Conductive film of a touch panel and manufacturing method thereof
09948296 ยท 2018-04-17
Assignee
Inventors
Cpc classification
H05K2203/1173
ELECTRICITY
H05K1/0287
ELECTRICITY
H05K2203/0117
ELECTRICITY
H05K3/1208
ELECTRICITY
G06F2203/04103
PHYSICS
International classification
H05K3/12
ELECTRICITY
Abstract
The present disclosure provides a conductive film of a touch panel. The conductive film has a film and a plurality of a plurality of hydrophobic units. The film is used for sensing touch signals, and the hydrophobic units are disposed in the film with intervals. Conductive material of the conductive film of the touch panel is distributed outside the region of the hydrophobic units, and as the hydrophobic units have good light transmittance, the touch panel of the present disclosure has a characteristic of high light transmittance.
Claims
1. A touch panel having a conductive film with high light transmittance, comprising: a substrate; and an electrode layer disposed on the substrate, wherein the electrode layer comprises: a plurality of electrodes each formed of a patterned conductive film; a plurality of conducting wires electrically connected with the electrodes; and a plurality of hydrophobic units disposed with intervals in-between in each of the electrodes to define a pattern of the patterned conductive film; wherein the patterned conductive film is made of a water-soluble conductive material, and the water-soluble conductive material covers the substrate outside the region of the hydrophobic units.
2. The touch panel of claim 1, wherein the electrodes comprise: first electrode arrays distributed along a first axis and second electrode arrays distributed along a second axis, wherein the first electrode arrays and the second electrode arrays are electrically insulated from each other, and wherein the first electrode arrays and the second electrode arrays are electrically connected with the plurality of conducting wires.
3. An electrode layer of a touch panel, comprising: a plurality of electrodes each formed of a patterned conductive film; and a plurality of hydrophobic units disposed with intervals in-between in each of the electrodes to define a pattern of the patterned conductive film; wherein the patterned conductive film is formed on a substrate; and the patterned conductive film is made of a water-soluble conductive material, wherein the water-soluble conductive material covers the substrate outside the region of the hydrophobic units.
4. The electrode layer of claim 3, wherein the electrodes comprise: first electrode arrays distributed along a first axis and second electrode arrays distributed along a second axis, wherein the first electrode arrays and the second electrode arrays are electrically insulated from each other.
5. A conductive film of a touch panel, comprising: a film used for sensing touch signals; and a plurality of hydrophobic units disposed in the film with intervals in-between to define a pattern; wherein the conductive film is formed on a substrate; and the film is made of a water-soluble conductive material, wherein the water-soluble conductive material covers the substrate outside the region of the hydrophobic units.
6. The conductive film of claim 5, wherein the film is a transparent film.
7. The conductive film of claim 5, wherein the hydrophobic units are made of a hydrophobic material.
8. The conductive film of claim 7, wherein the hydrophobic material is selected from a group consisting of anti-fingerprint coating, parting agent, release agent, silicone oil, and silicone.
9. The conductive film of claim 8, wherein the anti-fingerprint coating is a fluorocarbon.
10. The conductive film of claim 9, wherein general formula of the fluorocarbon is F(C.sub.3HOF.sub.4).sub.nC.sub.2F.sub.4(CH.sub.2).sub.mO(CH.sub.2).sub.aSi(OR).sub.3, wherein m and a can be an integer from 1 to 6, and R can be a methyl maximally containing 6 carbons.
11. The conductive film of claim 10, wherein the fluorocarbon is at least one of F(C.sub.3HOF.sub.4).sub.nC.sub.2F.sub.4CH.sub.2O(CH.sub.2).sub.3Si(OMe).sub.3, F(C.sub.3HOF.sub.4)C.sub.2F.sub.4CH.sub.2O(CH.sub.2).sub.3Si(OMe).sub.3OSMe.sub.2(CH.sub.2).sub.2Si(OMe).sub.3, F(C.sub.3HOF.sub.4).sub.nC.sub.2F.sub.4CONH(CH.sub.2).sub.3Si(OMe).sub.3 and F(C.sub.3HOF.sub.4)C.sub.2F.sub.4CONH(CH.sub.2).sub.3SiMe.sub.2OSMe.sub.2(CH.sub.2).sub.2Si(OMe).sub.3.
12. The conductive film of claim 5, wherein shape of the hydrophobic units is selected from one or more of circle, square, rectangle, rhombus, pentagon, hexagon, or a combination thereof.
13. The conductive film of claim 5, wherein the film is made of a water-soluble conductive material.
14. The conductive film of claim 13, wherein the water-soluble conductive material is selected from a group consisting of conductive polymer, carbon nanotubes, and Ag nanowires.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(9) In order to further understand characteristics and technical aspects of the present disclosure, several descriptions accompanied with drawings are described in detail below. However, descriptions and accompanying drawings are for the purposes of reference and specification only, and do not limit the scope of the present disclosure in any manner.
(10) With reference to
(11) Further with reference to
(12) In an embodiment, the hydrophobic units 23 can be formed by patterning a hydrophobic material. The film 24 can be a transparent film made of a water soluble conductive material. Particularly, the hydrophobic material can be overlaid on the substrate 22 in advance, and a plurality of hydrophobic units 23 can be formed by a patterning process such as screen printing, inkjet printing or lithography/etching and the like. The water-soluble conductive solution containing the water-soluble conductive material can then be allocated on the substrate 22, and after the substrate 22 is baked, the conductive film 21 of the touch panel can be formed. Since material of the hydrophobic units 23 is hydrophobic, which can prevent the water soluble conductive material from distributing to the region where the hydrophobic units 23 are located, the water-soluble conductive material can only cover the substrate 22 outside the region of the hydrophobic units 23 to form the film 24.
(13) It is to be noted that the foregoing hydrophobic material is at least one of anti-fingerprint coating (AF), parting agent, release agent, silicone oil and silicone, but it is not limited thereto. Anti-fingerprint coating belongs to a fluorocarbon, and general formula of the fluorocarbon is F(C.sub.3HOF.sub.4)nC.sub.2F.sub.4(CH.sub.2)mO(CH.sub.2)aSi(OR).sub.3, wherein m and a can be an integer from 1 to 6, and R can be a methyl maximally containing 6 carbons. For the chemical formula as shown in
(14) In addition, shape of the hydrophobic units 23 in the conductive film 21 of the touch panel can be adjusted as per design requirement. With reference to
(15) With reference to
(16) It would be appreciated that, for the conductive film 21 of the touch panel of the present disclosure, the type of water-soluble conductive material, shape and arrangement mode of hydrophobic units 23, and the type of hydrophobic material are not limited. In addition, in another embodiment, a conductive film 21 of a touch panel further comprises a protective film (not shown in
(17) Further with reference to
(18) In addition, in order to further protect the conductive film 21 of the touch panel, the method of manufacturing the conductive film of the touch panel further comprises steps S506 and S508. Step S506 includes allocating a protective film solution on the substrate 22. Step S508 includes baking the substrate 22 to form the protective film overlaid on the film 24. Material of the protective film comprises inorganic materials such as silicon nitride, silicon oxide, and silicon oxynitride, or organic materials such as acrylic resin or other applicable materials. Material, shape and arrangement mode of the hydrophobic units 23 and type of the water-soluble conductive material have already been disclosed in the foregoing description in details, and thus they are not described here again.
(19) Further with reference to
(20) It is to be noted that, in
(21) Further with reference to
(22) In addition, although the above embodiment of the present disclosure is to apply the conductive film to a touch panel, it is to be noted that application of the conductive film of the present disclosure is not limited hereto. All similarities to structure, manufacturing method or principle of the foregoing conductive film of the touch panel are within the scope of the present disclosure.
(23) In conclusion, conductive material of the conductive film of the touch panel that is formed in accordance with the embodiments of the present disclosure is only distributed in the region without the hydrophobic units, and as the hydrophobic units have good light transmittance, the resultant touch panel of the present disclosure has a characteristic of high light transmittance.
(24) In addition, since the conductive film of the touch panel is made of a conductive material with high conductivity, in contrast to a traditional ITO film, the conductive film of the touch panel has better conductivity. Also, in contrast to a traditional conductive film of a touch panel using a physical method for cutting or etching the conductive film so as to hollow out the conductive film and increase light transmittance of the conductive film, the manufacturing method of the conductive film of the touch panel in accordance with the embodiment of the present disclosure is relatively simple and easy with lower cost.
(25) The foregoing descriptions are preferred embodiments of the present disclosure only. Various modifications can be made thereto without departing from the spirit and scope of the present disclosure. All modifications and substitutions to the claims of the present disclosure are defined by the attached claims.