1. Field of the Invention
This invention relates to touch panel, especially to a capacitive force sensing touch panel.
2. Description of the Prior Art
In general, if capacitive touch electrodes in a capacitive touch panel are also used to be force sensing electrodes at the same time, such as the sensing electrode SE in
When the upper substrate 12 is pressed by a finger, because the distance d between the sensing electrode SE on the upper substrate 12 and the reference electrode RE on the lower substrate 10 will be changed based on different forces provided by the finger, the capacitance sensed between the sensing electrode SE and the reference electrode RE will be also changed accordingly.
However, the capacitive touch sensing signal will be also changed based on different finger pressing areas. When the finger press the touch panel downward, the finger pressing area will be increased and the sensed capacitance will be also changed accordingly. Therefore, the force sensing determined according to capacitance variation will be also affected and no accurate force sensing result can be obtained.
In addition, as shown in
Therefore, the invention provides a capacitive force sensing touch panel to solve the above-mentioned problems.
An embodiment of the invention is a capacitive force sensing touch panel. In this embodiment, the capacitive force sensing touch panel includes pixels. A laminated structure of each pixel includes a first substrate, an anode layer, an OLED layer, a cathode layer, a second substrate, a first conductive layer and a second conductive layer. The anode layer is disposed above the first substrate. The OLED layer is disposed above the anode layer. The cathode layer is disposed above the OLED layer. The second substrate is disposed above the cathode layer. The first conductive layer and the second conductive layer are disposed on a first plane and a second plane above the OLED layer respectively and selectively driven to be a touch sensing electrode or force sensing electrode.
In an embodiment, the capacitive force sensing touch panel has an out-cell touch panel structure, an on-cell touch panel structure or an in-cell touch panel structure.
In an embodiment, the first plane and the second plane are two planes of the same substrate or two planes of different substrates respectively, so that the first conductive layer disposed on the first plane and the second conductive layer disposed on the second plane form a mutual-capacitive structure.
In an embodiment, the first plane and the second plane are two planes of the same substrate or two planes of different substrates respectively, so that the first conductive layer disposed on the first plane and the second conductive layer disposed on the second plane form a mutual-capacitive structure.
In an embodiment, the laminated structure further includes an elastic layer disposed between the first plane and the second plane, when the elastic layer is compressed and deformed by force, a distance between the first conductive layer disposed on the first plane and the second conductive layer disposed on the second plane is changed accordingly.
In an embodiment, when the first conductive layer and the second conductive layer are driven to be the touch sensing electrode, the first conductive layer and the second conductive layer include at least one driving electrode and at least one sensing electrode respectively, the at least one driving electrode and the at least one sensing electrode receive a driving signal and a sensing signal respectively.
In an embodiment, when the first conductive layer and the second conductive layer are driven to be the force sensing electrode, the first conductive layer includes at least one driving electrode receiving a force sensing signal, a driving signal or a reference voltage, the second conductive layer includes at least one sensing electrode receiving a ground level or a floating level.
In an embodiment, when the first conductive layer and the second conductive layer are driven to be the touch sensing electrode, the first conductive layer includes at least one driving electrode receiving a driving signal, the second conductive layer includes at least one sensing electrode receiving a sensing signal and at least one dummy electrode receiving a floating level, the at least one sensing electrode and the at least one dummy electrode are spaced from each other.
In an embodiment, when the first conductive layer and the second conductive layer are driven to be the force sensing electrode, the first conductive layer includes at least one driving electrode receiving a force sensing signal, a driving signal or a reference voltage, the second conductive layer includes at least one sensing electrode and at least one dummy electrode, the at least one sensing electrode and the at least one dummy electrode are spaced from each other and both receive a ground level or a floating level.
In an embodiment, the first substrate and the second substrate are formed by a transparent material.
In an embodiment, the laminated structure further includes a cover lens, the cover lens is formed by a transparent material and disposed above the second substrate, the first conductive layer and the second conductive layer.
In an embodiment, the second substrate is formed by an elastic material which can be compressed and deformed by force, the first conductive layer and the second conductive layer are disposed on a lower surface and an upper surface of the second substrate respectively.
In an embodiment, a force sensing mode of the capacitive force sensing touch panel and a display mode of the capacitive force sensing touch panel are driven in a time-sharing way, the capacitive force sensing touch panel is operated in the force sensing mode during a blanking interval of a display period to drive the first conductive layer and the second conductive layer to be the force sensing electrode; the capacitive force sensing touch panel is operated in the display mode and the force sensing mode simultaneously during a display interval of the display period.
In an embodiment, a touch sensing mode and force sensing mode of the capacitive force sensing touch panel and a display mode of the capacitive force sensing touch panel are driven in a time-sharing way, the capacitive force sensing touch panel is operated in the touch sensing mode and the force sensing mode respectively during a blanking interval of a display period to drive the first conductive layer and the second conductive layer to be the touch sensing electrode and the force sensing electrode respectively.
In an embodiment, the blanking interval includes at least one of a vertical blanking interval (VBI), a horizontal blanking interval (HBI), and a long horizontal blanking interval, the long horizontal blanking interval has a time length equal to or larger than that of the horizontal blanking interval, the long horizontal blanking interval is obtained by redistributing a plurality of the horizontal blanking interval or the long horizontal blanking interval includes the vertical blanking interval.
In an embodiment, the second substrate is an encapsulation layer, the second conductive layer is disposed above the first conductive layer, the laminated structure further includes an elastic layer disposed between the cathode layer and the first conductive layer, when the elastic layer is compressed and deformed by force, a distance between the first conductive layer disposed above the elastic layer and the cathode layer disposed under the elastic layer is changed accordingly, but a distance between the first conductive layer and the second conductive layer is not changed.
In an embodiment, the first conductive layer is driven to be force sensing electrodes and the second conductive layer is driven to be touch sensing electrodes.
In an embodiment, when a force is provided to the laminated structure, the second conductive layer is used to shield the first conductive layer.
In an embodiment, the elastic layer is formed by at least one compressible spacer.
In an embodiment, there is a specific proportion between a number of the force sensing electrodes formed by the first conductive layer and a number of the touch sensing electrodes formed by the second conductive layer.
In an embodiment, conducting pads are disposed on the first conductive layer driven to be the force sensing electrodes and the second conductive layer driven to be the touch sensing electrodes respectively and the conducting pads are electrically connected with conduct bars to transmit force sensing signals and touch sensing signals respectively.
In an embodiment, the first conductive layer driven to be the force sensing electrodes is formed by transparent conductive material, and the first conductive layer is divided into blocks partially overlapping a display area of the OLED layer.
In an embodiment, the first conductive layer driven to be the force sensing electrodes is formed by conductive material and disposed above the OLED layer in mesh type without overlapping a display area of the OLED layer.
In an embodiment, the first conductive layer and the second conductive layer are disposed on a lower surface and an upper surface of the second substrate respectively.
In an embodiment, the second conductive layer is disposed on a lower surface of the second substrate and the first conductive layer is disposed between the second conductive layer and the cathode layer.
In an embodiment, when the capacitive force sensing touch panel is operated in a touch sensing mode, the capacitive force sensing touch panel drives the second conductive layer to be touch sensing electrodes and maintains the first conductive layer at a fixed voltage to pretend touch sensing of the touch sensing electrodes from noise interference.
In an embodiment, when the capacitive force sensing touch panel is operated in a force sensing mode, the capacitive force sensing touch panel drives the first conductive layer to be force sensing electrodes and maintains the second conductive layer at a fixed voltage to pretend force sensing of the force sensing electrodes from noise interference and to shield the force sensing electrodes.
In an embodiment, the capacitive force sensing touch panel drives the first conductive layer and the second conductive layer to be force sensing electrodes and touch sensing electrodes respectively with the same amplitude, the same phase or the same frequency to reduce driving loading without decreasing a force sensing time and a touch sensing time.
In an embodiment, a touch sensing period and a display interval of the capacitive force sensing touch panel are at least partially overlapped; during the touch sensing period, the capacitive force sensing touch panel drives the second conductive layer to be touch sensing electrodes and maintains the first conductive layer at a fixed voltage.
In an embodiment, a force sensing period and a display interval of the capacitive force sensing touch panel are at least partially overlapped.
Another embodiment of the invention is also a capacitive force sensing touch panel. In this embodiment, the capacitive force sensing touch panel includes pixels. A laminated structure of each pixel includes a first substrate, an anode layer, an OLED layer, a cathode layer, a second substrate and a conductive layer. The anode layer is disposed above the first substrate. The OLED layer is disposed above the anode layer. The cathode layer is disposed above the OLED layer. The second substrate is disposed above the cathode layer. The conductive layer is disposed under the OLED layer to be a force sensing electrode.
Compared to the prior art, the capacitive force sensing touch panel of the invention has the following advantages and effects:
(1) During the force sensing period, a relative upper electrode is used to avoid the effects caused by the change of the finger pressing area to maintain the accurate sensed capacitance.
(2) Touch sensing and force sensing of the capacitive force sensing touch panel can be driven in a time-sharing way and operated during the blanking interval of the display period to avoid the noise interference of the liquid crystal module.
(3) If the sensing electrode is disposed above the OLED layer, it can be switched to do touch sensing or force sensing by a touch signal; therefore, additional force sensing electrode disposed in the capacitive force sensing touch panel will be unnecessary. If the sensing electrode is disposed under the OLED layer, it can have better timing and material options.
(4) The capacitive force sensing touch panel of the invention can be applied to different touch panel structures such as in-cell touch panel structure, on-cell touch panel structure or out-cell touch panel structure.
(5) The capacitive force sensing touch panel of the invention can provide the force sensing function and the touch sensing function at the same time without increasing the original entire thickness of the touch display apparatus.
The advantage and spirit of the invention may be understood by the following detailed descriptions together with the appended drawings.
A preferred embodiment of the invention is a capacitive force sensing touch panel. In this embodiment, the capacitive force sensing touch panel can have different touch panel structures such as in-cell touch panel structure, on-cell touch panel structure or out-cell touch panel structure, and the capacitive force sensing touch panel can be an OLED display panel, but not limited to this.
Please refer to
It should be noticed that, in the laminated structure of the pixel of the capacitive force sensing touch panel of the invention, a first conductive layer and a second conductive layer can be disposed on different planes above the OLED layer respectively and the first conductive layer and the second conductive layer can be driven to be touch sensing electrodes or force sensing electrodes in different timings.
Please refer to
It should be noticed that the first plane P1 and the second plane P2 mentioned above can be two planes of the same substrate or two planes of different substrates respectively, so that the first conductive layer CL1 disposed on the first plane P1 and the second conductive layer CL2 disposed on the second plane P2 can form a mutual-capacitive sensing structure.
The first conductive layer CL1 and the second conductive layer CL2 can be selectively driven to be touch sensing electrodes or force sensing electrodes. In an embodiment, when the first conductive layer CL1 and the second conductive layer CL2 are driven to be the touch sensing electrodes during the touch sensing period, the first conductive layer CL1 and the second conductive layer CL2 will include at least one driving electrode (TX) and at least one sensing electrode (RX) respectively and receive a driving signal and a sensing signal respectively to finish capacitive touch sensing; when the first conductive layer CL1 and the second conductive layer CL2 are driven to be the force sensing electrodes during the force sensing period, the first conductive layer CL1 will include at least one driving electrode (TX) receiving a force sensing signal, a driving signal or a reference voltage and the second conductive layer CL2 will include at least one sensing electrode (RX) receiving a ground level or a floating level, but not limited to this.
In another embodiment, as shown in
Then, please refer to
In fact, the first substrate 60 and the second substrate 65 are formed by transparent material (e.g., glass material or elastic material). The cover lens 66 formed by transparent material (e.g., glass material or elastic material) is disposed above the second substrate 65, the first conductive layer CL1 and the second conductive layer CL2. At least one elastic layer is disposed between the first conductive layer CL1 and the second conductive layer CL2, such as the elastic material layer shown in
In
In
In
In an embodiment, the force sensing mode and the display mode of the capacitive force sensing touch panel are driven in a time-sharing way. As shown in
In another embodiment, the touch sensing mode and the force sensing mode of the capacitive force sensing touch panel and the display mode of the capacitive force sensing touch panel are driven in a time-sharing way. As shown in
In practical applications, as shown in
It should be noticed that not only the above-mentioned embodiments that the conductive layer forming sensing electrodes is disposed above the OLED layer, the conductive layer forming sensing electrodes of the invention can be also disposed under the OLED layer driven to be force sensing electrodes.
As shown in
As shown in
In fact, the force sensing mode of the capacitive force sensing touch panel and the touch sensing mode and the display mode of the capacitive force sensing touch panel can be operated in a time-sharing way or simultaneously. The force sensing electrodes formed by the conductive layer CL can be single-layer self-capacitive design or single-layer mutual-capacitive design. The conductive layer CL can be formed by transparent conductive material or opaque conductive material, but not limited to this.
Another preferred embodiment of the invention is also a capacitive force sensing touch panel. In this embodiment, the capacitive force sensing touch panel can have different touch panel structures such as in-cell touch panel structure, on-cell touch panel structure or out-cell touch panel structure, and the capacitive force sensing touch panel can be an OLED display panel, but not limited to this.
For example,
It should be noticed that the force sensing electrode FE in this embodiment combines the laminated structure of the touch panel to achieve slim design. When the force sensing electrode FE is operated, the touch sensing electrode TE which is disposed above the force sensing electrode FE can shield the force sensing electrode FE, so that the force sensing electrode FE will not affected by the variation of finger pressing area and the sensed capacitance will be accurate.
In addition, the reference electrode coupled to reference voltage or ground is disposed under the force sensing electrode FE. When the touch panel is pressed by finger, the distance between the force sensing electrode FE and the reference electrode will be changed and the sensed capacitance will be also changed accordingly. In fact, the reference electrode can be the anode 91 or cathode 93 in
Taking the capacitive force sensing touch panel having the on-cell laminated structure for example, as shown in
Although the capacitive force sensing touch panel having the on-cell laminated structure is taken for example above, but the touch sensing electrode TE is not limited to be disposed on the upper surface of the encapsulation layer ENC. In fact, the touch sensing electrode TE can be also disposed out of the encapsulation layer ENC to form the out-cell laminated structure or the touch sensing electrode TE can be also disposed within the encapsulation layer ENC to form the in-cell laminated structure. The only requirement is that the touch sensing electrode TE can effectively shield the mutual electrical field between the force sensing electrode FE and the object (e.g., finger) proving pressure from outside.
Then, please refer to
In an embodiment, as shown in
In another embodiment, as shown in
Taking the laminated structure 12A of the in-cell capacitive force sensing touch panel for example, as shown in
When the capacitive force sensing touch panel is pressed by a force, the elastic layer EM is compressed by the force and its height will be changed from d to d′ and the capacitance between the force sensing electrode FE and the cathode layer 122 will be also changed from Cf to Cf′; therefore, there will be a capacitance variation generated. In fact, the elastic layer EM can be formed by at least one compressed spacer, but not limited to this.
As shown in
As stated above, the touch sensing and the force sensing of the capacitive force sensing touch panel of the invention can be operated during the blanking interval of the display period. For example, as shown in
As shown in
In fact, if considering the factor of noise, the touch sensing and the force sensing of the capacitive force sensing touch panel of the invention can be operated independently without synchronizing with the vertical synchronous signal Vsync or horizontal synchronous signal Hsync, but not limited to this.
In an embodiment, when the capacitive force sensing touch panel is operated in the touch sensing mode, the capacitive force sensing touch panel will drive the second conductive layer to be touch sensing electrodes TE and maintain the first conductive layer at a fixed voltage (e.g., ground voltage) to avoid the noise interfering the touch sensing of the touch sensing electrodes TE, but not limited to this; when the capacitive force sensing touch panel is operated in the force sensing mode, the capacitive force sensing touch panel will drive the first conductive layer to be force sensing electrodes FE and maintain the second conductive layer at a fixed voltage (e.g., ground voltage) to avoid the noise interfering the force sensing of the force sensing electrodes FE, but not limited to this.
In another embodiment, the capacitive force sensing touch panel of the invention can drive the first conductive layer and the second conductive layer to be force sensing electrodes FE and touch sensing electrodes TE respectively with the same amplitude, the same phase or the same frequency to reduce driving loading without decreasing a force sensing time and a touch sensing time. For example, as shown in
In fact, the touch sensing period of the capacitive force sensing touch panel can at least partially overlap the display period, as shown in
Compared to the prior art, the capacitive force sensing touch panel of the invention has the following advantages and effects:
(1) During the force sensing period, a relative upper electrode is used to avoid the effects caused by the change of the finger pressing area to maintain the accurate sensed capacitance.
(2) Touch sensing and force sensing of the capacitive force sensing touch panel can be driven in a time-sharing way and operated during the blanking interval of the display period to avoid the noise interference of the liquid crystal module.
(3) If the sensing electrode is disposed above the OLED layer, it can be switched to do touch sensing or force sensing by a touch signal; therefore, additional force sensing electrode disposed in the capacitive force sensing touch panel will be unnecessary. If the sensing electrode is disposed under the OLED layer, it can have better timing and material options.
(4) The capacitive force sensing touch panel of the invention can be applied to different touch panel structures such as in-cell touch panel structure, on-cell touch panel structure or out-cell touch panel structure.
(5) The capacitive force sensing touch panel of the invention can provide the force sensing function and the touch sensing function at the same time without increasing the original entire thickness of the touch display apparatus.
With the example and explanations above, the features and spirits of the invention will be hopefully well described. Those skilled in the art will readily observe that numerous modifications and alterations of the device may be made while retaining the teaching of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | |
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62219491 | Sep 2015 | US | |
62248368 | Oct 2015 | US |