The disclosure relates in general to an electronic device and a controlling method thereof, and more particularly to a touch sensing display and a sensing method thereof.
As the development of the display technology, various display devices have been invented. Some display devices include a display panel and a touch panel. The touch panel is disposed on the display panel. User can touch the items shown on the display panel to input some signal.
For reducing the size the display device, a touch on display (TOD) technology is invented. In the TOD technology, the touch panel and the display panel are integrated into one piece. That is to say, some of the elements in the display panel are worked for the touch function. However, because the touch panel and the display panel are integrated into one piece, the detection of the touch is easily to be interfered.
The disclosure is directed to a touch sensing display and a sensing method thereof. A gate signal and a common signal are controlled to be synchronous to a touch sensing signal during a touch mode period. Therefore, a finger can be accurately detected without any interference.
According to one embodiment, a sensing method for a touch sensing display is provided. The touch sensing display includes a touch sensor layer and an active shield layer wherein the active shield layer is also an active area array of the touch sensing display. The active shield layer includes a plurality of gate lines and a common electrode. The sensing method comprises the following steps. A touch sensing signal is applied to the touch sensor layer during a touch mode period. A gate signal of the gate lines is controlled to be synchronous to the touch sensing signal during the touch mode period. A common signal of the common electrode is controlled to be synchronous to the touch sensing signal during the touch mode period.
According to another embodiment, a touch sensing display is provided. The touch sensing display includes a touch sensor layer, a touch sensing signal generator, an active shield layer, a gate driver, a common signal driver and a mode controller. The touch sensing signal generator is coupled to the touch sensor layer for applying a touch sensing signal to the touch sensor layer during a touch mode period. The active shield layer includes a plurality of gate lines and a common electrode. The gate driver is for applying a gate signal to the gate lines. The common signal driver is for applying a common signal to the common electrode. The mode controller is for controlling the gate signal to be synchronous to the touch sensing signal during the touch mode period, and controlling the common signal to be synchronous to the touch sensing signal.
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
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Moreover, there is a fourth capacitance C4 formed between the finger F00, connected to the human body, to the reference ground layer R00, via the far field.
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The mode controller MC00 which controlling handover between the touch sensing mode and a display addressing mode includes a gate switch G03, an offsetting unit G04 and a common signal switch C03. The touch sensing display 100 further includes a gate signal generator G01, a common signal generator C01, a source switch S03 and a touch charge integrator T03.
During the display mode period P01, the gate switch G03 connects the gate signal generator G01 and the gate driver G02. The gate signal generator G01 provides the gate signal VG to the gate driver G02. The voltage level of the gate signal VG is controlled, such that the selected TFTs in the active area array remained in a GATE OFF state. In the display addressing mode, this level is chosen as −8V for a LTPS process, and is provided by the gate driver G02 to all gate lines G00 which are not being addressed. The common signal switch C03 connects the common signal generator C01 and the common signal driver C02. The source switch S03 connects the source driver S02 and the source lines S00 (shown in
During the touch mode period P02, the touch sensing signal generator T01 applies the touch sensing signal VT to the sensor layer T00. The touch charge integrator T03 is used for analyzing the charge of the first capacitance C1 to detect the finger F00 or the probe touching. The gate switch G03 connects the offsetting unit G04 and the gate driver G02. The offsetting unit G04 is used for offsetting the touch sensing signal VT. And via the offsetting unit G04, the voltage level of the gate signal VG can vary between −6V and −10V for the same LTPS process, and is provided by the gate driver G02 to all gate lines G00. The common switch C03 connects the touch sensing signal generator T01 and the common signal driver C02. The source switch S03 disconnects the source driver S02 and the source lines S00 (shown in
As such, during the touch mode period P02, the mode controller MC00 controls the gate signal VG to be synchronous to the touch sensing signal VT, the mode controller MC00 controls the common signal VC to be synchronous to the touch sensing signal VT, and the source switch S02 controls the source lines S00 to be floating. As such, with the gate signals VG and the common signal VC being synchronous, and equal in amplitude to the touch sensing signal VT, the sensor layer T00, and the active shield layer A00, comprising the common electrode C00, the gate lines G00,and the source lines S00, all experience are the same, and have identical voltage step. This causes that there is no current flowing between the sensor layer T00, and the active shield layer A00, and ensures that the parasitic capacitances, such as the second capacitance C2, and the capacitances C21, C22, C23, have no influence on the measurement of the first capacitance C1.
In one embodiment, the gate switch G03, the offsetting unit G01 and the common signal switch C03 of the mode controller MC00 are integrated into a display driver integrated chip. The source switch S03 is disposed on the TFT substrate G2 (shown in
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At the time T1, a transition from the display mode P01 to the touch mode period P02 is now starting. The source signal VS is driven to be a predetermined value within a source signal range. For example, the source signal VS may be driven to be 0V.
At the time T2, the common signal VC is driven to be a predetermined value which is a low level of the touch sensing signal VS, such as 0V.
At the time T3, the gate signal VG is driven to be a predetermined value which is offset from the low level of the touch sensing signal VT, such as −10V.
At the time T4, the source signal VS is controlled to be floating and will follow the gate signal VG and the common signal VC.
At the time T5, the touch sensing signal VT is applied to the touch sensor layer T00. The touch sensing signal VT is a cyclic wave.
During the touch mode period P01, the gate signal VG and the common signal VC are controlled to be synchronous to the touch sensing signal VT. For example, a cycle of the touch sensing signal VT, a cycle of the gate signal and a cycle of the common signal VC are identical and an amplitude of the touch sensing signal VT, an amplitude of the gate signal and an amplitude of the common signal VC are 4V. Besides, during touch operation, in order to keep the pixel values of the active area array not affected, the minimum and maximum levels of the gate signal VG is controlled, such that the TFT devices in the active area array remain OFF. So the gate signal VG must be in the allowable range of the TFT devices gate voltage to keep the TFT devices in the active area array remain OFF. For example, the minimum of the gate signal VG is −10V and the maximum of the gate signal VG is −6V, if an amplitude of the touch sensing signal VT is 4V (−10 v+4V=−6V).
At the time T6, a transition from the touch mode P02 to the display mode period P01 is now starting. The touch sensing signal VT is controlled to be 0V, the gate signal VG is controlled to be −10V, and the common signal VC is controlled to be 0V.
At the time T7, the source switch S03 connects the source lines S00 and the source driver S02. The source lines S00 are driven to be a predetermined voltage within the source signal range. For example, the source lines S00 may be driven to be 0V.
At the time T8, the gate signal VG is controlled to be regular gate-off voltage level, such as −8V.
At the time T9, the common signal VC is controlled to be display VCOM level which setting to minimize flicker, such as 0.2V.
At the time T10, the touch sensing display 100 is at the display mode period P01.
Base on above, during the touch mode period, the gate signal VG and the common signal VC are controlled to be synchronous to the touch sensing signal VT during the touch mode period P02. The value of the first capacitance C1 will not be interfered by the active shield layer A00, and the finger F00 can be accurately detected.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.
This application claims the benefit of U.S. provisional application Ser. No. 62/016,719, filed Jun. 25, 2014, the subject matter of which is incorporated herein by reference.
Number | Date | Country | |
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62016719 | Jun 2014 | US |