Embodiments of the present disclosure relate to a touch screen and specifically to a capacitive touch sensor circuit for a touch screen, a method of forming the circuit and a touch screen and a mobile device comprising the same.
Capacitive touch screens, as a typical representative of touch screens, have been used in different kinds of devices. When a touch screen assembles with a display, it may form some parasitic capacitance between touch sensors consisting the touch screen and display driver sensors consisting the display screen. The display driving signal can feed through this capacitance coupling to touch screen sensor which is a noise for touch screen. When the touch screen gets closer to the display, the parasitic capacitance between the touch screen and display become larger. So does the noise.
A trend of the touch screen is to be thinner and thinner. However, as a cost, the touch screen is facing the increasing noise from a display screen such as LCD due to the reasons described above. Full lamination and On-Cell solution are examples in which the distance between a touch screen and a display is so small that the noise coupling is increased.
Conventional solutions for decreasing the noise are adding shelling layers between the touch screen and the display, which, however, disadvantageously increases the thickness of the screen. Therefore, a challenge in the field is how to decrease noise between a touch screen and a display without increasing the thickness of the touch screen.
In order to address the foregoing and other potential problems, embodiments of the present disclosure propose a capacitive touch sensor circuit for a touch screen, a method for forming the circuit, and a touch screen and a mobile device comprising the circuit.
According to a first aspect, embodiments of the present disclosure provide a capacitive touch sensor circuit for a touch screen comprising a plurality of driving elements arranged as multiple rows in parallel with a horizontal axis of the touch screen, wherein the plurality of driving elements are connected into a plurality of driving lines; and a plurality of sensing elements arranged as multiple columns in parallel with a vertical axis of the touch screen, wherein the plurality of sensing elements are connected into a plurality of sensing lines, each of the plurality of sensing elements being paired with a respective one of the plurality of driving elements. The driving lines and the sensing lines are configured as at least one of: at least two driving elements of one of the plurality of driving lines being positioned at different rows; and at least two sensing elements of one of the plurality of sensing lines being positioned at different columns.
According to a second aspect, embodiments of the present invention provide method of forming a capacitive touch sensor circuit for a touch screen. The method comprises arranging a plurality of driving elements as multiple rows in parallel with a horizontal axis of the touch screen, wherein the plurality of driving elements are connected into a plurality of driving lines; and arranging a plurality of sensing elements as multiple columns in parallel with a vertical axis of the touch screen, wherein the plurality of sensing elements are connected into a plurality of sensing lines. The driving lines and the sensing lines are configured as at least one of: at least two driving elements of one of the plurality of driving lines being positioned at different rows; and at least two sensing elements of one of the plurality of sensing lines being positioned at different columns.
According to a third aspect, embodiments of the present invention provide a touch screen comprising a capacitive touch sensor circuit described above.
According to a fourth aspect, embodiments of the present invention provide a mobile device comprising a capacitive touch sensor circuit described above.
These and other optional embodiments of the present invention can be implemented to realize one or more of the following advantages. In accordance with some embodiments of the present disclosure, the noise between a touch screen and a display can be decreased without increasing the thickness of the screen.
Through the more detailed description of some preferred embodiments of the present disclosure in the accompanying drawings, the above and other objects, features and advantages of the present disclosure will become more apparent, wherein the same reference numerals generally refer to the same components in the embodiments of the present disclosure.
Some preferred embodiments will be described in more detail with reference to the accompanying drawings, in which the preferred embodiments of the present disclosure have been illustrated. However, the present disclosure can be implemented in various manners, and thus should not be construed to be limited to the embodiments disclosed herein. On the contrary, those embodiments are provided for thorough and complete understanding of the present disclosure, and completely conveying the scope of the present disclosure to those skilled in the art.
Reference is first made to
To decrease the noise, reference is now made to
To decrease noise between the touch screen and the display, one solution according to embodiments of the present disclosure may be that the plurality of driving elements are connected into a plurality of driving lines so that at least two driving elements of one of the plurality of driving lines are positioned at different rows. For example, as shown in
As an alternative, the plurality of sensing elements may also be connected into a plurality of sensing lines so that at least two sensing elements of one of the plurality of sensing lines are positioned at different columns. Referred now to
It should also be noted that the solutions as stated with respect to
In practice, it is more meaningful to consider noise occurred in a touch area that a user's finger usually covers in touching. To minimize noise within a touch area, driving lines may be configured so that driving elements positioned in a row within the touch area each belongs to a different driving line.
Reference is now made to
Likewise, sensing lines may also be configured so that each of sensing elements positioned in a column within the touch area belongs to a different sensing line to minimize noise within a touch area.
Reference is now made to
Those skilled in the art should appreciate that although solutions as presented in
According to embodiments of the present disclosure, each of the plurality of driving elements belongs to a driving line, and belongs to an exact one driving line; and each of the plurality of sensing elements belongs to a sensing line, and belongs to an exact one sensing line. In another word, each touch pixel as shown in
It should be noted that the illustrations presented with respect to
By means of implementing an irregular pattern design, the coupling area for specific direction or area between a touch screen and a display is decreased. As coupling area decreases, the efficient capacitance decreases, so that the coupling noise decreases.
Embodiments herein according to present disclosure also provide a method of forming a capacitive touch sensor circuit for a touch screen. The method comprises forming a plurality of driving elements as multiple rows in parallel with a horizontal axis of the touch screen; forming a plurality of sensing elements as multiple columns in parallel with a vertical axis of the touch screen; and forming a plurality of driving lines and a plurality of sensing lines, wherein the plurality of driving elements are connected into a plurality of driving lines, and wherein the plurality of sensing elements are connected into a plurality of sensing lines. Moreover, the driving lines and the sensing lines are configured as at least one of: at least two driving elements of one of the plurality of driving lines being positioned at different rows; and at least two sensing elements of one of the plurality of sensing lines being positioned at different columns.
In an implementation, at least one of the driving lines is linear; or at least one of the sensing lines is linear, or both.
In an implementation, the method further comprises configuring the driving lines so that, with respect to a touch area, each of driving elements positioned in a row within the touch area belongs to a different driving line; or comprises configuring the sensing lines so that, with respect to a touch area, each of sensing elements positioned in a column within the touch area belongs to a different sensing line, or both.
In an implementation, each of the plurality of driving elements belongs to an exact one driving line, and each of the plurality of sensing elements belongs to an exact one sensing line.
Embodiments herein according to present disclosure also provide touch screen comprising a capacitive touch sensor circuit as described above.
The device 700 comprises one or more antennas 712 operable to communicate with the transmitter 714 and the receiver 716. The device 700 further comprises at least one processor controller 720. It should be understood that the controller 720 comprises a circuit required for implementing the function of the mobile terminal 700. For example, the controller 720 may comprise a digital signal processor device, a microprocessor device, an A/D converter, a D/A converter, and other support circuits. The control and signal processing functions of the device 700 are allocated in accordance with respective capabilities of these devices. The device 700 may further comprise a user interface, which, for example, may comprise a ringer 722, a speaker 724, a microphone 726, a display 728, and an input interface, and all of the above devices are coupled to the controller 720. Specially, input interface may include, among other things, a keypad 730 according to embodiments of the present invention as detailed above.
The device 700 may further comprise a camera module 736 for capturing static and/or dynamic images. The device 700 further comprises a battery 734, such as a vibrating battery set, for supplying power to various circuits required for operating the mobile terminal 700 and alternatively providing mechanical vibration as detectable output. The device 700 may further comprise a user identification module (UIM) 738. The UIM 738 is usually a memory device with a processor built in. The UIM 738 may for example comprise a subscriber identification module (SIM), a universal integrated circuit card (UICC), a universal user identification module (USIM), or a removable user identification module (R-UIM), etc. The UIM 738 may comprise a card connection detecting apparatus according to embodiments of the present invention.
The device 700 further comprises a memory. For example, the device 700 may comprise a volatile memory 740, for example, comprising a volatile random access memory (RAM) in a cache area for temporarily storing data. The device 700 may further comprise other non-volatile memory 742 which may be embedded and/or movable. The non-volatile memory 742 may additionally or alternatively include for example, EEPROM and flash memory, etc. The memory may store any item in the plurality of information segments and data used by the device 700 so as to implement the functions of the device 700.
The several exemplary embodiments of the present invention have been described above just for the purpose of illustration. It should be understood that the present invention is not limited to the disclosed embodiments. On the contrary, the present invention intends to cover various modifications and equivalent arrangements included in the spirit and scope of the appended claims. The scope of the appended claims meets the broadest explanations and covers all such modifications and equivalent structures and functions.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2014/072792 | 3/3/2014 | WO | 00 |