Touch sensor and touch input device including the same

The touch sensor design with specific electrode patterns cancels noise signals to enhance sensitivity and prevent ghost touches in OLED panels, addressing issues of cathode retransmission and noise interference.

JP7785401B2Active Publication Date: 2025-12-15HIDEEP INC
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Patent Information

Application Number
JP2024547434
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-02-09
Filing Date
2023-02-08
Publication Date
2025-12-15
Estimated Expiration
2043-02-08

AI Technical Summary

Technical Problem

Touch sensors on OLED panels experience issues with cathode retransmission and ghost touches due to sudden changes in ambient temperature, leading to reduced touch sensing sensitivity and noise interference.

Method used

A touch sensor design with a plurality of receiving electrodes, including first and second patterns, where the second pattern is closer to the driving electrode, allows for subtraction of noise signals to cancel out cathode retransmission and other noise phenomena, improving sensitivity and preventing ghost touches.

Benefits of technology

Enhances touch sensing accuracy by eliminating noise signals and preventing ghost touches, particularly in OLED panels with weak ground connections, thereby improving overall touch input device performance.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A touch input device according to an embodiment of the present invention includes a display panel including an ELVSS layer, a touch sensor disposed on the ELVSS layer of the display panel, and a sensing unit electrically connected to the touch sensor to sense a touch position of a touch object.
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION An embodiment of the present invention relates to a touch sensor and a touch input device including the same. [Background technology]

[0002] Various types of input devices are used to operate computing systems, such as buttons, keys, joysticks, and touch screens. The ease and convenience of touch screens has led to an increasing use of touch screens when operating computing systems.

[0003] A touch sensor can be used as a type of information input device by being provided on a display panel. For example, the touch sensor can be attached to one surface of the display panel or manufactured integrally with the display panel. A user can input information by pressing or touching the touch sensor while viewing an image displayed on the screen of the display device.

[0004] When a touch sensor is implemented with driving electrodes and receiving electrodes in a single layer or double layer, if a touch input device with a touch sensor mounted thereon is touched without being held by hand (floating state), a signal that should be detected normally may disappear due to the low ground mass (LGM), or a signal that should be detected may be split and appear as if it was touched at two or more points.

[0005] Meanwhile, among display panels, there is the OLED panel. OLED panels basically use the active matrix method, which uses data signals and scan signals to adjust the current flowing to each pixel. OLED panels that use the active matrix method are called AMOLED.

[0006] If an OLED panel has a FHD (1080 x 1920) resolution, it can display 2,073,600 pixels. The higher the resolution, the more detailed the image and video can be displayed. For each pixel to produce color, the amount of current flowing must be adjusted, and this is done using a pixel circuit. The basic circuit of an OLED pixel circuit is a 2Tr 1Cap circuit as shown in Figure 1.

[0007] FIG. 1 is a diagram illustrating a conventional OLED pixel circuit and its driving method.

[0008] Referring to Figure 1, when the Scan(n) signal changes from high to low, the second transistor T2 turns on and Vdata is written to the G node. When the Scan(n) signal changes from low to high, the second transistor T2 turns off. The Vdata written to the G node is held by the storage capacitance Cst for the remaining time, and the current flowing through the first transistor T1 is determined by the Vgs (ELVDD - G node) voltage of the first transistor T1. The desired brightness value can be expressed by adjusting the current flowing through the Vgs of the first transistor T1.

[0009] The time for one frame is determined by the frequency, and the time for one hour is determined by the frequency and the resolution. For example, for 60Hz operation with FHD resolution, one frame may be 16.7ms and one hour may be 8.6us. During 1H, each scan signal is turned on / off to sequentially drive scan lines equal to the resolution.

[0010] The OLED pixel shown in Figure 1 is composed of a backplane structure that operates as a circuit and an EL stack structure that is formed through subsequent processes. Here, the word "backplane" literally means a rear panel, and in the display field, it refers to the rear surface that contains the circuit elements that drive the display, not the front surface that the user sees. This will be described in detail with reference to Figures 2 and 3.

[0011] 2 and 3 are diagrams illustrating the structure of a conventional OLED display.

[0012] Referring to Figures 2 and 3, an OLED display is made up of three main parts: a light-emitting part that produces the light that users can see in their daily lives, a thin film transistor (TFT) that turns on and off the electrical switch so that the light-emitting part can emit light, and a substrate that acts as a base on which the TFT and light-emitting part can be stacked.

[0013] 2 and 3, the backplane is composed of a substrate and a TFT, i.e., it is in a state before the organic elements that emit light when an electric signal is received are deposited.

[0014] In FIGS. 2 and 3, the cathodes of the light emitting parts are connected with a very thin metal layer having a resistance of several to several tens of ohms to form a common electrode, and this layer is called ELVSS.

[0015] FIG. 4 is a diagram showing the resistance distribution of the ELVSS layer in each of the mobile size and tablet size display panels.

[0016] 4, a ground (GND) electrically connected to the ELVSS layer is disposed around the ELVSS layer, where the GND has a U-shaped or U-shaped configuration surrounding the display panel including the ELVSS layer.

[0017] Referring to Figure 4, when the ELVSS layer is surrounded by a ground (GND) with a "U" or "U" shape, the resistance of the ELVSS layer increases toward the top center, as shown by the contour line (CL). This resistance becomes relatively higher as the device size increases from mobile to tablet. This means that the GND in certain parts of the ELVSS layer becomes weaker as the device size increases from mobile to tablet. The weaker the GND depending on the position on the screen, the more likely cathode retransmission occurs.

[0018] FIG. 5 is a diagram showing the resistance distribution in yet another ELVSS layer in each of the mobile size and tablet size display panels.

[0019] The ELVSS layer shown in FIG. 5 differs from the ELVSS layer shown in FIG. 4 in that the periphery of the display panel including the ELVSS layer is surrounded by a square-shaped ground (GND).

[0020] As shown in Figure 5, when the ELVSS layer is surrounded by a square-shaped ground (GND), the weaker the GND becomes depending on the screen position, the more likely the cathode retransmission phenomenon occurs.

[0021] FIG. 6 is a diagram for explaining the cathode retransmission phenomenon mentioned in FIGS.

[0022] As explained in Figures 4 and 5, in certain areas where the ground is weak on large screens such as tablet size, the cathode retransmission phenomenon shown below becomes even worse.

[0023] In addition to the fact that the drive signal is transmitted from the TX sensor to the RX sensor via Cm, the larger the resistance (RELVSS) of the ELVSS layer (i.e., the weaker the GND), the more high-frequency components of the signal are transmitted to the RX sensor and added to the main signal. This phenomenon is called cathode retransmission. Cathode retransmission mainly occurs in sensors that are physically far from ground.

[0024] Cathode retransmission is not a major problem when the ambient temperature remains constant, but when the ambient temperature changes suddenly, it can cause a ghost touch, where there appears to be a touch even though there is no actual touch. Specifically, when the temperature around the touch input device changes suddenly, the resistance of the ELVSS layer of the display panel changes suddenly. This sudden change in resistance causes a change in capacitance (ΔCm) in a specific part of the ELVSS layer (weak GND area).

[0025] Figure 7 shows a simulation result comparing the occurrence and absence of cathode retransmission.

[0026] The upper diagram of Figure 7 shows the circuit configuration when the resistance of the ELVSS layer is 0 and a graph of the RX sensor signal for each position ((1)(2)(3)) of the ELVSS layer. The lower diagram of Figure 7 shows the circuit configuration when the resistance of the ELVSS layer has different predetermined values ​​at each position in a situation where the ambient temperature changes rapidly and a graph of the RX sensor signal for each position ((1)(2)(3)) of the ELVSS layer.

[0027] Referring to the upper drawing of FIG. 7, when the resistance of the ELVSS layer is 0, there is almost no difference in the waveforms of the RX sensor signals at positions (1), (2), and (3).

[0028] However, referring to the bottom diagram of Figure 7, it can be seen that the waveforms of the RX sensor signal at positions (1), (2), and (3) are different from each other. In particular, it can be seen that the RX sensor signal contains a peak at position (3), where the GND is weakest. This peak signal may induce ghost touch. Summary of the Invention [Problem to be solved by the invention]

[0029] SUMMARY OF THE INVENTION An embodiment of the present invention provides a touch sensor capable of improving touch sensing sensitivity and a touch input device including the same.

[0030] In addition, embodiments of the present invention provide a touch sensor and a touch input device including the same that can improve the cathode retransmission phenomenon in the ELVSS layer of a display panel caused by a sudden external temperature change.

[0031] Furthermore, embodiments of the present invention provide a touch sensor capable of eliminating various noises that may occur during touch sensing and a touch input device including the same. [Means for solving the problem]

[0032] A touch input device according to an embodiment of the present invention includes a display panel including an ELVSS layer, a touch sensor disposed on the ELVSS layer of the display panel, and a sensing unit electrically connected to the touch sensor to sense a touch position of a touch object. The touch sensor includes a plurality of driving electrodes and a plurality of receiving electrodes. Each receiving electrode includes a first receiving electrode pattern disposed adjacent to one side of a driving electrode to which a driving signal is applied, and a second receiving electrode pattern disposed adjacent to the other side of the driving electrode. The first receiving electrode pattern is disposed closer to the driving electrode than the second receiving electrode pattern. The sensing unit subtracts a second sensing signal output through the second receiving electrode pattern from a first sensing signal output through the first receiving electrode pattern to cancel out noise signals due to a cathode retransmission phenomenon of the ELVSS layer included in the first sensing signal and the second sensing signal. [Effects of the Invention]

[0033] The use of a touch sensor according to an embodiment of the present invention and a touch input device including the touch sensor has the advantage of improving touch sensing sensitivity.

[0034] It also has the advantage of improving the cathode retransmission phenomenon in the ELVSS layer of the display panel caused by sudden external temperature changes, and in particular, preventing the occurrence of ghost touch caused by sudden external temperature changes.

[0035] Also, there is an advantage that various noises that may occur during touch sensing can be removed. [Brief explanation of the drawings]

[0036] [Figure 1] 1 is a diagram illustrating a conventional OLED pixel circuit and a driving method thereof.

[0037] [Figure 2]1 is a diagram illustrating a conventional OLED display structure. [Figure 3] 1 is a diagram illustrating a conventional OLED display structure.

[0038] [Figure 4] 1 is a diagram showing the resistance distribution of an ELVSS layer in each of a mobile size and a tablet size display panel.

[0039] [Figure 5] 10 is a diagram showing the resistance distribution in yet another ELVSS layer in each of mobile size and tablet size display panels.

[0040] [Figure 6] 6 is a diagram for explaining the cathode retransmission phenomenon mentioned in FIGS. 4 and 5. FIG.

[0041] [Figure 7] This is a simulation diagram comparing the cases when cathode retransmission does not occur and when it does occur.

[0042] [Figure 8] 1 is a schematic diagram of a touch input device including a touch sensor according to an embodiment of the present invention.

[0043] [Figure 9] 9 is a plan view of a portion of one embodiment of touch sensor 10 shown in FIG. 8.

[0044] [Figure 10] 10 is a plan view of the touch sensor shown in FIG. 9 separated into layers.

[0045] [Figure 11]10 is a diagram illustrating electrical connections between a plurality of receiving electrodes shown in FIG. 9;

[0046] [Figure 12] 10 is a diagram illustrating the principle of canceling the cathode retransmission noise signal in the touch input device including the touch sensor and sensing unit shown in FIG. 9.

[0047] [Figure 13] 10 is a diagram illustrating a principle of canceling an LGM noise signal in a touch input device including the touch sensor and sensing unit shown in FIG. 9.

[0048] [Figure 14] 9 is a plan view of a portion of another embodiment of touch sensor 10 shown in FIG. 8.

[0049] [Figure 15] 15 is a plan view of the touch sensor shown in FIG. 14 separated into layers.

[0050] [Figure 16] 15 is a diagram illustrating electrical connections between a plurality of receiving electrodes shown in FIG. 14.

[0051] [Figure 17] 9 is a plan view of a portion of yet another embodiment of the touch sensor 10 shown in FIG. 8. FIG.

[0052] [Figure 18] 18 is a plan view of the touch sensor shown in FIG. 17 separated into layers.

[0053] [Figure 19] 9 is a plan view of a portion of yet another embodiment of the touch sensor 10 shown in FIG. 8. FIG.

[0054] [Figure 20] 20 is a plan view of the touch sensor shown in FIG. 19 separated into layers. DETAILED DESCRIPTION OF THE INVENTION

[0055] The following detailed description of the present invention refers to the accompanying drawings, which show, by way of example, specific embodiments in which the invention may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice the invention. It should be understood that various embodiments of the present invention, although different from one another, are not necessarily mutually exclusive. For example, specific shapes, structures, and characteristics described herein in connection with one embodiment may be embodied in other embodiments without departing from the spirit and scope of the invention. It should also be understood that the location or arrangement of individual components within each disclosed embodiment may be modified without departing from the spirit and scope of the invention. Therefore, the following detailed description is not intended to be taken in a limiting sense, and the scope of the present invention is limited only by the appended claims, along with the full scope of equivalents to which such claims, if properly interpreted, are entitled. In the drawings, like reference numerals indicate the same or similar functionality throughout the various aspects.

[0056] The touch input device according to various embodiments of the present document may include at least one of the following electronic devices: a smartphone, a tablet personal computer, a vehicle display device, a mobile phone, a video phone, an e-book reader, a laptop personal computer, a netbook computer, a mobile medical device, a camera, or a wearable device. Here, the wearable device may include at least one of an accessory type (e.g., a watch, a ring, a bracelet, an anklet, a necklace, glasses, contact lenses, or a head-mounted device (HMD)), a textile or clothing integrated type (e.g., electronic clothing), a body-attached type (e.g., a skin pad or a tattoo), or a biologically implanted type (e.g., an implantable circuit).

[0057] FIG. 8 is a schematic diagram of a touch input device including a touch sensor according to an embodiment of the invention.

[0058] Referring to FIG. 8, a touch input device 1 according to an embodiment of the present invention may include a touch sensor 10, a sensing unit 11, a driving unit 12, and a control unit 13.

[0059] The driving unit 12 applies a driving signal (or a TX signal) to the touch sensor 10 under the control of the control unit 13, and the sensing unit 11 receives a sensing signal (or a RX signal) received from the touch sensor 10.

[0060] The driver 12 can sequentially supply drive signals to the plurality of drive electrodes of the touch sensor 10 .

[0061] The sensing unit 11 receives signals output from a plurality of receiving electrodes of the touch sensor 10. Here, the signals may include information on the amount of capacitance change between adjacent driving electrodes and receiving electrodes, an LGM noise signal, a display noise signal, etc.

[0062] The sensing unit 11 may subtract two signals from the signals output from the plurality of receiving electrodes and output a subtracted signal, and may perform analog-to-digital conversion on the output subtracted signal and output the converted signal. To this end, the sensing unit 11 may include a comparator and an ADC.

[0063] The control unit 13 can detect the presence or absence of a touch and / or the touch position based on the digital signal output from the sensing unit 11.

[0064] 8, the sensing unit 11, the driving unit 12, and the control unit 13 are shown separately for convenience of explanation, but are not limited to this. For example, at least one or more of the sensing unit 11, the driving unit 12, and the control unit 13 may be embodied in a single module, unit, or chip, or the sensing unit 11, the driving unit 12, and the control unit 13 may be embodied in a single module, unit, or chip.

[0065] The touch input device 1 shown in FIG. 8 may include a display panel. In this case, the touch sensor 10 may be disposed on or within the display panel. In some cases, the touch sensor 10 may also be disposed below the display panel. As an example, the touch sensor 10 may be directly formed on the outer surface (e.g., the upper surface of the upper substrate or the lower surface of the lower substrate) or the inner surface (e.g., the lower surface of the upper substrate or the upper surface of the lower substrate) of the upper and / or lower substrate of the display panel. The touch sensor 10 may be coupled to the display panel to form a touch screen.

[0066] The touch sensor 10 includes electrodes of a predetermined shape, and the predetermined electrodes may include a plurality of drive electrodes TX0 to TXm and a plurality of receiving electrodes RX0 to RXn.

[0067] Predetermined capacitances 14 (C00, C01, C10, C11, . . . Cnm) are formed between the plurality of drive electrodes TX0, TX1, TX2, . . . and the plurality of receive electrodes RX0, RX1, RX2, .

[0068] For the operation of the touch sensor 10, the sensing unit 11 can receive sensing signals (or received signals) from a driving unit 12 that applies driving signals to a plurality of driving electrodes TX0 to TXm, and from a plurality of receiving electrodes RX0 to RXn, the sensing signals (or received signals) including information regarding the amount of capacitance change that changes in response to a touch on the touch surface.

[0069] 8 shows the plurality of drive electrodes TX0 through TXm and the plurality of receive electrodes RX0 through RXn of the touch sensor 10 as constituting an orthogonal array, but the present invention is not limited thereto, and the plurality of drive electrodes TX0 through TXm and the plurality of receive electrodes RX0 through RXn may have any number of dimensions and arrangements thereof, including diagonal, concentric, and three-dimensional random arrangements, etc. Here, n and m may have the same or different values ​​as integer quantities, and the magnitudes may vary depending on the embodiment.

[0070] The plurality of drive electrodes TX0 to TXm and the plurality of receive electrodes RX0 to RXn may be arranged to intersect with each other. The drive electrodes TX may include the plurality of drive electrodes TX0 to TXm extending in a first axis direction, and the receive electrodes RX may include the plurality of receive electrodes RX0 to RXn extending in a second axis direction intersecting the first axis direction.

[0071] The plurality of driving electrodes TX0 through TXm and the plurality of receiving electrodes RX0 through RXn may be formed in the same layer or in two different layers. Some of the plurality of driving electrodes TX0 through TXm may be arranged in a different layer from the rest, and some of the plurality of receiving electrodes RX0 through RXn may be arranged in a different layer from the rest. The plurality of driving electrodes TX0 through TXn and the plurality of receiving electrodes RX0 through RXm may have a diamond pattern, a circular shape, an elliptical shape, or a polygonal shape.

[0072] Various embodiments of touch sensor 10 according to embodiments of the present invention will now be described in detail with reference to the following drawings.

[0073] FIG. 9 is a plan view of a portion of one embodiment of the touch sensor 10 shown in FIG. 8, FIG. 10 is a plan view of the touch sensor shown in FIG. 9 separated by layers, and FIG. 11 is a diagram illustrating the electrical connection of multiple receiving electrodes shown in FIG. 9.

[0074] 9 to 11, a touch sensor according to an embodiment of the present invention may be disposed in an area where a touch is input of a touch input device, or may be disposed in a display area of ​​a display panel included in the touch input device.

[0075] A touch sensor according to an embodiment of the present invention includes a plurality of drive electrodes TX0, TX1, TX2, TX3, . . . and a plurality of receive electrodes RX0, RX1, RX2, RX3, RX4, .

[0076] The plurality of drive electrodes TX0, TX1, TX2, TX3, . . . may include a 0th drive electrode TX0, a first drive electrode TX1, a second drive electrode TX2, and a third drive electrode TX3.

[0077] The plurality of receiving electrodes RX0, RX1, RX2, RX3, RX4, . . . may include a 0th receiving electrode RX0, a first receiving electrode RX1, a second receiving electrode RX2, a third receiving electrode RX3, and a fourth receiving electrode RX4.

[0078] The plurality of drive electrodes TX0, TX1, TX2, TX3, ... may be arranged along a second direction (or vertical direction) and extend along a first direction (or horizontal direction) perpendicular to the second direction. The plurality of receive electrodes RX0, RX1, RX2, RX3, RX4, ... may be arranged along the second direction. Conversely, the plurality of drive electrodes TX0, TX1, TX2, TX3, ... may be arranged along the first direction (or horizontal direction), and the plurality of receive electrodes RX0, RX1, RX2, RX3, RX4, ... may be arranged along the second direction (or vertical direction).

[0079] A predetermined capacitance may be formed between the plurality of driving electrodes TX0, TX1, TX2, TX3, ... and the plurality of receiving electrodes RX0, RX1, RX2, RX3, RX4, .... This capacitance changes when a touch input occurs at or around the corresponding point. Therefore, by detecting the amount of change in capacitance from signals output from the plurality of receiving electrodes RX0, RX1, RX2, RX3, RX4, ..., it is possible to detect the presence or absence of a touch and the touch input.

[0080] Each of the multiple drive electrodes TX0, TX1, TX2, TX3, ... may have a rectangular pattern or a bar pattern shape extending in a first direction, as shown in (a) of Figure 3, and may have multiple openings O arranged along the first direction therein.

[0081] One receiving electrode is disposed in each opening O. The shape of each opening O corresponds to the shape of one receiving electrode disposed therein. For example, as shown in FIG. 3, the openings O, except for the openings disposed at the left and right ends, may have a diamond shape, and the openings disposed at the left and right ends may have a triangular shape. Although not shown in the drawing, all of the openings O may have a diamond shape. Alternatively, the openings O may have various shapes such as a polygon, a rectangle, a circle, or an ellipse.

[0082] Each of the receiving electrodes RX0, RX1, RX2, RX3, RX4, ... includes a plurality of receiving electrode patterns RX0a, RX0b, RX1a, RX1b, RX2a, RX2b, RX3a, RX3b, RX4a, RX4b and connecting patterns P0, P1, P2, P3, P4.

[0083] As shown in FIG. 3A, a plurality of driving electrodes TX0, TX1, TX2, TX3, ... and a plurality of receiving electrode patterns RX0a, RX0b, RX1a, RX1b, RX2a, RX2b, RX3a, RX3b, RX4a, RX4b may be arranged together on a first layer. Here, the plurality of driving electrodes TX0, TX1, TX2, TX3, ... and a plurality of receiving electrode patterns RX0a, RX0b, RX1a, RX1b, RX2a, RX2b, RX3a, RX3b, RX4a, RX4b arranged on the first layer may be embodied as a metal mesh. As shown in FIG. 3B, a plurality of connecting patterns P0a, P0b, P1a, P1b, P2a, P2b, P3a, P3b, P4a, P4b may be arranged on a second layer. The second layer is a layer different from the first layer in FIG. 3(a) and is electrically insulated from the first layer. Here, the plurality of connection patterns P0a, P0b, P1a, P1b, P2a, P2b, P3a, P3b, P4a, and P4b may be embodied as a metal mesh. The first layer in FIG. 3(a) may be disposed on the second layer in FIG. 3(b), or vice versa.

[0084] The multiple receiving electrode patterns included in each receiving electrode can be divided into at least two or more groups. The receiving electrode patterns in one group are alternately arranged with one receiving electrode pattern in another group. The receiving electrode patterns in one group are electrically isolated from the receiving electrode patterns in the other group. Here, the receiving electrode patterns in one group can be named first receiving electrode patterns, and the receiving electrode patterns in the other group can be named second receiving electrode patterns.

[0085] The plurality of connection patterns included in each receiving electrode include a first connection pattern that electrically connects the receiving electrode patterns in one group and a second connection pattern that electrically connects the receiving electrodes in another group.

[0086] For example, the 0th receiving electrode RX0 may include a plurality of receiving electrode patterns RX0a, RX0b and a plurality of connecting patterns P0. The plurality of receiving electrode patterns RX0a, RX0b may include a first group of receiving electrode patterns RX0a and a second group of receiving electrode patterns RX0b arranged alternately one by one along the second direction. The first group of receiving electrode patterns RX0a and the second group of receiving electrode patterns RX0b may be electrically isolated from each other. The 0th connecting pattern P0 may include a first connecting pattern P0a electrically connecting the first group of receiving electrode patterns RX0a and a second connecting pattern P0b electrically connecting the second group of receiving electrode patterns RX0b.

[0087] The first receiving electrode RX1 may include a plurality of receiving electrode patterns RX1a, RX1b and a plurality of connecting patterns P1. The plurality of receiving electrode patterns RX1a, RX1b may include a first group of receiving electrode patterns RX1a and a second group of receiving electrode patterns RX1b arranged alternately one by one along the second direction. The first group of receiving electrode patterns RX1a and the second group of receiving electrode patterns RX1b may be electrically isolated from each other. The first connecting pattern P1 may include a first connecting pattern P1a electrically connecting the first group of receiving electrode patterns RX1a and a second connecting pattern P1b electrically connecting the second group of receiving electrode patterns RX1b.

[0088] The second receiving electrode RX2 may include a plurality of receiving electrode patterns RX2a, RX2b and a plurality of connecting patterns P2. The plurality of receiving electrode patterns RX2a, RX2b may include a first group of receiving electrode patterns RX2a and a second group of receiving electrode patterns RX2b arranged alternately one by one along the second direction. The first group of receiving electrode patterns RX2a and the second group of receiving electrode patterns RX2b may be electrically isolated from each other. The second connecting pattern P2 may include a first connecting pattern P2a electrically connecting the first group of receiving electrode patterns RX2a and a second connecting pattern P2b electrically connecting the second group of receiving electrode patterns RX2b.

[0089] The third receiving electrode RX3 may include a plurality of receiving electrode patterns RX3a, RX3b and a plurality of connecting patterns P3. The plurality of receiving electrode patterns RX3a, RX3b may include a first group of receiving electrode patterns RX3a and a second group of receiving electrode patterns RX3b arranged alternately one by one along the second direction. The first group of receiving electrode patterns RX3a and the second group of receiving electrode patterns RX3b may be electrically isolated from each other. The third connecting pattern P3 may include a first connecting pattern P3a electrically connecting the first group of receiving electrode patterns RX3a and a second connecting pattern P3b electrically connecting the second group of receiving electrode patterns RX3b.

[0090] The fourth receiving electrode RX4 may include a plurality of receiving electrode patterns RX4a, RX4b and a plurality of connecting patterns P4. The plurality of receiving electrode patterns RX4a, RX4b may include a first group of receiving electrode patterns RX4a and a second group of receiving electrode patterns RX4b arranged alternately one by one along the second direction. The first group of receiving electrode patterns RX4a and the second group of receiving electrode patterns RX4b may be electrically isolated from each other. The fourth connecting pattern P4 may include a first connecting pattern P4a electrically connecting the first group of receiving electrode patterns RX4a and a second connecting pattern P4b electrically connecting the second group of receiving electrode patterns RX4b.

[0091] The multiple receiving electrode patterns RX0a, RX0b, RX1a, RX1b, RX2a, RX2b, RX3a, RX3b, RX4a, and RX4b are arranged inside the multiple openings O of the multiple driving electrodes TX0, TX1, TX2, TX3, .... One receiving electrode pattern is arranged inside one opening O. The shape of each receiving electrode pattern corresponds to the shape of the corresponding opening.

[0092] In any given receiving electrode RX1, between a receiving electrode pattern RX1a in the first group and a receiving electrode pattern RX1b in the second group that are arranged adjacent to each other, a portion of the driving electrode TX0 immediately adjacent to the periphery of the receiving electrode pattern RX1a in the first group and a portion of the driving electrode TX1 immediately adjacent to the periphery of the receiving electrode pattern RX1b in the second group are both arranged.

[0093] Any drive electrode TX0 is arranged immediately adjacent to the periphery of receiving electrode patterns RX0a, RX1a, RX2a, RX3a, and RX4a of one group, and another drive electrode TX1 arranged immediately adjacent to the periphery of receiving electrode patterns RX0b, RX1b, RX2b, RX3b, and RX4b of another group is arranged so as to be separated from the receiving electrode patterns RX0a, RX1a, RX2a, RX3a, and RX4a of the one group by the arbitrary drive electrode TX0.

[0094] Each of the connection patterns P0a, P0b, P1a, P1b, P2a, P2b, P3a, P3b, P4a, and P4b may have a bar pattern shape extending along the second direction and include at least one conductive via v. The conductive via v may be disposed at both ends of each of the connection patterns.

[0095] In the zeroth receiving electrode RX0, each of the first connecting patterns P0a electrically connects two adjacent receiving electrode patterns RX0a of the first group of receiving electrode patterns RX0a through conductive vias v and is arranged to overlap below a receiving electrode pattern RX0b of the second group arranged between the two adjacent receiving electrode patterns RX0a. Each of the second connecting patterns P0b electrically connects two adjacent receiving electrode patterns RX0b of the second group of receiving electrode patterns RX0b through conductive vias v and is arranged to overlap below a receiving electrode pattern RX0a of the first group arranged between the two adjacent receiving electrode patterns RX0b. The first connecting patterns P1a, P2a, P3a, and P4a and the second connecting patterns P1b, P2b, P3b, and P4b of the remaining receiving electrodes RX1, RX2, RX3, and RX4 are arranged in the same manner as described above.

[0096] Hereinafter, the operation when the driving signals are applied to the driving electrodes TX0, TX1, TX2, and TX3 will be described in detail. For convenience of explanation, the operation of the first receiving electrode RX1 and the operation of the sensing unit 11 of FIG. 8 will be specifically described.

[0097] When driving signals are applied sequentially or simultaneously to the driving electrodes TX0, TX1, TX2, and TX3, two sensing signals are output via the first connecting pattern P1. The first signal is output via the first connecting pattern P1a, and the second signal is output via the second connecting pattern P1b. Therefore, first and second signals of two channels are output for each of the receiving electrodes RX0, RX1, RX2, RX3, and RX4. The first and second signals are output simultaneously, and the output first and second signals may be output to the sensing unit 11 of FIG. 2.

[0098] Depending on the drive electrodes TX0, TX1, TX2, TX3, ... to which the drive signal is applied, one of the first signal and the second signal may become an active channel signal (or an active reception signal ARX), and the remaining one may become a dummy channel signal (or a dummy reception signal DRX). Specifically, when a drive signal is applied to the drive electrodes (TX0 and / or TX2) on which the first group of receiving electrode patterns RX1a are arranged, the first signal output through the first connecting pattern P1a becomes the active channel signal, and the second signal output through the second connecting pattern P1b becomes the dummy channel signal. Conversely, when a drive signal is applied to the drive electrodes (TX1 and / or TX3) on which the second group of receiving electrode patterns RX1b are arranged, the second signal output through the second connecting pattern P1b becomes the active channel signal, and the first signal output through the first connecting pattern P1a becomes the dummy channel signal.

[0099] For example, as shown in FIG. 2, assuming that an object (dotted line) is in proximity to or in contact with the intersection of the first driving electrode TX1 and the first receiving electrode RX1, when a driving signal is applied to the first driving electrode TX1, the capacitance (or active capacitance) formed between the first driving electrode TX1 and the receiving electrode pattern RX1b belonging to the second group of the first receiving electrode RX1 changes. A second signal including information on the amount of capacitance change is output as an active channel signal through the second connecting pattern P1b. Here, the second signal may include at least one of a signal due to the cathode retransmission phenomenon (hereinafter referred to as a cathode retransmission noise signal), an LGM noise signal, and a display noise signal due to the display panel, as previously described with reference to FIGS. 1 through 7. In particular, the cathode retransmission noise signal may cause ghost touches in the touch input device including the display panel at a portion where the ground of the ELVSS layer of the display panel is weak (or has high resistance) due to a sudden change in external temperature.

[0100] Meanwhile, the capacitance (or dummy capacitance) formed between the first receiving electrode RX1 and the receiving electrode pattern RX1a belonging to the first group also changes. A first signal including information on the capacitance change amount is output as a dummy channel signal via the first connecting pattern P1a. The first signal may include at least one of a cathode retransmission noise signal, an LGM noise signal, and a display noise signal generated by a display panel. Because the receiving electrode pattern RX1a belonging to the first group and the receiving electrode pattern RX1b belonging to the second group are closely adjacent to each other, the cathode retransmission noise signal included in the first signal is the same or substantially similar to the cathode retransmission noise signal included in the second signal. Furthermore, because the cross-sectional areas of the receiving electrode pattern RX1b belonging to the second group and the receiving electrode pattern RX1a belonging to the first group that are in contact with the object (dotted line) are the same, substantially the same or similar LGM noise signals may be input to each of them, and substantially the same display noise signal may also be input to each of them.

[0101] The sensing unit 11 shown in FIG. 8 can cancel out all or most of the cathode retransmission noise signal, LGM noise signal, and display noise signal input to the receiving electrode pattern RX1b belonging to the second group and the receiving electrode pattern RX1a belonging to the first group by subtracting the first signal output through the first connecting pattern P1a from the second signal output through the second connecting pattern P1b.

[0102] The principle by which the cathode retransmission noise signal is cancelled in the touch input device including the above-described touch sensor and sensing unit will be described with reference to FIG.

[0103] Referring to FIG. 12, if the cathode retransmission phenomenon occurs, a C m-ELVSSThe signal corresponding to C cannot flow from the driving electrode TX to the ground GND, but flows to the first receiving electrode pattern ARX that is immediately adjacent to or adjacent to one side of the driving electrode TX. m-ELVSS A signal corresponding to the second receiving electrode pattern DRX flows to another second receiving electrode pattern DRX immediately adjacent to or adjacent to the other side of the driving electrode TX.

[0104] The sensing unit of the touch input device according to the embodiment of the present invention subtracts the signal received through the second receiving electrode pattern DRX from the signal received through the first receiving electrode pattern ARX. m-ELVSS Furthermore, even if there is a sudden change in external temperature, it can prevent ghost touch caused by cathode retransmission.

[0105] Meanwhile, the principle by which the LGM noise signal is cancelled out will be described with reference to FIG.

[0106] Referring to FIG. 13, when a touch object T touches a cover layer CV on the touch sensor in an electrically floating state (LGM (Low Ground Mass) state), a noise signal due to the capacitance between the driving electrode TX and the touch object T can flow to the adjacent first and second receiving electrode patterns ARX and DRX through the touch object T rather than leaking to the outside through the touch object T.

[0107] The sensing unit of the touch input device according to the embodiment of the present invention can remove the LGM noise signal by subtracting the signal received through the second receiving electrode pattern DRX from the signal received through the first receiving electrode pattern ARX, thereby accurately sensing the touch position even when the touch object T is in the LGM state.

[0108] 8 again, when the sensing unit subtracts the first signal from the second signal, the active capacitance change included in the second signal, which is an active channel signal, may be somewhat reduced by the dummy capacitance change included in the first signal. However, because the distance between the first driving electrode TX1 and the receiving electrode pattern RX1a is relatively greater than the distance between the first driving electrode TX1 and the receiving electrode pattern RX1b, the dummy capacitance change included in the first signal is relatively smaller than the active capacitance change included in the second signal. Therefore, the subtracted active capacitance change alone is sufficient to detect the presence or absence of a touch and / or the touch position.

[0109] On the other hand, if the drive signal is applied to the 0th drive electrode TX0 rather than the 1st drive electrode TX1, the sensing unit 11 shown in FIG. 8 can cancel all or most of the cathode retransmission noise signal, LGM noise signal, and display noise signal input to the receiving electrode pattern RX1a belonging to the first group and the receiving electrode pattern RX1b belonging to the second group by subtracting the second signal (dummy channel signal) output via the connecting pattern P1b from the first signal (active channel signal) output via the connecting pattern P1a. Therefore, the touch input device including the touch sensor and sensing unit of the present invention has the advantage of being able to remove various noises that may occur during touch sensing, such as cathode retransmission noise signal, display noise, and LGM noise. In particular, it can improve the cathode retransmission phenomenon that may occur in the ELVSS layer of a display panel due to a sudden change in external temperature, thereby preventing the occurrence of ghost touches.

[0110] FIG. 14 is a plan view of a portion of another embodiment of the touch sensor 10 shown in FIG. 8, FIG. 15 is a plan view of the touch sensor shown in FIG. 14 separated by layers, and FIG. 16 is a diagram for explaining the electrical connection of multiple receiving electrodes shown in FIG. 14.

[0111] The touch sensor according to another embodiment of the present invention shown in Figures 14 to 16 differs from the touch sensor according to an embodiment of the present invention shown in Figures 9 to 11 in the plurality of receiving electrodes RX0', RX1', RX2', RX3', and RX4'. In particular, the structure of the plurality of receiving electrode patterns RX1a' included in each of the receiving electrodes RX0', RX1', RX2', RX3', and RX4' is different. The structure of the plurality of receiving electrode patterns RX1a' will be described in detail below, and the remaining configuration will be replaced with the content previously described.

[0112] Each of the receiving electrodes RX0', RX1', RX2', RX3', and RX4' includes a plurality of receiving electrode patterns RX1a' having an opening O' therein and including a dummy pattern DX1a disposed inside the opening O'. Here, the dummy pattern DX1a may have a shape corresponding to the opening O'.

[0113] The dummy pattern DX1a is not electrically connected to the connecting patterns P0a, P0b, P1a, P1b, P2a, P2b, P3a, P3b, P4a, and P4b, and is maintained in an electrically floating state.

[0114] The operation of the touch sensor according to the other embodiment of the present invention shown in Figures 14 to 16 is the same as the operation of the touch sensor according to the embodiment of the present invention shown in Figures 9 to 11. Therefore, the touch input device including the touch sensor according to the other embodiment of the present invention shown in Figures 14 to 16 also has the advantage of being able to remove various noises that may occur during touch sensing, such as cathode retransmission noise signals, display noise, and LGM noise.

[0115] FIG. 17 is a plan view of a portion of yet another embodiment of touch sensor 10 shown in FIG. 8, and FIG. 18 is a plan view of the touch sensor shown in FIG. 17 separated into layers.

[0116] The touch sensor according to another embodiment of the present invention shown in FIGS. 17 and 18 differs from the touch sensor according to an embodiment of the present invention shown in FIGS. 9 to 11 in the plurality of receiving electrodes RX0'', RX1'', RX2'', RX3'', and RX4''. In particular, the difference lies in the layout and shape of the plurality of connecting patterns P0', P1', P2', P3, and P4' included in each receiving electrode RX0'', RX1'', RX2'', RX3'', and RX4''. The layout and shape of each connecting pattern P0', P1', P2', P3, and P4' will be described in detail below, and the remaining configuration will be replaced with the content previously described.

[0117] Each of the concatenated patterns P0', P1', P2', P3, and P4' includes first concatenated patterns P0a', P1a', P2a', P3a', and P4a' and second concatenated patterns P0b', P1b', P2b', P3b', and P4b'.

[0118] Each of the first connecting patterns P0a', P1a', P2a', P3a', and P4a' electrically connects two receiving electrode patterns RX0a, RX1a, RX2a, RX3a, and RX4a of the first group, but is arranged so as not to overlap with the receiving electrode patterns RX0b, RX1b, RX2b, RX3b, and RX4b of the second group arranged between the two receiving electrode patterns. For example, at least a portion of each of the first connecting patterns P0a', P1a', P2a', P3a', and P4a' may be arranged between the receiving electrode patterns RX0b, RX1b, RX2b, RX3b, and RX4b of the second group and the driving electrodes TX0, TX1, TX2, and TX3 arranged immediately adjacent to the receiving electrode patterns RX0b, RX1b, RX2b, RX3b, and RX4b of the second group, so as not to overlap with the receiving electrode patterns RX0b, RX1b, RX2b, RX3b, and RX4b of the second group. On the other hand, the remaining portions may be arranged to overlap with the drive electrodes TX0, TX1, TX2, and TX3.

[0119] Each of the second connecting patterns P0b', P1b', P2b', P3b', and P4b' electrically connects two receiving electrode patterns RX0b, RX1b, RX2b, RX3b, and RX4b of the second group, but is arranged so as not to overlap with the receiving electrode patterns RX0a, RX1a, RX2a, RX3a, and RX4a of the first group arranged between the two receiving electrode patterns. For example, at least a portion of each of the second connecting patterns P0b', P1b', P2b', P3b', and P4b' may be arranged between the receiving electrode patterns RX0a, RX1a, RX2a, RX3a, and RX4a of the first group and the driving electrodes TX0, TX1, TX2, and TX3 arranged immediately adjacent to the receiving electrode patterns RX0a, RX1a, RX2a, RX3a, and RX4a of the first group, so as not to overlap with the receiving electrode patterns RX0a, RX1a, RX2a, RX3a, and RX4a of the first group. On the other hand, the remaining portions may be arranged to overlap with the drive electrodes TX0, TX1, TX2, and TX3.

[0120] The touch sensor according to this further embodiment of the present invention has the advantage of being able to reduce the capacitance value between the first connecting pattern and the second group of receiving electrode patterns, or between the second connecting pattern and the first group of receiving electrode patterns, compared to the touch sensor according to one embodiment of the present invention shown in Figures 9 to 11.

[0121] Meanwhile, although not shown in a separate drawing, the dummy pattern DX1a shown in FIGS. 14 and 15 may also be applied to a touch sensor according to another embodiment of the present invention.

[0122] FIG. 19 is a plan view of a portion of yet another embodiment of touch sensor 10 shown in FIG. 8, and FIG. 20 is a plan view of the touch sensor shown in FIG. 19 separated into layers.

[0123] The touch sensor according to another embodiment of the present invention shown in FIGS. 19 and 20 differs from the touch sensor according to an embodiment of the present invention shown in FIGS. 9 to 11 in the plurality of receiving electrodes RX0''',RX1''',RX2''', and RX3'''. In particular, the differences are in the structure and arrangement of the plurality of receiving electrode patterns RX0a-1, RX0a-2, RX0b-1, RX0b-2, RX1a-1, RX1a-2, RX1b-1, RX1b-2, RX2a-1, RX2a-2, RX2b-1, RX2b-2, RX3a-1, RX3a-2, RX3b-1, and RX3b-2 included in each receiving electrode RX0''',RX1''',RX2''', and RX3''' and the plurality of connection patterns P0'',P1'',P2'', and P3''. Below, the structures and arrangements of the receiving electrode patterns RX0a-1, RX0a-2, RX0b-1, RX0b-2, RX1a-1, RX1a-2, RX1b-1, RX1b-2, RX2a-1, RX2a-2, RX2b-1, RX2b-2, RX3a-1, RX3a-2, RX3b-1, RX3b-2 and the connecting patterns P0'', P1'', P2'', P3'' will be described in detail, and the remaining configurations will be replaced with the contents previously described.

[0124] The multiple receiving electrode patterns RX0a-1, RX0a-2, RX0b-1, RX0b-2, RX1a-1, RX1a-2, RX1b-1, RX1b-2, RX2a-1, RX2a-2, RX2b-1, RX2b-2, RX3a-1, RX3a-2, RX3b-1, RX3b-2 of each receiving electrode RX0''',RX1''',RX2''',RX3''' include a first group of receiving electrode patterns RX0a-1, RX0a-2, RX1a-1, RX1a-2, RX2a-1, RX2a-2, RX3a-1, RX3a-2 and a second group of receiving electrode patterns RX0b-1, RX0b-2, RX1b-1, RX1b-2, RX2b-1, RX2b-2, RX3b-1, RX3b-2 arranged alternately one by one along the second direction. The receiving electrode patterns of the first group RX0a-1, RX0a-2, RX1a-1, RX1a-2, RX2a-1, RX2a-2, RX3a-1, RX3a-2 and the receiving electrode patterns of the second group RX0b-1, RX0b-2, RX1b-1, RX1b-2, RX2b-1, RX2b-2, RX3b-1, RX3b-2 may be electrically isolated from each other.

[0125] The first group of receiving electrode patterns RX0a-1, RX0a-2, RX1a-1, RX1a-2, RX2a-1, RX2a-2, RX3a-1, and RX3a-2 includes first receiving electrode patterns RX0a-1, RX1a-1, RX2a-1, and RX3a-1 and second receiving electrode patterns RX0a-2, RX1a-2, RX2a-2, and RX3a-2. The first receiving electrode patterns RX0a-1, RX1a-1, RX2a-1, and RX3a-1 and the second receiving electrode patterns RX0a-2, RX1a-2, RX2a-2, and RX3a-2 are respectively arranged in two openings O adjacent to each other in the first direction in the driving electrodes TX0 and TX2. One first or second receiving electrode pattern is arranged in the openings located at both ends of the multiple openings O of each driving electrode TX0, TX1, TX2, TX3, and in the remaining openings, the second receiving electrode pattern of the receiving electrode pattern of the first group of one of the multiple receiving electrodes RX0''',RX1''',RX2''',RX3''' and the first receiving electrode pattern of the receiving electrode pattern of the first group of one receiving electrode that is different are arranged together but spaced apart from each other.

[0126] Each of the connection patterns P0'', P1'', P2'', and P3'' includes first connection patterns P0a'', P1a'', P2a'', and P3a'' that electrically connect the receiving electrode patterns RX0a-1, RX0a-2, RX1a-1, RX1a-2, RX2a-1, RX2a-2, RX3a-1, and RX3a-2 of the first group, and second connection patterns P0b'', P1b'', P2b'', and P3b'' that electrically connect the receiving electrode patterns RX0b-1, RX0b-2, RX1b-1, RX1b-2, RX2b-1, RX2b-2, RX3b-1, and RX3b-2 of the second group.

[0127] Each of the first connecting patterns P0a'', P1a'', P2a'', and P3a'' and the second connecting patterns P0b'', P1b'', P2b'', and P3b'' is constructed and arranged to connect two adjacent receiving electrode patterns in each group via the shortest distance. For example, each of the first connecting patterns P0a'', P1a'', P2a'', and P3a'' and the second connecting patterns P0b'', P1b'', P2b'', and P3b'' may have one end connected to one lower end side of one of two adjacent receiving electrode patterns in one group and the other end connected to one upper end side of the remaining receiving electrode pattern. The remaining portion excluding the one and other ends extends in the second direction and is arranged so as not to overlap with the receiving electrode patterns of other groups arranged between the one receiving electrode pattern and the remaining receiving electrode pattern, and so that the largest cross-sectional area overlaps with the opening O of the driving electrode.

[0128] In addition, each of the first connecting patterns P0a'', P1a'', P2a'', and P3a'' further includes a receiving connecting pattern that electrically connects the first receiving electrode pattern and the second receiving electrode pattern of the first group of receiving electrode patterns, and each of the second connecting patterns P0b'', P1b'', P2b'', and P3b'' further includes a receiving connecting pattern that electrically connects the first receiving electrode pattern and the second receiving electrode pattern of the second group of receiving electrode patterns.

[0129] Compared to the touch sensor according to one embodiment of the present invention shown in Figures 9 to 11, the touch sensor according to this further embodiment of the present invention has the advantage that the capacitance value between the first connecting pattern and the receiving electrode patterns of the second group, or between the second connecting pattern and the receiving electrode patterns of the first group, can be reduced, and the resistance value of each connecting pattern can also be reduced.

[0130] Meanwhile, although not shown in a separate drawing, the dummy pattern DX1a shown in FIGS. 14 and 15 may also be applied to a touch sensor according to another embodiment of the present invention.

[0131] The features, structures, effects, etc. described in the above embodiments are included in one embodiment of the present invention and are not necessarily limited to only one embodiment. Furthermore, the features, structures, effects, etc. exemplified in each embodiment can be combined or modified in other embodiments by a person skilled in the art to which the embodiment belongs. Therefore, content related to such combinations and modifications should be interpreted as being included in the scope of the present invention.

[0132] Furthermore, although the above description has focused on the embodiments, these are merely examples and do not limit the present invention. Those skilled in the art will recognize that various modifications and applications other than those illustrated above are possible within the scope of the essential characteristics of the present invention. For example, each component specifically illustrated in the embodiments can be modified and implemented. Differences related to such modifications and applications should be construed as being included within the scope of the present invention as defined in the appended claims.

Claims

1. a display panel including an ELVSS layer; a touch sensor disposed on the ELVSS layer of the display panel; a sensing unit electrically connected to the touch sensor to sense a touch position of a touch object, the touch sensor includes a plurality of drive electrodes and a plurality of receiving electrodes; Each of the receiving electrodes includes a first receiving electrode pattern disposed adjacent to one side of a driving electrode to which a driving signal is applied among the plurality of driving electrodes, and a second receiving electrode pattern disposed adjacent to the other side of the driving electrode, the first receiving electrode pattern is disposed relatively closer to the driving electrode than the second receiving electrode pattern; the sensing unit is configured to subtract a second sensing signal output through the second receiving electrode pattern from a first sensing signal output through the first receiving electrode pattern, thereby canceling out noise signals caused by a cathode retransmission phenomenon of the ELVSS layer included in each of the first sensing signal and the second sensing signal; When the driving signal is applied to another driving electrode among the plurality of driving electrodes, the other driving electrode being arranged more adjacent to the second receiving electrode pattern than the first receiving electrode pattern, the sensing unit subtracts the first sensing signal output through the first receiving electrode pattern from the second sensing signal output through the second receiving electrode pattern to cancel out noise signals due to a cathode retransmission phenomenon of the ELVSS layer included in each of the first sensing signal and the second sensing signal.

2. 2. The touch input device of claim 1, wherein the sensing unit subtracts a second sensing signal output through the second receiving electrode pattern from a first sensing signal output through the first receiving electrode pattern to cancel out an LGM noise signal and a display noise included in the first sensing signal and the second sensing signal, respectively.

3. each of the plurality of drive electrodes has a shape extending in a first direction and a number of openings arranged along the first direction; the first receiving electrode patterns are disposed in a plurality of openings of odd-numbered driving electrodes along a second direction perpendicular to the first direction among the plurality of driving electrodes; the second receiving electrode patterns are disposed in a number of openings of driving electrodes that are even-numbered along the second direction among the plurality of driving electrodes, a first connection pattern electrically connecting the first receiving electrode patterns arranged along the second direction and a second connection pattern electrically connecting the second receiving electrode patterns arranged along the second direction, The touch input device according to claim 1 or 2.

4. 4. The touch input device according to claim 3, wherein a portion of the driving electrode adjacent to a periphery of the first receiving electrode pattern and a portion of another driving electrode adjacent to a periphery of the second receiving electrode pattern are both arranged between the first receiving electrode pattern and the second receiving electrode pattern.

5. 4. The touch input device of claim 3, wherein the other driving electrodes arranged adjacent to the periphery of the second receiving electrode pattern are arranged to be separated from the first receiving electrode pattern by the driving electrodes arranged adjacent to the periphery of the first receiving electrode pattern.

6. The touch sensor is each of the first and second receiving electrode patterns having an opening formed therein; The touch input device of claim 3 , further comprising a dummy pattern disposed within the opening of each of the first and second receiving electrode patterns.

7. The touch input device of claim 3 , wherein the first connecting pattern is arranged so as not to overlap the second receiving electrode pattern arranged between two first receiving electrode patterns connected by the first connecting pattern.

8. each of the plurality of drive electrodes has a shape extending in a first direction and a number of openings arranged along the first direction; the first receiving electrode pattern is disposed in a first opening arranged along a second direction perpendicular to the first direction among the plurality of openings; the second receiving electrode pattern is disposed in a second opening immediately adjacent to the first opening in the first direction; a first connection pattern electrically connecting the first receiving electrode patterns arranged along the second direction and a second connection pattern electrically connecting the second receiving electrode patterns arranged along the second direction, The touch input device according to claim 1 or 2.

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