This Non-provisional application claims priority under 35 U.S.C. §119(a) on Patent Application No(s). 096145565 filed in Taiwan, Republic of China on Nov. 30, 2007, the entire contents of which are hereby incorporated by reference.
1. Field of Invention
The invention relates to a touch screen, a touch panel and a manufacturing method thereof. More particularly, the invention relates to a touch panel and a touch screen having a resistive layer and an anti-reflective layer formed on the resistive layer.
2. Related Art
Recently, the touch panel has been widely applied to many kinds of electronic products, such as the mobile communication device, digital camera, MP3 player, PDA, GPS hand-held PC or ultra mobile PC (UMPC). In the above-mentioned applications, the touch panel is associated with a display screen to form a touch screen. Regarding to the touch screen, the sensitivity and preciseness thereof are very importance factors for the product performance. In addition, the manufacturing processes of the touch panel will affect the production cost thereof.
The operation principle of the touch screen 1 will be described hereinafter. When the signal terminals 114 are charged, the entire resistive layer 112 has an electric field with the distribution of the equipotential lines L1 as is shown in
However, as shown in
In view of the foregoing, the invention is to provide a touch panel and touch screen that have high sensitivity and preciseness, simplified manufacturing processes, enhanced performance and decreased manufacturing cost.
To achieve the above, the invention discloses a touch panel including a substrate, a conductive circuit layer, a resistive layer and a dielectric layer. The substrate has a touch area and a peripheral area. The conductive circuit layer is formed on the peripheral area of the substrate. The resistive layer covers the conductive circuit layer and the touch area of the substrate. The dielectric layer is formed on the resistive layer. Herein, the conductive circuit layer includes a plurality of signal terminals disposed on corner surfaces of the substrate to serve as corner electrodes of the conductive circuit layer. The signal terminals are used to apply voltage to the touch panel and receive current.
In addition, the invention also discloses a touch screen including a touch panel and an external circuit. The touch panel includes a substrate, a conductive circuit layer, a resistive layer and a dielectric layer. The substrate has a touch area and a peripheral area. The conductive circuit layer is formed on the peripheral area of the substrate. The resistive layer covers the conductive circuit layer and the touch area of the substrate. The dielectric layer is formed on the resistive layer. The conductive circuit layer includes a plurality of signal terminals disposed on corner surfaces of the substrate to serve as corner electrodes of the conductive circuit layer. The signal terminals are electrically connected to the external circuit so as to apply voltage to the touch panel and receive current from touch panel.
As mentioned above, in the touch panel and touch screen of the present invention, the conductive circuit layer is formed on the substrate, and the resistive layer is formed on the conductive circuit layer. Thus, more surfaces of the conductive circuit layer can be in contact with the resistive layer so as to increase the transmitted current and enhance the sensitivity and preciseness. In addition, since the dielectric layer is formed on the resistive layer, the resistive layer and the dielectric layer can be performed in a single deposition apparatus. Therefore, the manufacturing processes can be simplified, the performance can be enhanced and the manufacturing cost can be decreased.
The present invention will become more fully understood from the subsequent detailed description and accompanying drawings, which are given by way of illustration only, and thus are not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
The substrate 211 has a touch area T2 and a peripheral area P2 disposed around the touch area T2. In the embodiment, the substrate 221 can be, for example but not limited to, a glass substrate or a plastic substrate. The conductive circuit layer 213 is formed on the peripheral area P2 of the substrate 211 by coating, printing, adhering or deposition. The conductive circuit layer 213 can be discontinuous electrodes as the dot lines shown in
The conductive circuit layer 213 includes a plurality of signal terminals 214 disposed on the corner surfaces of the substrate 211. In the embodiment, the signal terminals 214 can serve as the corner electrodes of the conductive circuit layer 213 for applying voltage to and receiving current from the touch panel 2. The signal terminals 214 and the conductive circuit layer 213 can be formed simultaneously. The external circuit 22 is electrically connected to the signal terminals 214.
The resistive layer 212 covers the conductive circuit layer 213 and the touch area T2 of the substrate 21. The material of the resistive layer 212 can be transparent conductive metal oxide such as indium tin oxide (ITO), indium zinc oxide (IZO), aluminum-doped zinc oxide (AZO), tin oxide (SnO,SnO2), gallium zinc oxide (GZO) or zinc oxide (ZnO).
The dielectric layer 215 is formed on the resistive layer 212. In the embodiment, the dielectric layer 215 includes at least a hardening layer and/or an anti-reflective layer. In practice, the hardening layer can be formed before or after the formation of the anti-reflective layer. The material of the anti-reflective layer can include, for example, silicon oxide (SiO), silicon nitride (SiN), silicon nitrogen oxide (SiON), niobium oxide, titanium oxide, aluminum oxide, aluminum nitride, tantalum oxide, zirconium oxide, magnesium oxide or cryolite (Na3AlF6). To be noted, the resistive layer 212 and the dielectric layer 215 can be formed by the same deposition apparatus, so that the manufacturing processes can be simplified.
Alternatively, the dielectric layer can have another aspect as shown in
The protective layer 216 is formed on a portion of the dielectric layer 215 located on the peripheral area P2, as shown in
When the signal terminals 214 are charged, the entire resistive layer 212 has an electric field with the distribution of the equipotential lines L2 shown in
Referring to
In summary, in the touch panel and touch screen of the present invention, the conductive circuit layer is formed on the substrate, and the resistive layer is formed on the conductive circuit layer. Thus, more surfaces of the conductive circuit layer can be in contact with the resistive layer so as to increase the transmitted current and enhance the sensitivity and preciseness. In addition, since the dielectric layer is formed on the resistive layer, the resistive layer and the dielectric layer can be performed in a single deposition apparatus. Therefore, the manufacturing processes can be simplified, the performance can be enhanced and the manufacturing cost can be decreased.
Although the present invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the present invention.
Number | Date | Country | Kind |
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096145565 | Nov 2007 | TW | national |