This application claims the benefit of Taiwan application Serial No. 98220511, filed Nov. 5, 2009, the subject matter of which is incorporated herein by reference.
1. Field of the Invention
The invention relates in general to a capacitive touch panel, and more particularly to a capacitive touch panel with via holes.
2. Description of the Related Art
Referring to
The X-axial sensing wires 104 are disposed on the substrate 102. The insulation layer 108 covers the X-axial sensing wires 104 and separates the X-axial sensing wires 104 from the Y-axial sensing wires 106.
However, the X-axial sensing wires 104 and the Y-axial sensing wires 106 are generally disposed on two different planes, and have poor performance in the transmission of the light due to an insulation layer 108 being interposed between the X-axial sensing wires 104 and the Y-axial sensing wires 106. Thus, the capacitive touch panel 100 is subjected to the problem of color cast.
The adjacent Y-axial sensing wires 106 are spaced by a first distance D1, and are obvious on the appearance of the capacitive touch panel 100. For example, if the Y-axial sensing wires 106 are yellow, there will be yellow traces visible on the appearance of the capacitive touch panel 100, not only spoiling the aesthetics but also affecting the display quality of the capacitive touch panel 100.
The invention is directed to a capacitive touch panel. The sensing units on the same plane are adjacently disposed, so that the clearance between the sensing units is reduced, not only enhancing the color uniformity on the panel surface of the capacitive touch panel but also improving the display quality of the capacitive touch panel.
According to a first aspect of the present invention, a capacitive touch panel is provided. The capacitive touch panel includes a transparent substrate, a plurality of first sensing wires, a plurality of second sensing units, an insulation layer, a plurality of second sensing wires and a plurality of fourth sensing units. The transparent substrate has a substrate surface. The first sensing wires are disposed on the substrate surface along a first axial direction, wherein each first sensing wire includes a plurality of first sensing units. The second sensing units are disposed on the substrate surface along a second axial direction. The insulation layer is disposed on the substrate surface, covers the first sensing wires and the second sensing units, and has a plurality of via holes. Each second sensing wire is disposed on the insulation layer along the second axial direction, and includes a plurality of third sensing units. The fourth sensing units are disposed on the insulation layer along the first axial direction. Wherein, the first sensing units are corresponding to the fourth sensing units, the second sensing units are corresponding to the third sensing units, corresponding the first sensing unit and the fourth sensing unit are electrically connected through one of the via holes, and corresponding the second sensing unit and the third sensing unit are electrically connected through another of the via holes.
According to a second aspect of the present invention, a capacitive touch panel is provided. The capacitive touch panel includes a transparent substrate, an insulation layer, a plurality of conductive wires, a plurality of sensing wires and a plurality of sensing units. The transparent substrate has a substrate surface on which the insulation layer is disposed, wherein the insulation layer has a plurality of via holes. The conductive wires are disposed on one of the substrate surface and the insulation layer along a first axial direction. A plurality of sensing wires is disposed on the other of the substrate surface and the insulation layer along a second axial direction. The sensing units are separately disposed on the other of the substrate surface and the insulation layer along the first axial direction. Wherein, each conductive wire is electrically connected to the corresponding sensing units through via holes.
The invention will become apparent from the following detailed description of the preferred but non-limiting embodiments. The following description is made with reference to the accompanying drawings.
A number of preferred embodiments are disclosed below for elaborating the details of the invention. However, the invention is not limited to the embodiments, and the drawings and disclosure are for detailed description of the invention not for limiting the scope of protection of the invention. Moreover, secondary elements are omitted in the embodiments to highlight the characteristics of the invention.
Referring to
The transparent substrate 202 has a substrate surface 216 on which the first sensing units 204 and the second sensing units 210 are disposed. The transparent substrate 202 could be made from an insulation material with high light transmission such as glass, polycarbonate (PC), polyethylene terephthalate, (PET), polymethylmethacrylate (PMMA) or cyclic olefin copolymer.
The insulation layer 208 is disposed on the substrate surface 216, covers the first sensing units 204 and the second sensing units 210, includes a plurality of conductive elements 218, and has a plurality of via holes 214 in which the conductive elements 218 correspondingly are disposed.
The first sensing units 204 are corresponding to the fourth sensing units 212, and the second sensing units 210 are corresponding to the third sensing units 206. That is, the positions of the first sensing units 204 and the positions of the fourth sensing units 212 are overlapped, and the positions of the second sensing units 210 and the positions of the third sensing units 206 are overlapped. Corresponding the first sensing unit 204 and the fourth sensing unit 212 are electrically connected through one via holes 214, and corresponding the second sensing unit 210 and the third sensing unit 206 are also electrically connected through another of via holes 214.
Corresponding the first sensing unit 204 and the fourth sensing unit 212 could improve the sensitivity of the capacitive touch panel 200, and corresponding the second sensing unit 210 and the third sensing unit 206 achieve the same effect.
Through the arrangement of disposing the third sensing units 206 between two adjacent fourth sensing units 212, the second distance D2 between the adjacent sensing units is smaller than the first distance D1 as in the prior art. Thus, the traces will not be seen on the appearance of the capacitive touch panel 200, and the display quality of the capacitive touch panel 200 is improved. For example, the transmission of the light of the capacitive touch panel 200 is more uniform.
Referring to
In order to more clearly illustrate the first sensing units 204 and the second sensing units 210, the insulation layer 208, the third sensing units 206 and the fourth sensing units 212 are not illustrated in
As indicated in
As indicated in
Despite in the present embodiment of the invention, the first axial direction is exemplified by the X-axial sensing direction and the second axial direction is exemplified the Y-axial sensing direction, the invention is not limited thereto. In other implementations, the first axial direction could be exemplified by the Y-axial sensing direction and the second axial direction could be exemplified by the X-axial sensing direction.
The first sensing wires 220 and the second sensing units 210 could be made from indium tin oxide (ITO) or a transparent organic conductive material, such as 3,4-ethylenedioxythiophene (PEDOT). The first sensing wires 220 and the second sensing units 210 could be made from the same material in the same manufacturing process such as the sputtering process.
The second sensing wires 222 and the fourth sensing units 212 could be made from indium tin oxide or a transparent organic conductive material. The second sensing wires 222 and the fourth sensing units 212 could be made from the same material in the same manufacturing process such as the sputtering process.
In an implementation, the third sensing units 206, the fourth sensing units 212 and the conductive elements 218 could be made from the same material. The third sensing units 206, the fourth sensing units 212 and conductive elements 218 could be made from the same material in the same manufacturing process such as the sputtering process.
Besides, the cross-sectional area of the fourth sensing units 212 is smaller than that of the corresponding first sensing units 204. Referring to
Or, in another implementation, the cross-sectional area of the fourth sensing units 212 is substantially equal to that of the first sensing units 204.
Besides, the relation of the size of the third sensing units 206 and that of the second sensing units 210 is similar to the relation of the size of the fourth sensing units 212 and the first sensing units 204, and the similarities are not repeated here.
Referring to
Referring to both
As indicated in
Each conductive wire 428 and the sensing units 404 in each column are disposed along a first axial direction, wherein the sensing units 404 are separately disposed. Each sensing wire 420 is disposed along a second axial direction, and includes a plurality of sensing units 410 and a plurality of connection lines 440. The adjacent two sensing units 410 are electrically connected through the connection lines 440, so that sensing wires 420 in the entire row are electrically connected.
Despite in the present embodiment of the invention, the first axial direction is exemplified by the Y-axial sensing direction and the second axial direction is exemplified the X-axial sensing direction, the invention is not limited thereto, and in other implementations, the first axial direction could be exemplified by the X-axial sensing direction and the second axial direction could be exemplified by the Y-axial sensing direction.
Through the intensive arrangement of the sensing units 410 of the sensing wires 420 and the sensing units 404 being separately disposed, visible traces will not appear on the capacitive touch panel 400, so that the display quality of the capacitive touch panel 400 is improved. For example, the transmission of the light of the capacitive touch panel 400 becomes more uniform.
As indicated in
The conductive elements 418, the sensing wires 420 and the sensing units 404 are made from indium tin oxide or a transparent organic conductive material, such as 3,4-ethylenedioxythiophene. The conductive elements 418, the sensing wires 420 and the sensing units 404 could be made from the same material in the same manufacturing process such as the sputtering process.
Referring to
Or, in another implementation as indicated in
Or, in other implementations as indicated in
In an embodiment, the capacitive touch panel 400 further includes an optical film (not illustrated) for increasing the transmission of the light. The optical film is similar to that of the optical film 302 of the second embodiment, and the similarities are not repeated here.
Referring to both
As indicated in
Each conductive wire 528 and each row of the sensing units 504 are disposed along a first axial direction, wherein each sensing unit 504 is separately arranged. Each sensing wire 520 is disposed along a second axial direction. The first axial direction and the second axial direction of the present embodiment of the invention are similar to the first axial direction and the second axial direction of the second embodiment, and the similarities are not repeated here.
As indicated in
The conductive elements 518 and the conductive wires 528 are made from indium tin oxide or a transparent organic conductive material such as 3,4-ethylenedioxythiophene. The conductive elements 518 and the conductive wires 528 could be made from the same material in the same manufacturing process such as the sputtering process.
The structure of the conductive wires 528 is similar to that of the conductive wires 428 of the second embodiment, and the similarities are not repeated here.
In an embodiment, the capacitive touch panel 500 further includes an optical film (not illustrated) for increasing the transmission of the light. The optical film is similar to the optical film 302 of the second embodiment, and the similarities are not repeated here.
According to the capacitive touch panel disclosed in the above embodiments of the invention, the sensing units on the same plane are adjacently disposed, so that the clearance between the sensing units is reduced, not only increasing the color uniformity on the panel surface of the capacitive touch panel but also improving the display quality of the capacitive touch panel.
While the invention has been described by way of example and in terms of a preferred embodiment, it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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098220511 | Nov 2009 | TW | national |