WO2019227593A1 - 触控面板及触控装置 - Google Patents

触控面板及触控装置 Download PDF

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WO2019227593A1
WO2019227593A1 PCT/CN2018/094655 CN2018094655W WO2019227593A1 WO 2019227593 A1 WO2019227593 A1 WO 2019227593A1 CN 2018094655 W CN2018094655 W CN 2018094655W WO 2019227593 A1 WO2019227593 A1 WO 2019227593A1
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electrode
sub
chain
touch panel
connection portion
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PCT/CN2018/094655
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English (en)
French (fr)
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史文杰
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武汉华星光电半导体显示技术有限公司
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Priority to US16/084,926 priority Critical patent/US10635251B2/en
Publication of WO2019227593A1 publication Critical patent/WO2019227593A1/zh

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/041Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
    • G06F3/044Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2203/00Indexing scheme relating to G06F3/00 - G06F3/048
    • G06F2203/041Indexing scheme relating to G06F3/041 - G06F3/045
    • G06F2203/04111Cross over in capacitive digitiser, i.e. details of structures for connecting electrodes of the sensing pattern where the connections cross each other, e.g. bridge structures comprising an insulating layer, or vias through substrate

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  • the present invention relates to the field of touch technology, and in particular, to a touch panel and a touch device.
  • OLED Organic Light Emitting Diode
  • the touch sensors used in the flexible OLED panel are mainly plug-in type, that is, the touch sensor module is completed on the thin film encapsulation layer and then attached to the OLED panel.
  • One of the problems faced by making touch sensors directly on flexible OLED panels is the interference of the OLED's electron emission layer (ie, the cathode) with the touch sensor signals. Because the thickness of the thin-film encapsulation material is only a few ten micrometers, the distance between the touch sensor and the cathode is too close. The cathode electric field affects the driving signal of the touch sensor, which reduces the node capacitance value, which in turn makes the detection accuracy during touch detection ineffective. high.
  • a touch panel includes:
  • a plurality of repeated cross-insulated first electrode chains and second electrode chains on the substrate are A plurality of repeated cross-insulated first electrode chains and second electrode chains on the substrate;
  • the first electrode chain includes a first electrode
  • the second electrode chain includes a second electrode
  • the first electrode includes a first sub-electrode and a second sub-electrode that are electrically connected, the first sub-electrode and the second sub-electrode are spaced apart, and the second electrode surrounds the first sub-electrode at the same time. And the second sub-electrode.
  • the touch panel provided by this technical solution includes: a substrate; a plurality of repeated and cross-insulated first electrode chains and a second electrode chain on the substrate; the first electrode chain includes a first electrode, and the first electrode chain
  • the two-electrode chain includes a second electrode, wherein the first electrode includes a first sub-electrode and a second sub-electrode that are electrically connected, the first sub-electrode and the second sub-electrode are spaced apart, and the second electrode The first sub-electrode and the second sub-electrode are simultaneously surrounded.
  • the first electrode includes a first sub-electrode and a second sub-electrode that are electrically connected, the first sub-electrode and the second sub-electrode are spaced apart, and the second electrode surrounds the first sub-electrode and the simultaneously The second sub-electrode is provided. Therefore, the first sub-electrode and the second sub-electrode cross at least a part of the surface of the second electrode, thereby increasing the length of the interaction boundary between the first electrode and the second electrode, thereby increasing the first The mutual capacitance between one electrode and the second electrode makes the touch panel have higher touch detection accuracy.
  • the invention also provides a touch device.
  • the touch device includes a touch panel as described above.
  • FIG. 1 is a schematic structural diagram of a touch panel according to a first embodiment of the present invention.
  • FIG. 2 is a schematic structural diagram of a touch panel according to a second embodiment of the present invention.
  • FIG. 3 is a schematic structural diagram of a touch panel according to a third embodiment of the present invention.
  • FIG. 4 is a schematic structural diagram of a touch device according to a preferred embodiment of the present invention.
  • an embodiment herein means that a particular feature, structure, or characteristic described in connection with the embodiment may be included in at least one embodiment of the invention.
  • the appearances of this phrase in various places in the specification are not necessarily all referring to the same embodiment, nor are they independent or alternative embodiments that are mutually exclusive with other embodiments. Those skilled in the art will understand explicitly and implicitly that the embodiments described herein may be combined with other embodiments.
  • FIG. 1 is a schematic structural diagram of a touch panel according to a first embodiment of the present invention.
  • the touch panel 10 includes:
  • the first electrode chain 100 includes a first electrode 110
  • the second electrode chain 200 includes a second electrode 210.
  • the first electrode 110 includes a first sub-electrode 111 and a second sub-electrode 112 electrically connected, the first sub-electrode 111 and the second sub-electrode 112 are spaced apart, and the second electrode 210 surrounds The first sub-electrode 111 and the second sub-electrode 112.
  • the substrate 20 is a transparent substrate, such as a glass substrate, a plastic substrate, or the like, and may be a flexible substrate.
  • the substrate may be a packaging layer of the OLED display device.
  • the first electrode chain 100 is a sensing electrode chain
  • the second electrode chain 200 is a driving electrode chain.
  • the first electrode chain 100 is a driving electrode chain
  • the second electrode chain 200 is a sensing electrode chain
  • the first electrode chain 100 is an induction electrode chain
  • the second electrode chain 200 is a driving electrode chain.
  • the second electrode 210 is a “M” shape
  • the first electrode 110 is a “1” shape.
  • the second electrode 210 and the first electrode 110 form a circular nested structure.
  • the first electrode chain 100 includes a plurality of first electrodes 110
  • the second electrode chain 200 includes a plurality of second electrodes 210.
  • the first electrode chain 100 and the second electrode chain 200 together form a touch panel 10.
  • the touch panel 10 is only a minimum unit. In practical applications, the touch panel 10 is used as a minimum unit to extend in a first direction and a second direction.
  • the first direction may be the X direction or the Y direction
  • the second direction may be the X direction or the Y direction.
  • the first direction is the Y direction
  • the first direction is The two directions are X directions. In this application, the first direction is the X direction and the second direction is the Y direction.
  • the first electrode chain 100 and the second electrode chain 200 need to avoid the RGB pixel points of the touch panel 10, and the first electrode chain 100 and The second electrode chain 200 may be disposed in a gap region of RGB pixel points, so that the routing of the first electrode chain 100 and the second electrode chain 200 avoids the RGB pixel points, because the first electrode chain 100
  • the second electrode chain 200 and the second electrode chain 200 are metal materials, which will block the light emission of the RGB pixels. Therefore, the first electrode chain 100 and the second electrode chain 200 are arranged in the RGB pixel area, so that the first electrode chain 200 can be avoided.
  • the electrode chain 100 and the second electrode chain 200 block the light emission of the RGB pixels.
  • the touch panel provided by this technical solution includes: a substrate; a plurality of repeated and cross-insulated first electrode chains and a second electrode chain on the substrate; the first electrode chain includes a first electrode, and the first electrode chain
  • the two-electrode chain includes a second electrode, wherein the first electrode includes a first sub-electrode and a second sub-electrode that are electrically connected, the first sub-electrode and the second sub-electrode are spaced apart, and the second electrode The first sub-electrode and the second sub-electrode are simultaneously surrounded.
  • the first electrode includes a first sub-electrode and a second sub-electrode that are electrically connected, the first sub-electrode and the second sub-electrode are spaced apart, and the second electrode surrounds the first sub-electrode and the simultaneously The second sub-electrode is provided. Therefore, the first sub-electrode and the second sub-electrode cross at least a part of the surface of the second electrode, thereby increasing the length of the interaction boundary between the first electrode and the second electrode, thereby increasing the first The mutual capacitance between one electrode and the second electrode makes the touch panel have higher touch detection accuracy.
  • FIG. 2 is a schematic structural diagram of a touch panel according to a second embodiment of the present invention.
  • the structure of the second embodiment is basically the same as that of the first embodiment, except that in this embodiment, the touch panel 10 further includes:
  • the third electrode 120 is disposed between two adjacent second electrodes 210 and is insulated from the second electrode 210.
  • the first connection portion 310 is electrically connected between two adjacent first sub-electrodes 111 and the second sub-electrode 112 through the first connection portion 310.
  • the first connection portion 310 is made of a metal material.
  • the number of the first connection portions 310 may be one or multiple.
  • the second connection portion 320 is electrically connected between the adjacent first electrode 110 and the third electrode 120 through the second connection portion 320.
  • the third connection portion 330 is electrically connected between two adjacent third electrodes 120 through the third connection portion 330.
  • the number of the second connection portions 320 may be one, and it is understandable that in other embodiments, the number of the second connection portions 320 may also be multiple. It can be understood that the number of the second connecting portions 330 may be one or plural.
  • the number of the first sub-electrodes 111 may be one, and it is understandable that in other embodiments, the number of the first sub-electrodes 111 may also be multiple.
  • the number of the second sub-electrodes 112 may be one, and it is understandable that in other embodiments, the number of the second sub-electrodes 112 may also be multiple.
  • the first electrode 110 and the second electrode 210 are disposed on the same layer, and the first connection portion 310 and the first sub-electrode 111 and An insulating layer 1000 is provided between the second sub-electrodes 112.
  • the insulating layer 1000 has a first through-hole 410 corresponding to the first sub-electrode 111, and the insulating layer 1000 has a first through-hole corresponding to the second sub-electrode 112.
  • connection portion 310 is electrically connected to the first sub-electrode 111 through the first through hole 410, and the first connection portion 310 is connected to the first sub electrode 111 through the second through hole 420
  • the second sub-electrode 112 is electrically connected.
  • a metal material is disposed in the first through hole 410 and the second through hole 420.
  • the first electrode 110 and the second electrode 210 are disposed on different layers, and the first connection portion 310 and the first electrode 110 are disposed on the same layer.
  • a barrier layer is provided between the first electrode 110 and the second electrode 210, and the barrier layer is used to isolate the first electrode 110 and the second electrode Electrode 210.
  • the touch panel provided by this technical solution includes: a substrate; a plurality of repeated and cross-insulated first electrode chains and a second electrode chain on the substrate; the first electrode chain includes a first electrode, and the first electrode chain
  • the two-electrode chain includes a second electrode, wherein the first electrode includes a first sub-electrode and a second sub-electrode that are electrically connected, the first sub-electrode and the second sub-electrode are spaced apart, and the second electrode The first sub-electrode and the second sub-electrode are simultaneously surrounded.
  • the first electrode includes a first sub-electrode and a second sub-electrode that are electrically connected, the first sub-electrode and the second sub-electrode are spaced apart, and the second electrode surrounds the first sub-electrode and the simultaneously The second sub-electrode is provided. Therefore, the first sub-electrode and the second sub-electrode cross at least a part of the surface of the second electrode, thereby increasing the length of the interaction boundary between the first electrode and the second electrode, thereby increasing the first The mutual capacitance between one electrode and the second electrode makes the touch panel have higher touch detection accuracy.
  • FIG. 4 is a schematic structural diagram of a touch device according to an embodiment of the present invention.
  • the touch device 1 includes a touch panel 10.
  • the touch panel 10 may be the touch panel 10 provided in any one of the foregoing embodiments, and details are not described herein again.
  • the touch device 1 may be, but is not limited to, an e-book, a smart phone (such as an Android phone, an IOS phone, a Windows Phone phone, etc.), a tablet computer, a handheld computer, a laptop computer, and a mobile Internet device (MID). Or wearables.
  • the touch device may be an OLED touch device.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Theoretical Computer Science (AREA)
  • Human Computer Interaction (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Position Input By Displaying (AREA)

Abstract

一种触控面板及触控装置。所述触控面板(10)包括:基板(20);在所述基板(20)上的多个重复的交叉绝缘设置的第一电极链(100)和第二电极链(200);所述第一电极链(100)包括多个第一电极(110),所述第二电极链(200)包括多个第二电极(210);其中,所述第一电极(110)包括电连接的第一子电极(111)和第二子电极(112),所述第一子电极(111)和所述第二子电极(112)间隔设置,所述第二电极(210)同时环绕所述第一子电极(111)和所述第二子电极(112)。所述触控面板(10)具有较高的触控检测精度。

Description

触控面板及触控装置
本发明要求2018年5月30日递交的发明名称为“触控面板及触控装置”的申请号201810537607.1的在先申请优先权,上述在先申请的内容以引入的方式并入本文本中。
技术领域
本发明涉及触控技术领域,尤其涉及一种触控面板及触控装置。
背景技术
随着显示技术的发展,有机发光二极管(Original Light Emitting Diode,OLED)面板被越来越多的电子产品所采用,而柔性OLED更是由于其可挠性而备受关注。柔性OLED面板所采用的触控传感器主要为外挂式,即在薄膜封装层上完成触控传感器模组后再贴合到OLED面板上。在柔性OLED面板上直接进行触控传感器的制作,面对的一个问题就在于OLED的电子发射层(即阴极)对触控传感器信号的干扰。由于薄膜封装材料厚度只有十几微米,导致触控传感器与阴极距离太近,阴极电场对触控传感器的驱动信号产生影响,降低了节点电容值,进而使得在触控检测的时候的检测精度不高。
发明内容
一种触控面板,所述触控面板包括:
基板;
在所述基板上的多个重复的交叉绝缘设置的第一电极链和第二电极链;
所述第一电极链包括第一电极,所述第二电极链包括第二电极;
其中,所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,所述第二电极同时环绕所述第一子电极和所述第二子电极。
本技术方案提供的触控面板包括:基板;在所述基板上的多个重复的交叉绝缘设置的第一电极链和第二电极链;所述第一电极链包括第一电极,所述第 二电极链包括第二电极;其中,所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,所述第二电极同时环绕所述第一子电极和所述第二子电极。由于所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,第二电极同时环绕所述第一子电极和所述第二子电极设置,因此,第一子电极和第二子电极跨越第二电极的至少部分表面,从而增大了第一电极和第二电极之间的交互边界的长度,进而可以增大第一电极和第二电极之间的互电容,进而使得所述触控面板具有较高的触控检测精度。
本发明还提供一种触控装置。所述触控装置包括如上所述的触控面板。
附图说明
为了更清楚地阐述本发明的构造特征和功效,下面结合附图与具体实施例来对其进行详细说明,显而易见地,下面描述中的附图是本发明的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1是本发明实施例一提供的触控面板的结构示意图。
图2是本发明实施例二提供的触控面板的结构示意图。
图3是本发明实施例三提供的触控面板的结构示意图。
图4是本发明一较佳实施例提供的触控装置的结构示意图。
具体实施方式
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述。显然,所描述的实施例是本发明的一部分实施例,而不是全部实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动的前提下所获得的所有其他实施例,都应属于本发明保护的范围。
在本文中提及“实施例”意味着,结合实施例描述的特定特征、结构或特性可以包含在本发明的至少一个实施例中。在说明书中的各个位置出现该短语并不一定均是指相同的实施例,也不是与其它实施例互斥的独立的或备选的实施例。本领域技术人员显式地和隐式地理解的是,本文所描述的实施例可以与其 它实施例相结合。
为了使本发明实施例提供的技术方案更加清楚,下面结合附图对上述方案进行详细描述。
参见图1,图1是本发明实施例一提供的触控面板的结构示意图。所述触控面板10包括:
基板20;
在所述基板20上的多个重复的交叉绝缘设置的第一电极链100和第二电极链200;
所述第一电极链100包括第一电极110,所述第二电极链200包括第二电极210;
其中,所述第一电极110包括电连接的第一子电极111和第二子电极112,所述第一子电极111和所述第二子电极112间隔设置,所述第二电极210同时环绕所述第一子电极111和所述第二子电极112。
其中,基板20为透明基板,比如为玻璃基板、塑料基板等,也可以为柔性基板。当所述触控面板应用于有机发光二极管(Original Light Emitting Diode,OLED)显示装置的时候,所述基板可以为所述OLED显示装置的封装层。
可选的,在一种实施方式中,所述第一电极链100为感应电极链,所述第二电极链200为驱动电极链。可以理解的,在其他实施方式中,所述第一电极链100为驱动电极链,所述第二电极链200为感应电极链。本申请以所述第一电极链100为感应电极链,所述第二电极链200为驱动电极链为例进行说明。
可选的,在一种实施方式中,所述第二电极210为“中”字型,所述第一电极110为“1”字型。所述第二电极210和所述第一电极110形成环形嵌套结构。
具体的,第一电极链100包括多个第一电极110,所述第二电极链200包括多个第二电极210,第一电极链100和第二电极链200共同构成触控面板10。该触控面板10只是一个最小单元,在实际应用时,以该触控面板10为最小单元进行第一方向和第二方向的延伸。其中,第一方向可以为X方向或Y方向,第二方向可以为X方向或Y方向,当第一方向为X方向时,第二方向为Y方向;当第一方向为Y方向时,第二方向为X方向。本申请中,以第一方向为 X方向,第二方向为Y方向为例进行说明。
需要说明的一点是,在实际使用的过程中,所述第一电极链100和所述第二电极链200需要避开所述触控面板10的RGB像素点,所述第一电极链100和所述第二电极链200可以设置在RGB像素点的间隙区域,使得所述第一电极链100和所述第二电极链200的走线避开RGB像素点,由于所述第一电极链100和所述第二电极链200为金属材料,会遮挡RGB像素点的发光,因此,将所述第一电极链100和所述第二电极链200设置在RGB像素区,可以避免所述第一电极链100和所述第二电极链200对RGB像素点的发光产生遮挡。
本技术方案提供的触控面板包括:基板;在所述基板上的多个重复的交叉绝缘设置的第一电极链和第二电极链;所述第一电极链包括第一电极,所述第二电极链包括第二电极;其中,所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,所述第二电极同时环绕所述第一子电极和所述第二子电极。由于所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,第二电极同时环绕所述第一子电极和所述第二子电极设置,因此,第一子电极和第二子电极跨越第二电极的至少部分表面,从而增大了第一电极和第二电极之间的交互边界的长度,进而可以增大第一电极和第二电极之间的互电容,进而使得所述触控面板具有较高的触控检测精度。
可选的,参见图2,图2是本发明实施例二提供的触控面板的结构示意图。实施例二与实施例一的结构基本相同,不同之处在于,在本实施方式中,所述触控面板10还包括:
第三电极120,所述第三电极120设置在相邻两个所述第二电极210之间,且与所述第二电极210绝缘设置。
第一连接部310,相邻两个所述第一子电极111和所述第二子电极112之间通过所述第一连接部310电连接。
其中,第一连接部310为金属材料。
可选的,在一种实施方式中,第一连接部310的数量可以为一个,也可以为多个。
第二连接部320,相邻的所述第一电极110和所述第三电极120之间通过 所述第二连接部320电连接。
第三连接部330,相邻两个所述第三电极120之间通过所述第三连接部330电连接。
可选的,在一种实施方式中,第二连接部320的数量可以为一个,可以理解的,在其他实施方式中,第二连接部320的数量也可以为多个。可以理解的,第二连接部330的数量可以为一个,也可以为多个。
可选的,在一种实施方式中,第一子电极111的数量可以为一个,可以理解的,在其他实施方式中,第一子电极111的数量也可以为多个。
可选的,在一种实施方式中,第二子电极112的数量可以为一个,可以理解的,在其他实施方式中,第二子电极112的数量也可以为多个。
可选的,参见图3,在一种实施方式中,所述第一电极110和所述第二电极210设置在同一层,且所述第一连接部310与所述第一子电极111和所述第二子电极112之间设置绝缘层1000,所述绝缘层1000对应所述第一子电极111开设第一通孔410,且所述绝缘层1000对应所述第二子电极112开设第二通孔420,所述第一连接部310通过所述第一通孔410与所述第一子电极111电连接,且所述第一连接部310通过所述第二通孔420与所述第二子电极112电连接。
可选的,所述第一通孔410和所述第二通孔420内设置有金属材料。
可选的,在另一种实施方式中,所述第一电极110和所述第二电极210设置在不同层,且所述第一连接部310和所述第一电极110设置在同一层。
可选的,在又一种实施方式中,所述第一电极110和所述第二电极210之间设置有阻隔层,所述阻隔层用于隔离所述第一电极110和所述第二电极210。
本技术方案提供的触控面板包括:基板;在所述基板上的多个重复的交叉绝缘设置的第一电极链和第二电极链;所述第一电极链包括第一电极,所述第二电极链包括第二电极;其中,所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,所述第二电极同时环绕所述第一子电极和所述第二子电极。由于所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,第二电极同时环绕所述第一子电极和所述第二子电极设置,因此,第一子电极和第二子电极 跨越第二电极的至少部分表面,从而增大了第一电极和第二电极之间的交互边界的长度,进而可以增大第一电极和第二电极之间的互电容,进而使得所述触控面板具有较高的触控检测精度。
参见图4,图4是本发明实施例提供的触控装置的结构示意图。所述触控装置1包括触控面板10,所述触控面板10可以为前面任意一实施例提供的触控面板10,在此不再赘述。所述触控装置1可以为但不仅限于为电子书、智能手机(如Android手机、IOS手机、Windows Phone手机等)、平板电脑、掌上电脑、笔记本电脑、移动互联网设备(Mobile Internet Devices,MID)或穿戴式设备等。所述触控装置可以为OLED触控装置。
以上对本发明实施例进行了详细介绍,本文中应用了具体个例对本发明的原理及实施方式进行了阐述,以上实施例的说明只是用于帮助理解本发明的方法及其核心思想;同时,对于本领域的一般技术人员,依据本发明的思想,在具体实施方式及应用范围上均会有改变之处,综上所述,本说明书内容不应理解为对本发明的限制。

Claims (20)

  1. 一种触控面板,其中,所述触控面板包括:
    基板;
    在所述基板上的多个重复的交叉绝缘设置的第一电极链和第二电极链;
    所述第一电极链包括第一电极,所述第二电极链包括第二电极;
    其中,所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,所述第二电极同时环绕所述第一子电极和所述第二子电极。
  2. 如权利要求1所述的触控面板,其中,所述触控面板还包括:
    第一连接部,相邻两个所述第一子电极和所述第二子电极之间通过所述第一连接部电连接。
  3. 如权利要求1所述的触控面板,其中,所述第一电极链还包括:
    第三电极,所述第三电极设置在相邻两个所述第二电极之间,且与所述第二电极绝缘设置。
  4. 如权利要求3所述的触控面板,其中,所述触控面板还包括:
    第二连接部,相邻的所述第一电极和所述第三电极之间通过所述第二连接部电连接。
  5. 如权利要求3所述的触控面板,其中,所述触控面板还包括:
    第三连接部,相邻两个所述第三电极之间通过所述第三连接部电连接。
  6. 如权利要求2所述的触控面板,其中,所述第一电极和所述第二电极设置在同一层,且所述第一连接部与所述第一子电极和所述第二子电极之间设置绝缘层,所述绝缘层对应所述第一子电极开设第一通孔,且所述绝缘层对应所述第二子电极开设第二通孔,所述第一连接部通过所述第一通孔与所述第一子 电极电连接,且所述第一连接部通过所述第二通孔与所述第二子电极电连接。
  7. 如权利要求6所述的触控面板,其中,所述第一通孔和所述第二通孔内设置有金属材料。
  8. 如权利要求2所述的触控面板,其中,所述第一电极和所述第二电极设置在不同层,且所述第一连接部和所述第一电极设置在同一层。
  9. 如权利要求1所述的触控面板,其中,所述第一电极链为感应电极链,所述第二电极链为驱动电极链。
  10. 如权利要求1所述的触控面板,其中,所述第一电极链为驱动电极链,所述第二电极链为感应电极链。
  11. 一种触控装置,其中,所述触控装置包括触控面板,所述触控面板包括:
    基板;
    在所述基板上的多个重复的交叉绝缘设置的第一电极链和第二电极链;
    所述第一电极链包括第一电极,所述第二电极链包括第二电极;
    其中,所述第一电极包括电连接的第一子电极和第二子电极,所述第一子电极和所述第二子电极间隔设置,所述第二电极同时环绕所述第一子电极和所述第二子电极。
  12. 如权利要求11所述的触控装置,其中,所述触控面板还包括:
    第一连接部,相邻两个所述第一子电极和所述第二子电极之间通过所述第一连接部电连接。
  13. 如权利要求11所述的触控装置,其中,所述第一电极链还包括:
    第三电极,所述第三电极设置在相邻两个所述第二电极之间,且与所述第 二电极绝缘设置。
  14. 如权利要求13所述的触控装置,其中,所述触控面板还包括:
    第二连接部,相邻的所述第一电极和所述第三电极之间通过所述第二连接部电连接。
  15. 如权利要求13所述的触控装置,其中,所述触控面板还包括:
    第三连接部,相邻两个所述第三电极之间通过所述第三连接部电连接。
  16. 如权利要求12所述的触控装置,其中,所述第一电极和所述第二电极设置在同一层,且所述第一连接部与所述第一子电极和所述第二子电极之间设置绝缘层,所述绝缘层对应所述第一子电极开设第一通孔,且所述绝缘层对应所述第二子电极开设第二通孔,所述第一连接部通过所述第一通孔与所述第一子电极电连接,且所述第一连接部通过所述第二通孔与所述第二子电极电连接。
  17. 如权利要求16所述的触控装置,其中,所述第一通孔和所述第二通孔内设置有金属材料。
  18. 如权利要求12所述的触控装置,其中,所述第一电极和所述第二电极设置在不同层,且所述第一连接部和所述第一电极设置在同一层。
  19. 如权利要求11所述的触控装置,其中,所述第一电极链为感应电极链,所述第二电极链为驱动电极链。
  20. 如权利要求11所述的触控装置,其中,所述第一电极链为驱动电极链,所述第二电极链为感应电极链。
PCT/CN2018/094655 2018-05-30 2018-07-05 触控面板及触控装置 WO2019227593A1 (zh)

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