The present application relates to a force touch structure, and more particularly to a force touch structure to shield the electric field generated along the vertical direction of the display layer during display.
With the development of smart phones, tablet, currently, the function of the force touch became another man-machine communication technology following the Multi-Touch, but there are still many problems to be improved, for example, the force touch structure can be easily interference by the other signals of the mobile device, thus affecting the sensing accuracy of the pressure sense signal.
In order to overcome the insufficient of the present technology, a force touch structure is provided in the present application.
In accordance with one aspect of the present application, a force touch structure is provided, the force touch structure including a touching layer, a display layer and a force sensing layer, the touching layer, the display layer and the force sensing layer are sequentially laminated, the force touch structure further including an independent shielding metal layer.
Preferred, the force sensing layer including an insulating dielectric layer and a force sensing film.
Preferred, the insulating dielectric layer is an air gap layer.
Preferred, the display layer is a liquid crystal display panel.
Preferred, when the shielding metal layer is disposed between the backlight module of the liquid crystal display panel and the air gap layer, the shielding metal layer is an opaque conductive layer.
Preferred, the opaque conductive layer is one or more metal of molybdenum, aluminum, copper, gold and silver.
Preferred, when the shielding metal layer is disposed between the rear glass of the liquid crystal display panel and the backlight module of the liquid crystal display panel, the shielding metal layer is a transparent conductive layer.
Preferred, the transparent conductive layer is indium tin oxide film.
Preferred, the display layer is basing on the in-plane switching mode.
The present application not only can shield the electric field in the vertical direction of the display layer, but also enhance the accuracy of the display and touch of the touch device at the same time.
In order to more clearly illustrate the embodiments of the present application or prior art, the following figures will be described in the embodiments are briefly introduced. It is obvious that the drawings are merely some embodiments of the present application, those of ordinary skill in this field can obtain other figures according to these figures without paying the premise.
Embodiments of the present application are described in detail with the technical matters, structural features, achieved objects, and effects with reference to the accompanying drawings as follows. It is clear that the described embodiments are part of embodiments of the present application, but not all embodiments. Based on the embodiments of the present application, all other embodiments to those of ordinary skill in the premise of no creative efforts obtained should be considered within the scope of protection of the present application.
Specifically, the terminologies in the embodiments of the present application are merely for describing the purpose of the certain embodiment, but not to limit the invention. Examples and the claims be implemented in the present application requires the use of the singular form of the book “an”, “the” and “the” are intend to include most forms unless the context clearly dictates otherwise. It should also be understood that the terminology used herein that “and/or” means and includes any or all possible combinations of one or more of the associated listed items.
Referring to
When the touch device 200 is power on by the IC and the FPC illustrated in the FIG., a force touch capacitance C of the touch device 200 is formed between the VCOM electrode 104 and the force sensing film 107 of the display layer 220, wherein the VCOM electrode 104 of the display layer 220 is one electrode of the force touch capacitance C, the force sensing film 107 is the other electrode of the force touch capacitance C.
In the specific embodiment, when a user's finger touch the touching layer 210 of the touch device 200, since the different degrees of deformation of the force sensing film of the force sensing layer 230 causing the different gap size of the force touch capacitance C, and thus causes a change in the force capacitance, at this time, the change of the capacitance can be converted into the change of an electric signal and transmitted to the processor of the touch IC illustrated in FIG., the processor thereby positioning the position and the signal by the force touch of the user's finger, eventually issued a specific instructions to ask cell phones and other mobile touch device to perform specific actions.
However, the electric field 103 shown in
In order to avoid the influence of the electric field 103 shown in
The following further detail describes the embodiment of disposing the shielding metal layer in the force touch structure.
Referring to
When the touch device 300 is power on by the IC and the FPC illustrated in the FIG., a force touch capacitance C is formed between the shielding metal layer 330 and the force sensing film 107 in the touch device 300, wherein the shielding metal layer 330 is one electrode of the force touch capacitance C, the force sensing film 107 is the other electrode of the force touch capacitance C. By adapting this embodiment, not only can shield the electric field in the vertical direction of the display layer 320, but also enhance the accuracy of the display and touch of the touch device 300 at the same time.
Furthermore, in order to obtain better display and force touch effects, in the present embodiment, the shielding metal layer 430 can be adapted as an opaque conductive layer, the opaque conductive layer can be one or a combination of molybdenum, aluminum, copper, gold and silver and other conductive metal.
Referring to
Similarly, when the touch device 400 is power on by the IC and the FPC illustrated in the FIG., a force touch capacitance C is formed between the shielding metal layer 430 and the force sensing film 107 in the touch device 400, wherein the shielding metal layer 430 is one electrode of the force touch capacitance C, the force sensing film 107 is the other electrode of the force touch capacitance C. By adapting this embodiment, it can also shield the electric field in the vertical direction of the display layer 320, and enhance the accuracy of the display and touch of the touch device.
Similarly, in order to obtain better display and force touch effects, in the present embodiment, the shielding metal layer 430 can be adapted as a transparent conductive layer, such as, indium tin oxide (ITO) film.
It can be seen from the respective embodiments described above, comparing to the conventional force touch structure, the improved entire force touch structure further includes a shielding metal layer disposed between the display layer and the force sensing layer, so that when the power is applied, a force capacitance is formed between the shielding metal layer and the force sensing film of the force sensing layer, to sense the force variation of the finger on the touching layer, and shield the electric field generated along the vertical direction of the display layer during display.
Above are embodiments of the present application, which does not limit the scope of the present application. Any modifications, equivalent replacements or improvements within the spirit and principles of the embodiment described above should be covered by the protected scope of the invention.
| Number | Date | Country | Kind |
|---|---|---|---|
| 201610548514.X | Jul 2016 | CN | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/CN2016/099073 | 9/14/2016 | WO | 00 |