The present invention relates to a touch panel substrate.
Recently, widely used as portable telephone devices, laptops, and the like are electronic devices provided with a touch panel substrate which can detect a position of a detection target object in a case where a finger or a pen for input (detection target object) touches or approaches a display surface of a display device. The touch panel substrate is provided on the display surface of the display device in such electronic devices.
For example, an electrostatic capacitive touch panel substrate includes: (a) an electrode layer in which a plurality of first sensor electrodes extending in a first direction and second sensor electrodes extending in a second direction orthogonal to the first direction are formed; and (b) a touch controller for calculating a position of a detection target object on the basis of a change in electrostatic capacitance which is formed between the first sensor electrodes and the second sensor electrodes. Such an electrostatic capacitive touch panel substrate has a problem in that, in a case where an external electrostatic voltage is applied to the sensor electrodes, the electrostatic capacitive touch panel substrate may malfunction or the touch controller may be led to electrostatic breakdown.
Patent Literature 1 discloses a touch pad which has a structure including electrodes and lead layers each individually electrically connected with a corresponding one of the electrodes and which makes it easier to prevent the lead layers from being broken down by an electric discharge even in a case where a potential difference occurs due to electrification between electrodes in an assembly step and/or a storage step. Patent Literature 1 also discloses a method for producing the touch pad.
Further, Patent Literature 2 discloses a touch panel which can reduce false recognition due to malfunction, by blocking electromagnetic noise and static electricity which enter from outside.
As illustrated in
Patent Literature 1
Japanese Patent Application Publication, Tokukai, No. 2012-155514 (Publication Date: Aug. 16, 2012)
Patent Literature 2
Japanese Patent Application Publication, Tokukai, No. 2010-218542 (Publication Date: Sep. 30, 2010)
However, the first shielding electrode 208 of the touch panel 200 according to Patent Literature 2 is not formed along the entire outer periphery of the substrate 202 so as to completely surround the detection region 204 and the wiring region 206. The first shielding electrode 208 is not formed to an area where the terminal area TA is formed on the outer periphery of the substrate 202. Hence, noise enters from the area where the first shielding electrode 208 is not provided on the outer periphery of the substrate 202. As a result, false recognition due to malfunction may occur and/or a detection circuit (touch controller, not illustrated in
However, the first shielding electrode 208′ is formed on an upper side of the first flexible substrate 230, but not on the substrate 202. Accordingly, it is not possible to sufficiently block the entry of noise which comes around along a surface of the substrate 202 from outside the substrate 202.
Further, the touch panel of Patent Literature 2 uses, as a detection surface, a surface on a side where the detection electrodes 205 of the substrate 202 are formed. Accordingly, static electricity is transferred from user's finger to the detection electrodes 205, and then a voltage caused by the static electricity is applied to a touch controller via the first flexible substrate 230 and the second flexible substrate 232. Consequently, the touch controller will be broken down.
The present invention is attained in view of the above problems. An object of the present invention is to provide a touch panel substrate which can prevent a detection circuit from being broken down due to voltage application of static electricity, by blocking static electricity which is about to enter a sensor electrode formation surface of a substrate.
In order to solve the above problems, a touch panel substrate in accordance with an aspect of the present invention is a touch panel substrate for detecting a position of a detection target object on a detection surface which faces outside, the touch panel substrate including: a substrate provided with a plurality of sensor electrodes; a detection circuit electrically connected to the sensor electrodes; and a relay wiring for electrically connecting the sensor electrodes and the detection circuit to each other, the sensor electrodes being provided on a sensor electrode formation surface of the substrate, the sensor electrode formation surface being a surface on an opposite side of the detection surface, the sensor electrode formation surface being provided with a terminal section including terminals of the sensor electrodes, the relay wiring having one end connected to the terminal section, and the sensor electrode formation surface being provided with a shielding electrode, on an outer side of the terminal section.
According to an aspect of the present invention, it is possible to provide a touch panel substrate which can prevent a detection circuit from being broken down due to voltage application of static electricity, by blocking static electricity into a sensor electrode formation surface of a substrate.
The following discusses an embodiment of the present invention in detail with reference to
As illustrated in
In the touch panel substrate 100, a surface of the AR film 1 constitutes a touch surface (detection surface) for detecting a touch or an approach of a detection target object. Note that the AR film 1 is not essential in the touch panel substrate 100 of Embodiment 1. In a case where the AR film 1 is not used, a surface of the cover glass 2 constitutes the touch surface.
Hereinafter, in the touch panel substrate 100 and each member, a surface on a touch surface side is referred to as a “front surface”, and a surface on an opposite side to the front surface is referred to as a “back surface”.
The cover glass 2 is provided with a BM (Black Matrix) 5 on an outer periphery of a back surface of the cover glass 2. The BM5 provided on the back surface of the cover glass 2 covers a wiring or the like (not illustrated in
The protective substrate 4 is bonded to a display surface of a display device so as to be opposed to the display device. This allows the touch panel substrate 100 to be used as a display device with a touch panel substrate.
The first electrode substrate 10 includes a first substrate 11 (substrate), a plurality of sensor electrodes 12, a terminal section 13 (see
Further, as illustrated in
The other end of the flexible substrate 20 is connected to the touch controller 31. This electrically connects the plurality of sensor electrodes 12 and the touch controller 32 to each other. Note that the flexible substrate 20 does not necessarily have to be used as long as the sensor electrodes 12 (formed on the first substrate 11) and the touch controller 32 (formed on the touch controller substrate 31) are electrically connected to each other. For example, a rigid substrate can be used in order to connect the sensor electrodes 12 and the touch controller 32.
The flexible substrate 20 includes a grounding terminal (GND terminal) that is grounded by connection to GND of the touch controller substrate 31. The GND terminal is electrically connected to the shielding electrode 14 on the first substrate 11. This makes it possible to block static electricity by use of the shielding electrode 14 before entry of the static electricity into the terminal section 13, which static electricity comes around from a touch surface (a front surface of the AR film 1 or a front surface of the cover glass 2) to a back surface of the first substrate 11 via a side surface of the touch panel substrate 100. Further, it is possible to release the static electricity to GND potential via the GND terminal of the flexible substrate 20. This consequently makes it possible to prevent electrostatic breakdown of the touch controller 32 due to application of a voltage of the static electricity.
Note that the shielding electrode 14 does not necessarily have to be electrically connected to GND, but can be provided simply as a lightning conductor. Note also that the shielding electrode 14 can be connected to a static elimination sheet so that static electricity may be discharged into the air by using the static elimination sheet. This makes it possible to obtain a similar effect to that in a case where the static electricity charged on the shielding electrode 14 is released to GND.
Further, as illustrated in
Between the sensor electrodes 12, electrostatic capacitance is formed. A touch or an approach of a detection target object such as a human finger causes a change in value of the electrostatic capacitance which is formed between two different types of sensor electrodes among the sensor electrodes 12. This change in electrostatic capacitance is detected by the touch controller 32. This makes it possible to identify a position where the detection target object touches or approaches on/to the detection surface of the touch panel substrate 100. Note that a well-known circuit can be used as the touch controller 32 for detecting a coordinate position of the detection target object.
The following Examples each concretely discuss an arrangement of the shielding electrode 14 in the first electrode substrate 10 according to Embodiment 1.
As illustrated in
The first substrate 11 is provided, outside the sensor active area 15, a wiring area 16A for collecting lines which are connected to the first sensor electrodes, respectively, and a wiring area 16B for collecting lines which are connected to the second sensor electrodes, respectively.
Outside the wiring area 16A, a plurality of connecting terminals 17A extended from the first sensor electrodes constitutes a terminal section 13A. Meanwhile, outside the wiring area 16B, a plurality of connecting terminals 17B extended from the second sensor electrodes constitutes a terminal section 13B.
Further, the first substrate 11 is provided, on the back surface thereof, with a shielding electrode 14A on an outer side of the terminal section 13A and a shielding electrode 14B on an outer side of the terminal section 13B. The shielding electrode 14A is provided so as to cover a width of the terminal section 13A, while the shielding electrode 14B is provided so as to cover a width of the terminal section 13B. More concretely, the shielding electrodes each are provided between the terminal section and an outer edge of the first substrate 11.
The terminal section 13A is connected to an end of a flexible substrate by crimping with use of an ACF (Anisotropic Conductive Film). The terminal section 13B is connected to an end of another flexible substrate by crimping with use of the ACF.
The flexible substrate is provided with two GND terminals 18 and a plurality of electrode terminals connected to the connecting terminals 17A (17B) of the terminal section 13A (13B), respectively. The flexible substrate is connected to the back surface of the first substrate 11, in such a manner that the two GND terminals 18A are connected to the shielding electrode 14A and also sandwich the terminal section 13A. Similarly, the another flexible substrate is connected to the back surface of the first substrate, in such a manner that the two GND terminals 18B are connected to the shielding electrode 14B and also sandwich the terminal section 13B.
Accordingly, the terminal section 13A is surrounded by the two GND terminals 18A and the shielding electrode 14A. Meanwhile, the terminal section 13B is surrounded by the two GND terminals 18B and the shielding electrode 14B.
As described above, on the back surface of the first substrate 11, the shielding electrode 14A is provided on the outer side of the terminal section 13A, and the shielding electrode 14B is provided on the outer side of the terminal section 13B. Therefore, as
Note that the above discusses, with the example illustrated in
For convenience of explanation, illustration of a wiring area is omitted in
As (a) of
In contrast, as (b) of
Note that, in the touch panel of Patent Literature 2 having a configuration as illustrated in (a) of
In the case of the touch panel disclosed in Patent Literature 2, even if the shielding electrode 14A is provided on the outer side of the terminal section 13A as illustrated in (b) of
The following discusses other examples of Embodiment 1, with reference to
A first electrode substrate 10 in accordance with Example 2 is provided with two GND terminals 18C as a result of connection of a flexible substrate to a back surface of a first substrate 11. Here, the two GND terminals 18C are provided so as to sandwich a terminal section 13A, as illustrated in
The GND terminals 18C of the present embodiment are shorter than the GND terminals 18A of Example 1. The GND terminals 18C are provided so as to sandwich only an end portion of the terminal section 13A. In this way, the GND terminals 18C do not necessarily have to be provided so as to sandwich the terminal section 13A from both sides of the terminal section 13A. The GND terminals 18C only need to be provided so as to be at least connected to a shielding electrode 14C.
The first electrode substrate in accordance with Example 2, similarly to that of Example 1, can prevent a voltage of static electricity from being applied to a touch controller, and thereby prevent electrostatic breakdown of the touch controller.
A first electrode substrate 10 in accordance with Example 3 is provided with a GND terminal 18D as a result of connection of a flexible substrate to a back surface of a first substrate 11. Here, the GND terminal 18D is provided along connecting terminals 17A of a terminal section 13A, as illustrated in
The first electrode substrate in accordance with Example 3, similarly to that of Example 1, can prevent a voltage of static electricity from being applied to a touch controller and thereby prevent electrostatic breakdown of the touch controller.
In addition, the first electrode substrate 10 in accordance with Example 3 can prevent the GND terminal 18D and the connecting terminals 17A from being short-circuited. Further, the first electrode substrate 10 can suppress electrostatic discharge between the GND terminal 18D and the connecting terminals 17A. This makes it possible to more effectively prevent static electricity from entering the terminal section 13.
Note that, as in configurations of Examples 1 and 2, Example 3 can be provided with two GND terminals in such a manner that the two GND terminals sandwich the terminal section 13A (this configuration is not illustrated in
A first electrode substrate 10 in accordance with Example 4 is provided, on a back surface of a first substrate 11, with a substantially U-shaped shielding electrode 14E which is arranged to cover an outer side of a terminal section 13A.
Further, the back surface of the first substrate 11 is connected with a flexible substrate. This forms connection between a GND terminal 18E of the flexible substrate and the shielding electrode 14E, as
The first electrode substrate in accordance with Example 4, similarly to that of Example 1, can prevent a voltage of static electricity from being applied to a touch controller and thereby prevent electrostatic breakdown of the touch controller.
Note that, as in configurations of Examples 1 and 2, Example 4 can be provided with two GND terminals in such a manner that the two GND terminals sandwich the terminal section 13A (this configuration is not illustrated in
A first electrode substrate 10 in accordance with Example 5 is provided with two GND terminals 18F as a result of connection of a flexible substrate to a back surface of a first substrate 11. The two GND terminals 18F are provided so as to sandwich a terminal section 13A, as illustrated in
Further, as illustrated in
The first electrode substrate in accordance with Example 5, similarly to that of Example 1, can prevent a voltage of static electricity from being applied to a touch controller and thereby prevent electrostatic breakdown of the touch controller.
As illustrated in (a) of
As (b) of
In contrast, in the first electrode substrate 10 in accordance with Example 6, the shielding electrode 14G is multiply provided. Consequently, the shielding electrodes 141G, 142G, and 143G function as buffers against static electricity, and hence it is possible to more reliably prevent the static electricity from entering the terminal section 13A. This makes it possible to effectively prevent a voltage of static electricity from being applied to a touch controller, and thereby more reliably prevent electrostatic breakdown of the touch controller.
The following discusses another embodiment of the present invention, with reference to
As illustrated in
The second electrode substrate 40 includes a second substrate 41 (substrate), a plurality of sensor electrodes 42, a terminal section, and a shielding electrode 44. The sensor electrodes 42, the terminal section and the shielding electrode 44 are formed on a back surface (a sensor electrode formation surface) of the second substrate 41. The terminal section including connecting terminals of the sensor electrodes 42 is connected to one end of a flexible substrate 50 (relay wiring). The shielding electrode 44 is provided on the second substrate 41, on an outer side of the terminal section.
The touch panel substrate 101 is provided with a touch controller substrate 31, which is different from a first substrate 11 and the second substrate 41, and a touch controller 32 provided on the touch controller substrate 31 (the touch controller substrate 31 and the touch controller 32 are not illustrated in
The touch controller 32 is electrically connected with the other end of a flexible substrate 20 and the other end of the flexible substrate 50. This electrically connects sensor electrodes 12 and sensor electrodes 42 with the touch controller 32.
The flexible substrate 20 and the flexible substrate each are provided with a GND terminal that is electrically connected to GND of the touch controller substrate 31. The GND terminal of the flexible substrate 20 is electrically connected to a shieling electrode 14 on the first substrate 11. Meanwhile, the GND terminal of the flexible substrate 50 is electrically connected to the shielding electrode 44 on the second substrate 41.
Therefore, similarly to the touch panel substrate 100 of Embodiment 1, the touch panel substrate 101 can (i) block static electricity by use of the shielding electrodes 14 and 44 before entry of the static electricity into the terminal section, which static electricity comes around from a touch surface to a back surface of the first substrate 11 or a back surface of the second substrate 41 via a side surface of the touch panel substrate 101, and (ii) release the static electricity to GND potential via the GND terminals of the flexible substrates 20 and 50. This consequently makes it possible to prevent electrostatic breakdown of the touch controller 32 due to application of a voltage of the static electricity.
Note that a configuration of each Example of Embodiment 1 can be adopted as a configuration of the second electrode substrate 40.
As illustrated in (b) of
Furthermore, the first substrate 11 is provided with two shielding electrodes 1412 substantially parallel to a direction in which the sensor electrodes 12 extend. The two shielding electrodes 1412 are provided so as to sandwich the sensor active area 15.
As illustrated in (c) of
Furthermore, the second substrate 41 is provided with two shielding electrodes 4412 substantially parallel to a direction in which the sensor electrodes 42 extend. The two shielding electrodes 4412 are provided so as to sandwich the sensor active area 45.
In a touch panel substrate 101 of Example 7, as illustrated in (a) of
The touch panel substrate in accordance with Example 7, similarly to that in Example 1, makes it possible to prevent a voltage of static electricity from being applied to a touch controller and thereby prevent electrostatic breakdown of the touch controller.
As illustrated in (b) of
As illustrated in (c) of
As illustrated in (d) of
The first substrate 11 and the second substrate 41 are bonded to each other as illustrated in (a) of
In the touch panel substrate of Example 8, the shielding electrode 14J and the GND terminal 18J are formed only on the first substrate 11 which is closer to the cover glass 2 than the second substrate 41.
Even in a case where neither a shielding electrode nor a GND terminal is formed on the second substrate 41, it is possible to release, to GND potential via the shielding electrode 14J, a voltage of static electricity which is applied to a touch surface, as illustrated in (b) of
Further, in the touch panel substrate of Example 8, it is possible to reduce production cost because neither a shielding electrode nor a GND terminal is required to be formed on the second substrate 41.
A touch panel substrate in accordance with Aspect 1 of the present invention is a touch panel substrate for detecting a position of a detection target object on a detection surface (touch surface) which faces outside, the touch panel substrate including: a substrate (first substrate 11, second substrate 41) provided with a plurality of sensor electrodes (12, 42); a detection circuit (touch controller 32) electrically connected to the sensor electrodes; and a relay wiring (flexible substrate 12, 50) for electrically connecting the sensor electrodes and the detection circuit to each other, the sensor electrodes being provided on a sensor electrode formation surface of the substrate, the sensor electrode formation surface being a surface on an opposite side of the detection surface, the sensor electrode formation surface being provided with a terminal section (13, 43) including terminals of the sensor electrodes, the relay wiring having one end connected to the terminal section, and the sensor electrode formation surface being provided with a shielding electrode (14, 44), on an outer side of the terminal section.
The above configuration makes it possible to block static electricity by use of the shielding electrode before entry of the static electricity into the terminal section, which static electricity comes around from a side surface of the touch panel substrate to the sensor electrode formation surface of the substrate. For example, it is possible to block, by use of the shielding electrode, static electricity which has been caused by a touch with an electrically charged finger on the detection surface and comes around from the detection surface to a sensor electrode formation surface side.
This makes it possible to prevent a voltage of static electricity from being applied to the detection circuit via the terminal section and the relay wiring. This consequently makes it possible to prevent electrostatic breakdown of the touch controller 32 due to application of a voltage of the static electricity.
A touch panel substrate in accordance with Aspect 2 of the present invention can be configured such that in the above Aspect 1, the relay wiring is a flexible substrate that is bendable.
In the above configuration, there is no limitation in position where the detection circuit is provided to the sensor electrode formation surface, within a movable range of the flexible substrate. This makes it possible to reduce a size of the touch panel substrate by, for example, providing the detection circuit on a back surface of the substrate.
A touch panel substrate in accordance with Aspect 3 of the present invention can be configured such that, in the above Aspect 1 or 2, the shielding electrode is grounded.
The above configuration makes it possible to release, to GND, static electricity which has been blocked by use of the shielding electrode.
A touch panel substrate in accordance with Aspect 4 of the present invention can be configured such that, in the above Aspect 3, the relay wiring is provided with a ground terminal connected to the shielding electrode; and on the sensor electrode formation surface, the sensor electrodes and the terminal section are surrounded by the shielding electrode and the ground terminal.
The above configuration makes it possible to more effectively block static electricity which is about to enter the sensor electrode formation surface.
A touch panel substrate in accordance with Aspect 5 of the present invention can be configured such that, in any one of the above Aspects 1 through 4, on the sensor electrode formation surface, at least part of the shielding electrode is multiply provided in a planar view.
The above configuration makes it possible to more reliably block static electricity which is about to leap over the shielding electrode and enter the sensor electrode formation surface.
A touch panel substrate in accordance with Aspect 6 of the present invention can be configured to further include: a second substrate provided so as to face the substrate, the second substrate being provided on an opposite side of the detection surface with respect to the substrate, the sensor electrode formation surface of the substrate being provided with the sensor electrodes which are formed so as to extend in a first direction, and the second substrate being provided with second electrodes which are formed so as to extend in a second direction orthogonal to the first direction, in any one of the above Aspects 1 through 5.
The shielding electrode provided on the substrate closer to the detection surface blocks static electricity which comes around from the detection surface to the sensor electrode formation surface side. Therefore, there is no need to provide a shielding electrode on the second substrate farther from the detection surface, for the purpose of blocking the static electricity which comes around from the detection surface to the sensor electrode formation surface side. This makes it possible to simplify a configuration for blocking static electricity because there is no need to provide any shielding electrode on the second substrate.
The present invention is not limited to the description of the embodiments above, but may be altered by a skilled person within the scope of the claims. An embodiment based on a proper combination of technical means disclosed in different embodiments is encompassed in the technical scope of the present invention. Further, a new technical feature can be formed by combining technical measures disclosed in the embodiments.
The present invention can be applied to a touch panel substrate for use in portable telephones, laptops, and the like.
11 First substrate (substrate)
41 Second substrate (substrate)
12, 42 Sensor electrode
13, 13A, 13B, 43A Terminal section
14, 14A to J, 44, 441 Shielding electrode
17A, 17B, 47A Connecting terminal
18, 18A to 18J, 481 GND terminal
20, 50 Flexible substrate
32 Touch controller (detection circuit)
100, 101 Touch panel substrate
Number | Date | Country | Kind |
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2013-113380 | May 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/054341 | 2/24/2014 | WO | 00 |