IP Library › Granted Patent US 11,550,424
Granted Patent B2
US 11,550,424 · App. 16/619,618 · Granted Jan 10, 2023

OLED touch control display device and driving method thereof

Inventor: Wei Lu (Shenzhen, CN)
Assignee: Shenzhen China Star Optoelectronics Semiconductor Display Technology Co., Ltd.
G06F3/04166G06F3/0412G09G3/3225G09G3/3266G09G3/3275H01L27/323G09G2300/0452G09G2300/0809
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Quick Facts
Patent No.
US 11,550,424
App. No.
16/619,618
Granted
Jan 10, 2023
Kind
B2
Abstract

The present invention discloses an OLED touch control display device and driving method thereof. The OLED touch control device of the present disclosure sets a transparent touch control electrode and a second thin film transistor in the pixels, a gate of the second thin film transistor is connected to a scanning line corresponding to the pixels, a source is coupled to the touch control lines, a drain is coupled to the touch control electrode. During driving state, a scanning signal is sequentially transmitted to the plurality of scanning lines in each frame period, and a touch control chip used to charge the plurality of touch control lines in one of two adjacent frame periods, and receive a touch control signal transmitted by the plurality of touch control lines in the other of any two adjacent frame periods, thereby achieving high-sensitivity touch sensing, high module yield, and low product cost.

Claims (42)

1. An organic light-emitting diode (OLED) touch control display device, comprising:

a substrate, a plurality of pixels disposed on the substrate, a plurality of transparent touch control electrodes attached to the substrate, a plurality of scanning lines disposed on the substrate, a plurality of data lines disposed on the substrate, a plurality of touch control lines disposed on the substrate, a touch control chip coupled to the plurality of touch control lines; a gate driving chip coupled to the plurality of scanning lines, and a source driving chip coupled to the plurality of data lines;

the plurality of pixels are arranged in an array, each column of pixels corresponds to one of the data lines and one of the touch control lines; and each row of pixels corresponds to one of the scanning lines;

each of pixels comprises a thin film transistor (TFT) device layer disposed on the substrate and a transparent anode disposed on the TFT device layer; and

the TFT device layer comprises a first thin film transistor and a second thin film transistor, a gate of the first thin film transistor coupled to the corresponding scanning line, a source of the first thin film transistor coupled to the corresponding data line, a drain of the first thin film transistor coupled to the anode; a gate of the second thin film transistor coupled to the corresponding scanning line, a source of the second thin film transistor coupled to the corresponding touch control line, a drain of the second thin film transistor coupled to the touch control electrode;

the touch control chip used to charge the plurality of touch control electrodes in one of two adjacent frame periods of the OLED touch display device, and receive a touch control signal transmitted by the plurality of touch control lines from the touch control electrodes in the other of any two adjacent frame periods of the OLED touch display device, wherein each of the touch control electrodes is adjacent to one of the TFT device layers;

the gate driving chip used to transmit in sequence a scanning signal to the plurality of scanning lines in each frame period of the OLED touch control display device;

the source driving chip used to transmit data signal to the plurality of data lines;

wherein timing to start charging of each of the touch control electrodes is controlled by the gate driving chip;

wherein each of pixels comprises a pixel definition layer disposed on the TFT device layer and the anode, a luminous layer disposed on the anode, and a reflective cathode disposed on the luminous layer and the pixel definition layer; an opening of the pixel definition layer disposed above the anode, and the luminous layer located in the opening;

wherein the corresponding scanning line is positioned between the first thin film transistor and the second thin film transistor.

2. The OLED touch control display device as claimed in claim 1 , wherein, materials of the touch control electrode and the anode are ITO, IZO, or magnesium silver alloy; material of the substrate is glass.

3. The OLED touch control display device as claimed in claim 1 , wherein, the plurality of pixels comprise a red pixel, a green pixel, and a blue pixel alternately arranged in sequence;

a red-light luminous layer is a luminous layer in the red pixel, a green-light luminous layer is a luminous layer in the green pixel, a blue-light luminous layer is a luminous layer in the blue pixel.

4. A driving method of the organic light-emitting diode (PLED) touch control display device, comprising steps as below:

S 1 : providing an OLED touch control display device;

the OLED touch control display device comprising a substrate, a plurality of pixels disposed on the substrate, a plurality of transparent touch control electrodes attached to the substrate, a plurality of scanning lines disposed on the substrate, a plurality of data lines disposed on the substrate, a plurality of touch control lines disposed on the substrate, a touch control chip coupled to the plurality of touch control lines, a gate driving chip coupled to the plurality of scanning lines, and a source driving chip coupled to the plurality of data lines; the plurality of pixels arranged in an array, each column of pixels corresponds to one of the data lines and one of the touch control lines, and each row of pixels corresponds to one of the scanning lines; each of pixels comprises a thin film transistor (TFT) device layer disposed on the substrate, and a transparent anode disposed on the TFT device layer; the TFT device layer comprises a first thin film transistor and a second thin film transistor, a gate of the first thin film transistor coupled to the corresponding scanning line, a source of the first thin film transistor coupled to the corresponding data line, a drain of the first thin film transistor coupled to the anode; a gate of the second thin film transistor coupled to the corresponding scanning line, a source of the second thin film transistor coupled to the corresponding touch control line, a drain of the second thin film transistor coupled to the touch control electrode; each of the transparent touch control electrodes adjacent to one of the TFT device layers;

S 2 : going to the ith frame period, wherein i is a positive integer;

the plurality of scanning lines in sequence transmit a scanning signal to in sequence control conduction of the first thin film transistor and the second thin film transistor in a plurality of rows of pixels, the touch control chip charge the plurality of touch control electrodes, thereby charging the touch control electrode in all pixels;

S 3 : going to (i+1)th frame period;

the plurality of scanning lines in sequence transmit scanning signal to in sequence control conduction of the first thin film transistor and the second thin film transistor in a plurality of rows of pixels, the touch control chip receives a touch control signal transmitted by the plurality of touch control lines from the touch control electrodes to obtain a discharge magnitude or a voltage of each touch control electrode, the position of the touch electrode is determined by the difference between the discharge magnitude or the voltage and the preset reference value as the touch position;

in S 2 and S 3 , the gate driving chip used to transmit in sequence scanning signal to the plurality of scanning lines, the source driving chip used to transmit data signal to the plurality of data lines;

wherein timing to start charging of each of the touch control electrodes is controlled by the gate driving chip;

wherein each of pixels comprises a pixel definition layer disposed on the TFT device layer and the anode, a luminous layer disposed on the anode, and a reflective cathode disposed on the luminous layer and the pixel definition layer; an opening of the pixel definition layer disposed above the anode, and the luminous layer located in the opening;

wherein the corresponding scanning line is positioned between the first thin him transistor and the second thin film transistor.

5. The driving method of the OLED touch control display device as claimed in claim 4 , wherein, materials of the touch control electrode and the anode are ITO, IZO, or magnesium silver alloy; material of the substrate is glass.

6. The driving method of the OLED touch control display device as claimed in claim 4 , wherein, the plurality of pixels comprise a red pixel, a green pixel, and a blue pixel alternately arranged in sequence;

a red-light luminous layer is a luminous layer in the red pixel, a green-light luminous layer is a luminous layer in the green pixel, a blue-light luminous layer is a luminous layer in the blue pixel.

7. A driving method of the OLED touch control display device, comprising steps as below:

S 1 : providing an OLED touch control display device;

the OLED touch control display device comprising a substrate, a plurality of pixels disposed on the substrate, a plurality of transparent touch control electrodes attached to the substrate, a plurality of scanning lines disposed on the substrate, a plurality of data lines disposed on the substrate, a plurality of touch control lines disposed on the substrate, a touch control chip coupled to the plurality of touch control lines, a gate driving chip coupled to the plurality of scanning lines, and a source driving chip coupled to the plurality of data lines; the plurality of pixels arranged in an array, each column of pixels corresponds to one of the data lines and one of the touch control lines, and each row of pixels corresponds to one of the scanning lines; each of pixels comprises a thin film transistor (TFT) device layer disposed on the substrate, and a transparent anode disposed on the TFT device layer; the TFT device layer comprises a first thin film transistor and a second thin film transistor, a gate of the first thin film transistor coupled to the corresponding scanning line, a source of the first thin film transistor coupled to the corresponding data line, a drain of the first thin film transistor coupled to the anode; a gate of the second thin film transistor coupled to the corresponding scanning line, a source of the second thin film transistor coupled to the corresponding touch control line, a drain of the second thin film transistor coupled to the touch control electrode; each of the transparent touch control electrodes adjacent to one of the TFT device layers;

S 2 : going to the ith frame period, wherein i is a positive integer;

the plurality of scanning lines in sequence transmit scanning signal to in sequence control conduction of the first thin film transistor and the second thin film transistor in a plurality of rows of pixels, the touch control chip charge the plurality of touch control electrodes, thereby charging the touch control electrode in all pixels;

S 3 : going to (i+1)th frame period;

the plurality of scanning lines in sequence transmit scanning signal to in sequence control conduction of the first thin film transistor and the second thin film transistor in a plurality of rows of pixels, the touch control chip receives a touch control signal transmitted by the plurality of touch control lines from the touch control electrodes to obtain a discharge magnitude or a voltage of each touch control electrode, the position of the touch electrode is determined by the difference between the discharge magnitude or the voltage and the preset reference value as the touch position;

in S 2 and S 3 , the gate driving chip used to transmit in sequence scanning signal to the plurality of scanning lines, the source driving chip used to transmit data signal to the plurality of data lines;

wherein timing to start charging of each of the touch control electrodes is controlled by the gate driving chip;

wherein, materials of the touch control electrode and the anode are ITO, IZO, or magnesium silver alloy; material of the substrate is glass;

wherein each of pixels comprises a pixel definition layer disposed on the TFT device layer and the anode, a luminous layer disposed on the anode, and a reflective cathode disposed on the luminous layer and the pixel definition layer; an opening of the pixel definition layer disposed above the anode, and the luminous layer located in the opening;

wherein the corresponding scanning line is positioned between the first thin film transistor and the second thin film transistor.

8. The driving method of the OLED touch control display device as claimed in claim 7 , wherein, the plurality of pixels comprise a red pixel, a green pixel, and a blue pixel alternately arranged in sequence;

a red-light luminous layer is a luminous layer in the red pixel, a green-light luminous layer is a luminous layer in the green pixel, a blue-light luminous layer is a luminous layer in the blue pixel.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 5, 2019
From: LU, WEI
To: SHENZHEN CHINA STAR OPTOELECTRONICS SEMICONDUCTOR DISPLAY TECHNOLOGY CO., LTD.
Reel/Frame 051189/0873 →
Priority Claims (1)
CN 201910351797.2 · Apr 28, 2019 · national
Continuity (1)
Related Publication 20210326022A1 · Oct 21, 2021