CAPACITIVE SENSOR
20170010713 ยท 2017-01-12
Inventors
Cpc classification
G06F3/0446
PHYSICS
G06F3/0445
PHYSICS
G06F2203/04112
PHYSICS
International classification
Abstract
A capacitive sensor includes an insulator substrate, a detecting electrode formed on one face of the insulator substrate by arranging a first electric wire to provide a plurality of first annular portions, and a driving electrode formed on the other face of the insulator substrate by arranging a second electric wire to provide a plurality of second annular portions. In a region where the detecting electrode and the driving electrode of the insulator substrate are overlapped with each other as seen in a plan view, the second electric wire is arranged such that a plurality of corner portions of the second annular portion are contained within the first annular portion.
Claims
1. A capacitive sensor comprising: an insulator substrate; a detecting electrode formed on one face of the insulator substrate by arranging a first electric wire along two directions to provide a plurality of first annular portions having a quadrangle shape; and a driving electrode formed on the other face of the insulator substrate by arranging a second electric wire along two directions to provide a plurality of second annular portions having a quadrangle shape which is smaller than the quadrangle shape of the first annular portions; wherein in a region where the detecting electrode and the driving electrode of the insulator substrate are overlapped with each other as seen in a plan view, the second electric wire is arranged such that a plurality of corner portions of the second annular portion are contained within the first annular portion.
2. The capacitive sensor according to claim 1, wherein: the capacitive sensor further comprises a dummy wiring having a third electric wire arranged on one or the other face of the insulator substrate; and the third electric wire is arranged to partition the first annular portion of the insulator substrate into a same shape as the second annular portion as seen in the plan view.
3. The capacitive sensor according to claim 2, wherein the third electric wire and either the first electric wire or the second electric wire arranged on a same face of the insulator substrate as the third electric wire are configured to have a portion where at least either one of the former and the latter is cut, so as not to intersect each other in the same face.
4. The capacitive sensor according to claim 1, wherein: in a region of one face of the insulator substrate where the detecting electrode is not provided, a dummy wiring is formed by arranging a third electric wire along two directions so as to have a plurality of third annular portions having a same shape as the first annular portions; and in a region where the dummy wiring of the insulator substrate and the driving electrode are overlapped with each other as seen in the plan view, the third electric wire is arranged such that a plurality of corner portions of the second annular portion are contained within the third annular portion.
5. The capacitive sensor according to claim 2, wherein the second electric wire and the third electric wire are arranged along two directions along which the first electric wire extends.
6. The capacitive sensor according to claim 3, wherein the second electric wire and the third electric wire are arranged along two directions along which the first electric wire extends.
7. The capacitive sensor according to claim 4, wherein the second electric wire and the third electric wire are arranged along two directions along which the first electric wire extends.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027]
[0028]
[0029]
[0030]
[0031]
DESCRIPTION OF EMBODIMENTS
[0032] A capacitive sensor of this disclosure is used for detecting a user's operation on a touch panel. Next, a capacitive sensor 1 of this embodiment will be explained.
[0033] The insulator substrate 10 comprises a substrate in the form of a thin sheet made of an insulating material and is used as a substrate on which the detecting electrode 20, the driving electrode 30, and the dummy wiring 40 are formed. A liquid crystal monitor or the like can be provided under the capacitive sensor 1, and for allowing a user to view an image displayed thereon, a transparent substrate may be used as the insulator substrate 10 advantageously.
[0034] The detecting electrode 20 is formed by arranging a first electric wire 21 along two directions so as to obtain a plurality of quadrangle-shaped first annular portions 22 in one face 10A of the insulator substrate 10. The first electric wire 21 comprises a conductor forming the detecting electrode 20 and patterned on the one face 10A of the insulator substrate 10. The first electric wire 21 can be provided with using e.g. Cu, Ag, etc. However, Cr, Mo/Al/Mo, etc. can also be used. Also, the wire width of the first electric wire 21 is 10 m or less, its pitch (a distance between two adjacent parallel portions of the first electric wire 21) should range from 500 to 2000 m approximately. The first annular portion 22 refers to a minimal section partitioned by the first electric wire 21.
[0035] In the above, the language along two directions means predetermined two directions set in the insulator substrate 10. The first electric wire 21 is arranged along these two directions. As shown in
[0036] The driving electrode 30 is formed by arranging a second electric wire 31 along two directions so as to obtain a plurality of quadrangle-shaped second annular portions 32 in the other face 10B of the insulator substrate 10. The second electric wire 31 comprises a conductor forming the driving electrode 30 and are patterned on the back face (face 10B) opposite to the face 10A of the insulator substrate 10 on which the detecting electrode 20 is formed. Similarly to the first electric wire 21, the second electric wire 31 can be provided with using e.g. Cu, Ag, etc. However, Cr, Mo/Al/Mo, etc. can also be used. Also, the wire width of the second electric wire 31 is 10 m or less, its pitch (a distance between two adjacent parallel portions of the second electric wire 31) should range from 500 to 2000 m approximately. The second annular portion 32 refers to a minimal section partitioned by the second electric wire 31.
[0037] In this embodiment, the second electric wire 31 is arranged to extend along the two directions along which the first electric wire 21 extends. Namely, the second electric wire 31 is arranged such that the respective extending directions of the second electric wire 31 are in agreement with the respective extending directions of the first electric wire 21. In this embodiment, as shown in
[0038] Further, the second annular portion 32 has a smaller size than the first annular portion 22. Here, though will be explained in greater details later herein, the above language . . . has a smaller size means that each second annular portion 32 has a smaller area than each first annular portion 22.
[0039] Here,
[0040] The dummy wiring 40 denoted by dotted lines in
[0041] In this embodiment, the dummy wiring 40 is provided on the other face 10B of the insulator substrate 10. Similarly to the first electric wire 21, the third electric wire 41 can be provided with using e.g. Cu, Ag, etc. However, Cr, Mo/Al/Mo, etc. can also be used. Also, the wire width of the third electric wire 41 is 10 m or less, its pitch (a distance between two adjacent parallel portions of the third electric wire 41) should range from 500 to 2000 m approximately.
[0042] The above language arranged in such a manner to partition the first annular portions 22 of the insulator substrate 10 into a same shape as the second annular portions 32 as seen in the plan view means that when the insulator substrate 10 is seen from above perpendicularly, the first annular portion 22 delimited by the first electric wire 21 is partitioned by the third electric wire 41 into a section having the same size as the second annular portion 32. With this arrangement, at least in a region R where a region R1 where the first annular portion 22 is formed is overlapped with a region R2 where the second annular portion 32 is formed, the area delimited by the first electric wire 21, the second electric wire 31 and the third electric wire 41 can be divided into smaller and same size. For this reason, in this embodiment, as shown in
[0043] The third electric wire 41 and either the first electric wire 21 or the second electric wire 31 arranged on a same face of the insulator substrate 10 as the third electric wire 41 are configured to have a portion where at least either one of them is cut, so as not to intersect each other in the same face. In this embodiment, the third electric wire 41 is disposed on the face 10B of the insulator substrate 10 on which the second electric wire 31 is disposed. Therefore, the above language the first electric wire 21 or the second electric wire 31 arranged on a same face of the insulator substrate 10 as the third electric wire 41 corresponds to the second electric wire 31.
[0044] Therefore, of the third electric wire 41 and the second electric wire 31, at least one thereof has a cut portion for avoiding intersection therebetween. In this embodiment, as shown in
[0045] The adhesive sheet 50 is a film-like adhesive sheet (optical glue) for use in bonding. This adhesive sheet 50 is used when the sensor panel constituted of the insulator substrate 10, the detecting electrode 20, the driving electrode 30 and the dummy wiring 40 is to be bonded/affixed with the cover panel 60 acting as a decorative plate or a decorative film.
[0046] With the above-described configuration of the capacitive sensor 1, the respective pitches of the first electric wire 21 forming the detecting electrode 20 and the second electric wire 31 forming the driving electrode 30 can be changed relative to each other. Further, by providing the dummy wiring 40 at a limited portion thereof, the coupling capacitance can be decreased without changing apparent pitches of the detecting electrode 20 and the driving electrode 30. For this reason, even when the capacitive sensor 1 is applied to a liquid crystal panel, a capacitive sensor 1 having high sensitivity and distinguished visibility can be realized without deviating from the counter-moire measure designing rule.
Other Embodiments
[0047] In the foregoing embodiment, in
[0048] In the foregoing embodiment, it was explained that the capacitive sensor 1 includes the dummy wiring 40 having the third electric wire 41 arranged on the one face 10A or the other face 10B of the insulator substrate 10. However, the capacitive sensor 1 can omit the dummy wiring 40.
[0049] In the foregoing embodiment, it was explained that of the third electric wire 41 and the second electric wire 31, at least either one thereof has cut at some portions, so as to avoid intersection therebetween on a same face. However, it is also possible to provide the third electric wire 41 on the same face as the first electric wire 21. In this case, advantageously, of the third electric wire 41 and the first electric wire 21, at least either one thereof has cuts at some portions, so as to avoid intersection therebetween on a same face.
[0050] Further, as shown in
[0051] In the foregoing embodiment, explanation was made with the examples of the first annular portions 22 and the second annular portions 32 having square shape or rectangular shape. Alternatively, these may have a parallelogram shape or a rhombus shape.
[0052] In the foregoing embodiment, there was explained the example of the first electric wire 21, the second electric wire 31 and the third electric wire 41 being arranged in straight lines. Alternatively, these may be arranged in curved lines or in a desired shape.
[0053] In the foregoing embodiment, it was explained that the third electric wire 41 of the dummy wiring 40 is arranged so as to partition the first annular portions 22 of the insulator substrate 10 into the same shape as the second annular portions 32 as seen in the plan view. Alternatively, as shown in
[0054] In this case, advantageously, the third electric wire 41 should be arranged such that in the region in the insulator substrate 10 where the dummy wiring 40 and the driving electrode 30 are overlapped with each other, a plurality of corner portions 70 of the second annular portion 32 are contained within the third annular portion 42. Namely, the dummy wiring 40 can be configured such that the relation between the third annular portion 42 and the second annular portion 32 is made similar to the relation between the first annular portion 22 and the second annular portion 32. In the case of such configuration, the apparent pitch of the detecting electrode 20 and the driving electrode 30 and the apparent pitch of the dummy wiring 40 and the driving electrode 30 can be made similar to each other. Therefore, even when the capacitive sensor 1 is applied to a liquid crystal panel, the capacitive sensor 1 having high sensitivity and distinguished visibility can be realized.
[0055] In the foregoing embodiment, it was explained that the second electric wire 31 and the third electric wire 41 are arranged along the two extending directions of the first electric wire 21. However, it is also possible to arrange such that the first electric wire 21, the second electric wire 31 and the third electric wire 41 are arranged along two directions different from each other.
[0056] This disclosure is applicable to a capacitive sensor having a pair of electrodes formed on different layers via an insulator.