Abstract:
A display device includes a display panel, an optical structure layer, a driving unit, a timing control unit and a light sensing unit. The optical structure layer is disposed on the display panel. The driving unit is electrically connected to the display panel. The timing control unit is electrically connected to the driving unit. The light sensing unit is electrically connected to the timing control unit to provide a light sensing result to the timing control unit. The timing control unit is used to receive a first signal and provides a second signal and a third signal to the driving unit according to the light sensing result, and the driving unit drives the display panel according to the second signal and the third signal.
Abstract:
The present disclosure provides an electronic device including a first sensing circuit, a second sensing circuit and a power line. The first sensing circuit includes a first sensing unit and a first transistor, and a first end of the first sensing unit is coupled to a control end of the first transistor. The second sensing circuit includes a second sensing unit and a second transistor, and a first end of the second sensing unit is coupled to a control end of the second transistor. A first end of the first transistor and a first end of the second transistor are coupled to the power line.
Abstract:
A display touch device includes a touch panel disposed on one side of a display panel and third patterned electrodes disposed on a supporting substrate. The touch panel includes a transparent substrate; first and second patterned electrodes respectively disposed on the transparent substrate in first and second direction. Mutual capacitors are formed between the first and second patterned electrodes, and the first and second patterned electrodes form a touch sensor structure. The first patterned electrodes or the second pattern electrodes partially overlap with the third patterned electrodes in a third direction to form a pressure sensor structure. The third direction is a stacking direction of the display panel and the touch panel. The touch sensor structure performs touch sensing in a first period of a frame and performs pressure sensing in a second period of the frame. The first period does not overlap the second period.
Abstract:
A display touch device includes a display panel; a touch panel disposed on one side of the display panel; and the third patterned electrodes disposed on a supporting substrate. The touch panel includes a transparent substrate; the first patterned electrodes disposed on the transparent substrate in a first direction; the second patterned electrodes disposed on the transparent substrate in a second direction. Mutual capacitors are formed between the first patterned electrodes and the second patterned electrodes, and the first patterned electrodes and the second patterned electrodes form a touch sensor structure. The first patterned electrodes partially overlap with the third patterned electrodes in a third direction, or the second patterned electrodes partially overlap with the third patterned electrodes in the third direction to form a pressure sensor structure. The third direction is a stacking direction of the display panel and the touch panel.
Abstract:
The present disclosure provides a touch display panel, comprising: a first substrate; a second substrate disposed opposite to the first substrate; a display medium layer disposed between the first substrate and the second substrate; a sensing electrode layer disposed on the first substrate; and an electrostatic releasing layer disposed on the second substrate, and a sheet resistance of the electrostatic releasing layer is 109-1012Ω/□. The present disclosure also discloses a touch display device using the said touch display panel.
Abstract:
An electronic device with a plurality of panels is provided. The electronic device also has a plurality of scan line driving circuits that correspond to the panels in order to drive the panels. The electronic device also has a controller that is configured to control the scan line driving circuits. Each panel includes a plurality of scan lines. Prior to image refreshing, the controller controls the scan line driving circuits to reset the panels. The controller performs image refreshing by controlling each scan line driving circuit to scan the scan lines of its corresponding panel in a jumping mode scanning procedure.
Abstract:
Sensing pixels each store a sensing voltage level. A method for driving the plurality of sensing pixels includes providing a plurality of readout scan signals to the plurality of sensing pixels, and providing a plurality of reset scan signals to the plurality of sensing pixels. One of the plurality of readout scan signals enables one of the plurality of sensing pixels to output the sensing voltage level stored in the one of the plurality of sensing pixels. One of plurality of reset scan signals resets the sensing voltage level stored in one of the plurality of sensing pixels. An nth reset scan signal of the plurality of reset scan signals is started behind an nth readout scan signal of the plurality of readout scan signals in time domain.
Abstract:
An electronic device includes a panel having a working area and a peripheral area, signal lines, sub-pixels, bio-sensor units, a first switch unit and a second switch unit. The signal lines are disposed on the panel and have a first signal line and a second signal line. The sub-pixels and the bio-sensor units are disposed in the working area. The sub-pixels have a first sub-pixel and a second sub-pixel. The bio-sensor units have a first bio-sensor unit which is electrically connected to the first signal line. The first switch unit and the second switch unit are disposed in the peripheral area and respectively electrically connected to the first sub-pixel and the second sub-pixel through the first signal line and the second signal line. A first time period that the first switch unit is turned on is longer than a second time period that the second switch unit is turned on.
Abstract:
A display device includes a first substrate, a second substrate, an icon sensor, a conductive material, and a first conductive pad. The second substrate is provided opposite the first substrate and has a display area and a non-display area. The icon sensor is provided on the first substrate and is disposed at least partially corresponding to the non-display area. The conductive material is provided between the first substrate and the second substrate. The first conductive pad is provided on the second substrate. The icon sensor is electrically connected to the first conductive pad on the second substrate through the conductive material.
Abstract:
A display device is provided with a first panel including multiple first electrodes and multiple second electrodes intersecting with each other to define multiple pixels, and a cholesteric liquid crystal layer disposed between the first electrodes and the second electrodes. The pixels each operate through multiple phases, including the preparation phase, selection phase and evolution phase, each of which includes a high wave phase and a low wave phase. When one of the pixels operates in the low wave phase of the selection phase, one of the first electrodes corresponding the one of the pixels is applied with a first voltage waveform, one of the second electrodes corresponding to the one of the multiple pixels is applied with a second voltage waveform, and the cholesteric liquid crystal layer corresponding to the one of the multiple pixels receives a first voltage difference, which is not equal to zero.