This application claims the benefit of Taiwan application Serial No. 102140111, filed Nov. 5, 2013, the subject matter of which is incorporated herein by reference.
1. Technical Field
The disclosure relates in general to a touch display device, and more particularly to a touch display device having a touch electrode layer with specific thickness.
2. Description of the Related Art
With improvement of technology, touch display devices have been widely used in smart phones, tablet computers, notebook computers and other portable electronic devices. Touching sensitivity of the touch display device has great relationship with the sheet resistance (Rs) of the display device. Touch display devices with large size usually need smaller sheet resistance for maintaining greater touch sensitivity. Generally, the thickness of the conductive layer in touch display device is increased to reduce the sheet resistance.
However, the increased thickness of the conductive layer leads to reduce the transmittance of light, such that users will easily see the internal circuits when viewing the touch display device, which affects the display quality of the touch display device.
The disclosure is directed to a touch display device. When lights penetrate through the touch electrode layer, they would maintain greater transmittance by maintaining the touch electrode layer with specific thickness, such that the display quality of the touch display device will be improved.
According to one embodiment, a touch display device is provided. The touch display device comprises a first substrate, a second substrate opposite to the first substrate, a display medium layer, a cover layer, and a first touch electrode layer disposed between the first substrate and the cover layer. The second substrate is disposed between the cover layer and the first substrate. The first touch electrode layer is disposed between the cover layer and the first substrate. A thickness of the first touch electrode layer is between (1400 Å×N)×1.1 and (1400 Å×N)×0.9, where N is one of a positive integer of 1 to 5.
The above and other aspects of the disclosure will become better understood with regard to the following detailed description of the non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
The embodiments are described in details with reference to the accompanying drawings. The identical elements of the embodiments are designated with the same reference numerals. Also, it is important to point out that the illustrations may not be necessarily drawn to scale, and that there may be other embodiments of the present disclosure which are not specifically illustrated. Thus, the specification and the drawings are regard as an illustrative sense rather than a restrictive sense.
In one embodiment, the second substrate 12 has a first surface 121 facing the first substrate 11 and a second surface 122 opposed to the first surface 121. The cover layer 20 is disposed on the second surface 122 of the second substrate 12.
The first substrate 11, the second substrate 12 and the display medium layer 13 may be used to display a frame image. The touch electrode layer 30 may be used to sense the touch signal, such that the touch positions will be detected. The touch electrode layer 30 may include coplanar touch electrode patterns. In another embodiment, the touch electrode layer 30 may include touch electrode patterns with bridge structure.
In one embodiment, the touch display device 100 may be a liquid crystal display (LCD). That is, the display medium layer 13 may be a liquid crystal layer. The first substrate 11 may be such as a thin film transistor substrate, and the second substrate 12 may be such as a color filter substrate. Each of the first substrate 11 and the second substrate 12 may include a polarizing plate (not shown) disposed opposed to the liquid crystal layer. In another embodiment, a color filter layer and a thin film transistor may both be disposed on the first substrate 11 or the second substrate 12.
However, the disclosure does not be limited thereto. In another embodiment, the display medium layer 13 may be an organic light-emitting layer. In one embodiment, the first substrate 11 may be such as a thin film transistor substrate, and the second substrate 12 may be such as a glass substrate. In another embodiment, the second substrate 12 may be such as a color filter substrate.
As shown in
Besides, a refractive index of the cover layer 20 in one embodiment of the disclosure is between 1.45 and 1.65 (with light wavelength in the range of 400-700 nm). In another embodiment of the disclosure, the refractive index of the cover layer 20 is between 1.48 and 1.6. Since the cover layer 20 in the disclosure may be a single-layer structure or a composite structure, the refractive index of the cover layer 20 in the disclosure refers to the refractive index of cover layer 20 with single-layer structure, or the overall refractive index of cover layer 20 with composite structure. The refractive index of the touch electrode layer 30 of the touch display device 100 is between 1.7 and 2.3, but the disclosure is not limited thereto. In some embodiments, the cover layer 20 may be a glass layer, an adhesive layer, a polarizing plate or a hard coated (HC) layer for protecting the touch electrode layer 30 inside. The adhesive layer is such as a pressure sensitive adhesive (PSA).
As shown in
In this embodiment, the touch display device 200 includes a first touch electrode layer 302, a second touch electrode layer 303 and a base layer 301. The base layer 301 is disposed on a second surface 122 of the second substrate 12. The first touch electrode layer 302 and the second touch electrode layer 303 are disposed on the upper side and the lower side of the base layer 301 respectively. The base layer 301 may be a glass or soft substrate, such as polyethylene terephthalate (PET) substrate. The first touch electrode layer 302 may be disposed on the second polarizing plate 15 by a first adhesive layer 21. The first touch electrode layer 302 may be a signal transmission layer, and the second electrode layer 303 may be a signal receiving layer; or the first touch electrode layer 302 may be a signal receiving layer, and the second electrode layer 303 may be a transmission signal layer. A glass layer 23 may be disposed on the second touch electrode layer 303 by a second adhesive layer 22. That is, the glass layer 23 and the second adhesive layer 22 may be a cover layer, and the base layer 301 (and the first touch electrode layer 302, second touch electrode 303) is disposed between the second substrate 12 and the cover layer (the glass layer 23 and the second adhesive layer 22). An electrode thickness L of the first touch electrode layer 302 or the second touch electrode layer 303 may be between (1400 Å×N)×1.1 and (1400 Å×N)×0.9, where N is one of a positive integer of 1 to 5. In another embodiment, the thickness L of the first touch electrode layer 302 or the second touch electrode layer 303 may be between (1400 Å×N)×1.05 and (1400 Å×N)×0.95, where N is one of a positive integer of 1 to 5. In still another embodiment, N may be one of a positive integer of 2 to 4.
As shown in
In this embodiment, a first adhesive layer 21 is between the touch electrode layer 30 and the second substrate 12. That is, the touch electrode layer 30 may be disposed on the second surface 122 of the second substrate 12 by the first adhesive layer 21. For example, the touch electrode layer 30 may be disposed on the second polarizing plate 15 by the first adhesive layer 21. A glass layer 23 may be used as a cover layer, and the touch electrode layer 30 may directly contact the glass layer 23. The touch electrode layer 30 in this embodiment may be a coplanar-electrode structure with both functions of signal transmission (Tx) and signal receiving (Rx). In another embodiment, the touch electrode 30 may be designed with a bridge structure of electrodes. That is, a bridge design (not show in the figure) is disposed at the intersection of signal transmission and signal receiving. The glass layer 23 is disposed on the touch electrode layer 30, and the touch electrode layer 30 can be made directly on the glass layer 23, and then attached on the display panel by the first adhesive layer 21.
Similarly, an electrode thickness L of the touch electrode layer 30 may be between (1400 Å×N)×1.1 and (1400 Å×N)×0.9, where N is one of a positive integer of 1 to 5. In another embodiment, the thickness L of the touch electrode layer 30 may be between (1400 Å×N)×1.05 and (1400 Å×N)×0.95, where N is one of a positive integer of 1 to 5. In still another embodiment, N may be one of a positive integer of 2 to 4.
As shown in
As shown in
Besides, a first touch electrode layer 302 and a second touch electrode layer 303 are included in the embodiments illustrated in
As shown in
As shown in
In the designed structures of the touch display device with In-Cell touch electrode (such as the first touch electrode 302) illustrated in
As shown, the overall transmittance shows a downward trend as the thickness of the touch electrode layer increases. However, curve T shows that significant relative peak values P1 and P2 appear when the thickness of the touch electrode layer is about 1400 Å and 2800 Å. That is, the transmittance has relative high value at the peak P1 and peak P2. However, the reflectance does not show significant increase or decrease as the thickness of the touch electrode layer increases or decreases. But curve R shows that relative wave troughs D1 and D2 appear when the thickness of the touch electrode layer is about 1400 Å and 2800 Å. That is, at the relative wave troughs D1 and D2, the reflectance of which the electrode reflects lights from outside is relative low. As such, when the thickness of the touch electrode layer is about an integer multiple of 1400 Å, the transmittance is relative high (achieves the peak value) and the reflectance is relative low (achieves the wave trough value), such that lights have greater overall transmitting performance in the touch electrode layer.
As shown, curve T1 shows significant relative peak values P3 and P4 appear when the thickness of the touch electrode layer is about 1400 Å and 2800 Å. Similarly, curve T2 shows significant relative peak values P5 and P6 appear when the thickness of the touch electrode layer is about 1400 Å and 2800 Å. Besides, the decreasing degree of the transmittance obtained from the transmittance data in the actual situation (as shown in curve T2) is slighter than that in the simulation (as shown in curve T1) as the touch electrode layer increases. However, in both curve T1 and curve T2, relative peak value of the transmittance is shown when the thickness of the electrode is about 1400 Å and 2800 Å. That is, whether in simulation or in the actual situation, lights have greater transmission performance in the touch electrode layer when the thickness of the touch electrode layer is about 1400 Å and 2800 Å.
Instead, the color dot of the reflected light is close to green when the electrode thickness of the touch electrode layer is about 900 Å or 2100 Å (corresponding to number 9, 21). Because human eyes are more sensitive to green which is more different from the color of the reflected light in the black matrix layer, it is easy to observe the electrode patterns when the backlight of the display device is turned off. Therefore, if the color of the reflected light of the electrode patterns is more desired to be close to the color of the reflected light in the black matrix layer, then it is ideal to choose the touch electrode layer with thickness about 1400 Å or 2800 Å.
According to the embodiments and the result of the experiment, the touch display device in the disclosure can make the light to maintain high transmittance and low reflectance when penetrating the touch electrode layer, such that the internal circuits of the touch display device can prevent from being seen by uses when users are watching the touch display device, and the display quality of the touch display device will be improved.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.
Number | Date | Country | Kind |
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102140111 | Nov 2013 | TW | national |