second sub-pixel. Each of the first sub-pixel and second sub-pixel respectively includes a data line, a gate line, a first transistor coupled to the data line and a first liquid crystal capacitor, a second transistor coupled to the data line and a second liquid crystal capacitor, and a third transistor coupled to a common voltage and the second transistor. The first sub-pixel has a first ratio which is the width-to-length ratio of the third transistor divided by the width-to-length ratio of the second transistor. The second sub-pixel has a second ratio which is the width-to-length ratio of the third transistor divided by the width-to-length ratio of the second transistor. The second ratio is smaller than the first ratio.
Abstract:
A low color shift display panel includes a pixel array. The pixel array includes a first sub-pixel and a second sub-pixel. Each of the first sub-pixel and second sub-pixel respectively includes a data line, a gate line, a first transistor coupled to the data line and a first liquid crystal capacitor, a second transistor coupled to the data line and a second liquid crystal capacitor, and a third transistor coupled to a common voltage and the second transistor. The first sub-pixel has a first ratio which is the width-to-length ratio of the third transistor divided by the width-to-length ratio of the second transistor. The second sub-pixel has a second ratio which is the width-to-length ratio of the third transistor divided by the width-to-length ratio of the second transistor. The second ratio is smaller than the first ratio.
Abstract:
A display panel includes a first scan line and a second scan line adjacent to the first scan line disposed on the first substrate. A common electrode line is adjacent to the first scan line or the second scan line. The common electrode line has an enlarged portion, and an extending direction of the common electrode line is substantially the same as an extending direction of the first scan line. A first data line and a second data line adjacent to the first data line are disposed on the first substrate. In a direction perpendicular to the extending direction of the common electrode line, the enlarged portion has a maximum width, a part of the common electrode line overlapping the first data line has a maximum width, and the maximum width of the enlarged portion is greater than the maximum width of the first data line.
Abstract:
A first substrate of a display panel includes scan lines disposed above a first base and extending along a first direction, and data lines disposed above the first base and extending along a second direction. An electrode between two data lines has two extending portions substantially parallel to the second direction and one bending portion, and the bending portion is positioned between and connects two extending portions. When a light passes the electrode, an extending direction of a dark pattern corresponding to the bending portion is substantially parallel to the first direction, the dark pattern has a first width in a first gray level and a second width in a second gray level, the first width is larger than the second width, the second gray level is a maximum gray level of the display panel and the first gray level is equal to half of all gray levels.
Abstract:
A display panel comprises a first substrate, a second substrate, a display layer and transistors. One of the transistors includes a gate electrode disposed on the base plate, a first insulating layer disposed on the gate electrode, an active layer disposed on the first insulating layer, and a source electrode and a drain electrode disposed on the active layer, wherein the active layer includes a channel region between the source electrode and the drain electrode. At least one of the source and drain electrodes includes a first conductive layer disposed on the active layer, and a second conductive layer disposed on and contacting the first conductive layer, wherein the second conductive layer exposes a portion of top surface of the first conductive layer so that the first conductive layer possesses a first protrusion portion protruding from the edge of the second conductive layer and extending towards the channel region.
Abstract:
A display device is disclosed, which includes: a first substrate; a plurality of scan lines and a plurality of data lines, wherein the scan lines intersects with the data lines, the scan and the data lines are disposed above the first substrate, and the scan lines extend along a first direction; a common electrode disposed above the first substrate; a second substrate; a display medium layer disposed between the first substrate and the second substrate, wherein the common electrode has a first part extending along the first direction, a second part corresponding to the data lines, and an end part, wherein the first part connects to the second part, the end part connects to the second part, a first angle included between the end part and the second part greater than 0 degree and less than 180 degrees. The end part overlaps partially with the data line adjacent thereto.
Abstract:
A display panel includes a display medium layer between a first substrate and a second substrate. First and second data lines and first and second scan lines are disposed intersected on the first substrate to define a pixel area including a pixel electrode disposed on the first substrate, and a common electrode over the pixel electrode. The common electrode in the pixel area has a first slit near the first data line and a second slit near the second data line. The first slit has a first edge close to the first data line. The second slit has a second edge close to the second data line. The pixel electrode has a third edge located in the first slit and a fourth edge located in the second slit. The distance between the first and the third edge is different from that between the second and the fourth edge.
Abstract:
A display panel comprises a first substrate, a second substrate, a liquid crystal layer disposed between the first substrate and the second substrate, a light-shielding layer disposed between the liquid crystal layer and the second substrate, plural spacers, and an alignment film disposed between the first substrate and the second substrate. The alignment film comprises a first region near the spacer and a second region adjacent to the first region. The second region is positioned outside the first region and corresponds to the light-shielding layer. The first region has a first phase value (S1) and a first roughness value (R1). The second region has a second phase value (S2) and a second roughness value (R2). The ratio (S1/R1) of the first phase value to the first roughness value is larger than the ratio (S2/R2) of the second phase value to the second roughness value.
Abstract:
A liquid crystal display includes a plurality of dots arranged in a matrix formed with pixel columns and pixel rows, wherein each of the dots includes at least a pixel and displays a dot of a first resolution image and the dot size is at least 0.018 mm2 and at most 0.16 mm2, wherein each of the pixel columns is supplied with driving signals having the same polarity, wherein when the liquid crystal display receives a second resolution image signal having dots fewer than the first resolution image signal, a dot of a second resolution image is displayed by at least a high gray-level pixel and at least a low gray-level pixel which displays a gray level lower than the high gray-level pixel, and each of the pixel rows is formed by a plurality of the high gray-level pixels or a plurality of the low gray-level pixels.
Abstract:
An image display system includes a data driving circuit and a timing controller. The data driving circuit outputs multiple data driving signals to provide data of an image signal to multiple pixels on a pixel array. The timing controller obtains original pixel values of the pixels according to the image signal, adjusts the original pixel value(s) of one or more pixel(s) according to a predetermined algorithm to generate adjusted pixel value(s), and generates the data driving signals according to the original pixel values and the adjusted pixel value(s). Based on the predetermined algorithm, an original pixel value of a pixel is adjusted according to a difference between the original pixel value of the pixel and an original pixel value of an adjacent pixel.