TOUCH SCREEN AND PRESSURE TOUCH DETECTION METHOD
20170357346 · 2017-12-14
Inventors
Cpc classification
G06F3/04142
PHYSICS
G06F2203/04105
PHYSICS
G06F3/0446
PHYSICS
G06F2203/04104
PHYSICS
G06F2203/04112
PHYSICS
International classification
Abstract
The present disclosure provides a touch screen and a pressure touch detection method thereof. The touch screen comprises a touch panel and a frame surrounding sides of the touch panel, the touch panel comprises a display module and a touch module, at least one pressure sensor is arranged between the touch module and the frame; wherein the pressure sensor comprises a first electrode, a second electrode, and a piezoresistive material layer disposed between the first electrode and the second electrode; the first electrode is located on a same layer and is formed by a same material as a touch electrode of the touch module; the second electrode is formed by a portion of the frame in touch with the piezoresistive material layer and located at the opposite side of the first electrode; both the first electrode and the second electrode are connected with a touch control chip.
Claims
1. A touch screen comprising a touch panel and a frame surrounding at least sides of the touch panel, wherein, the touch panel comprises a display module and a touch module located at a light output side of the display module, the touch screen has a display area and a non-display area surrounding the display area, at least one pressure sensor is arranged between the touch module and the frame at the non-display area; the pressure sensor comprises a first electrode, a second electrode, and a piezoresistive material layer disposed between the first electrode and the second electrode; the first electrode is located on a same layer and is formed by a same material as a touch electrode of the touch module; the second electrode is formed by a portion of the frame in touch with the piezoresistive material layer and located at the opposite side of the first electrode; both the first electrode and the second electrode are connected with a touch control chip.
2. The touch screen of claim 1, wherein the piezoresistive material layer is made of a composite piezoresistive material or a semiconductor piezoresistive material.
3. The touch screen of claim 1, wherein the pressure sensor is connected to the frame through a double-sided conductive adhesive tape.
4. The touch screen of claim 1, wherein the display module and the touch module are provided with optical adhesive therebetween for fixing them.
5. The touch screen of claim 1, wherein a pressure sensor is arranged at each corner of the touch screen.
6. The touch screen of claim 5, wherein each of the pressure sensors is connected with a same touch control chip through a connecting wire.
7. The touch screen of claim 1, wherein the first electrode is formed by indium tin oxide.
8. The touch screen of claim 1, wherein the touch screen is used in any one of mobile phone, tablet computer and notebook computer.
9. A pressure touch detection method for the touch screen of claim 1, comprising: detecting a touch pressure according to change of a distance between the first electrode and the second electrode.
10. The pressure touch detection method of claim 9, wherein the step of detecting the pressure of touch according to change of the distance between the first electrode and the second electrode comprises: detecting resistance change of the piezoresistive material layer between the first electrode and the frame, calculating pressure data based on the resistance change to determine the touch pressure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0024] In order to make a person skilled in the art to better understand the solutions of the present disclosure, the present invention will be described in detail below in conjunction with the accompanying drawings and detailed embodiments.
First Embodiment
[0025] As shown in
[0026] The touch screen of the present embodiment has conventional multi-location capacitive touch screen at the display area, the capacitive touch screen using an OGS mode is a member for direct interaction with a user, the outer surface (light output surface) thereof is provided with rubbing resistant cover glass. Touch electrodes, including a plurality of driving electrodes 21 and sensing electrodes 22 arranged along X and Y axis respectively which are formed by transparent conductive material, are arranged on an inner surface of the cover glass, thereby forming an interaction capacitive matrix for detecting change of capacitance induced by human touch. In particular, in the present embodiment, at least one pressure sensor is arranged between the touch module 2 and the frame 3 at the non-display area, one terminal of the pressure sensor is connected with the frame 3 (metal, as ground), the other terminal is connected with the first electrode 5, the first electrode 5 and the frame 3 are both connected to the touch control chip, the touch pressure can be detected by detecting change in the pressure sensor, wherein said touch pressure is a pressure along a direction perpendicular to the screen surface of the touch screen (i.e. Z axis of the touch screen), thereby the touch screen according to the embodiment of the present disclosure is capable of realizing three dimension (X, Y, Z axis) multi-location touch control. Furthermore, in the present embodiment, the first electrode 5 and the touch electrode are arranged in a same layer and are formed by a same material, therefore the first electrode 5 and one of the driving electrodes 21 and the sensing electrodes 22 can be fabricated through a single patterning process, thereby reducing the fabrication costs.
[0027] Optionally, in the present embodiment, the piezoresistive material layer is made of a composite piezoresistive material or a semiconductor piezoresistive material. Specifically, as shown in
[0028] Optionally, in the present embodiment, the pressure sensor is connected to the frame 3 through double-sided conductive adhesive tape, so as to fix the pressure sensor to the frame 3 without any gap.
[0029] Optionally, the display module 1 and the touch module 2 of the touch panel are provided with optical adhesive 6 (OCA adhesive) therebetween for fixing the both modules. The optical adhesive 6 is optically transparent with a high light transmittance.
[0030] In an embodiment as shown in
[0031] Optionally, the material of the first electrode 5 in the first embodiment may be InGaSnO. Other transparent conductive material such as IGZO, IZO, InSnO, Nano Silver, Graphene and carbon nano-tube may also be feasible. When the touch screen is a large size touch screen, the touch electrodes may have a metal grid structure.
[0032] The touch screen of the present embodiment is applicable to a touch display device of small size, such as anyone of mobile phone, tablet computer and notebook computer, and other display product.
Second Embodiment
[0033] The present embodiment provides a pressure touch detection method for a touch screen, wherein the touch screen may be the touch screen of the first embodiment, the pressure touch detection method comprises:
[0034] detecting a touch pressure according to change of a distance between the first electrode 5 and the frame 3 (the second electrode).
[0035] Optionally, the piezoresistive material layer is made of a piezoresistive material, the step of detecting a touch pressure according to change of a distance between the first electrode 5 and the frame 3 (the second electrode) comprises:
[0036] detecting resistance change of the piezoresistive material layer between the first electrode 5 and the frame 3, calculating a pressure data based on the resistance change to determine the touch pressure.
[0037] According to the present embodiment, the touch pressure is detected using the piezoresistive sensor, such that the touch screen is provided with three-dimensional multi-location touch control function.
[0038] It could be understood that, the above embodiments are merely exemplary embodiments adopted for describing the principle of the present disclosure, but the present disclosure is not limited thereto. Various modifications and improvements may be made by a person skilled in the art without departing from the spirit and essence of the present disclosure, and these modifications and improvements are considered to be within the protection scope of the present disclosure.