Indication device

The display device enhances touch electrode arrangement and sensing performance by positioning electrodes under the black matrix and using bridge electrodes, addressing flexibility and stability issues in touch sensing.

JP7778198B2Active Publication Date: 2025-12-01LG DISPLAY CO LTD
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Patent Information

Application Number
JP2024157073
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2024-02-27
Filing Date
2024-09-11
Publication Date
2025-12-01
Estimated Expiration
2044-09-11

AI Technical Summary

Technical Problem

Existing display devices face limitations in arranging touch electrodes and require improvements in touch sensing performance.

Method used

A display device design that includes a substrate with a display area and non-display area, featuring a light-emitting element layer, encapsulation layer, touch sensing layer, color filter layer, gate driver, dams, and panel crack detection unit, with touch electrodes positioned under the black matrix and bridge electrodes to enhance flexibility and prevent arc generation.

Benefits of technology

The design improves touch sensing performance by expanding touch electrode width and using dummy electrodes, ensuring high metal density and stable operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a display apparatus which has an improved degree of freedom in disposition of touch electrodes and enhanced touch sensing performance.SOLUTION: A display apparatus includes a substrate having a display area and a non-display area, a light emitting element layer disposed on the substrate in the display area, an encapsulation layer disposed on the light emitting element layer, a touch sensing layer disposed on the encapsulation layer, a color filter layer disposed on the touch sensing layer, a gate driving unit provided on the substrate in the non-display area, a dam disposed on the substrate in the non-display area and around the display area, and a panel crack detector disposed at an edge portion of the substrate in the non-display area. The dam is located between the gate driving unit and the panel crack detector.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] The present specification relates to a display device, and more particularly to a display device including a touch electrode. [Background technology]

[0002] With the advent of the information age, the field of display devices that visually display electrical information signals has been developing rapidly, and research is ongoing to develop various display devices with improved performance, such as thinner, lighter, and lower power consumption.

[0003] Exemplary display devices include liquid crystal displays (LCDs), electro-wetting displays (EWDs), and organic light emitting displays (OLEDs).

[0004] Among them, electroluminescent displays are self-emitting displays that, unlike LCDs, do not require a separate light source and can be manufactured to be lightweight and thin. Furthermore, electroluminescent displays are advantageous in terms of power consumption due to their low voltage operation, and also have excellent color realization, response speed, viewing angle, and contrast ratio (CR), making them expected to be used in a variety of fields.

[0005] Meanwhile, in order to provide a user with more diverse functions, the touch display device provides a touch sensing function that recognizes a touch by a user's finger or pen touching a display panel and performs input processing based on the recognized touch. Summary of the Invention [Problem to be solved by the invention]

[0006] An object of the present invention is to provide a display device with an increased degree of freedom in arranging touch electrodes.

[0007] Another problem to be solved in an embodiment of the present disclosure is to provide a display device with improved touch sensing performance.

[0008] The problems to be solved in the examples of the present specification are not limited to the problems mentioned above, and other problems not mentioned will be clearly understood by those skilled in the art from the following description. [Means for solving the problem]

[0009] In order to solve the above-mentioned problems, a display device according to one embodiment of the present specification includes a substrate including a display area and a non-display area, a light-emitting element layer disposed on the substrate in the display area, an encapsulation layer disposed on the light-emitting element layer, a touch sensing layer disposed on the encapsulation layer, a color filter layer disposed on the touch sensing layer, a gate driver provided on the substrate in the non-display area, dams disposed on the substrate around the non-display area and the display area, and a panel crack detection unit disposed at an edge portion of the substrate in the non-display area, wherein the dam is located between the gate driver and the panel crack detection unit.

[0010] Further details of the embodiments are included in the detailed description and drawings.

[0011] In a display device according to an embodiment of the present specification, a touch sensing unit is disposed between an encapsulation layer and a color filter layer, and a touch electrode of the touch sensing unit is disposed under a black matrix of the color filter layer, thereby improving the flexibility of the arrangement of the touch electrode.

[0012] In addition, the display device according to an embodiment of the present specification may improve touch sensing performance by expanding the width of the touch electrode line constituting the touch electrode within the width of the black matrix to ensure high metal density.

[0013] In addition, in a display device according to an embodiment of the present specification, a bridge electrode having a relatively low metal density is disposed on the upper part of the touch electrode, thereby preventing arc generation between the inorganic layer covering the touch sensing unit and the touch electrode, thereby stably improving touch sensing performance.

[0014] In addition, a display device according to an embodiment of the present disclosure may improve touch sensing performance by locally disposing a dummy electrode on the touch electrode.

[0015] The effects of the examples of the present specification are not limited to the above examples, and various other effects are included within the present specification. [Brief explanation of the drawings]

[0016] [Figure 1] 1 is a block diagram of a display device according to an embodiment of the present specification. [Figure 2] 1 is a plan view of a display panel according to an embodiment of the present specification; [Figure 3] 1 is an exploded perspective view illustrating an arrangement structure of a touch sensing layer in a display device according to an embodiment of the present disclosure; [Figure 4] 1 is a plan view illustrating a structure of a touch sensing unit disposed on a touch sensing layer according to an embodiment of the present disclosure; [Figure 5] FIG. 4 is a cross-sectional view taken along line II' in FIG. [Figure 6] 1 is a plan view illustrating an overlapping structure of a bank and a touch electrode in a display device according to an embodiment of the present specification; [Figure 7] 1 is a plan view illustrating an overlapping structure of a black matrix and a touch electrode in a display device according to an embodiment of the present specification; [Figure 8] 5 is a cross-sectional view taken along line II-II' of FIG. 4, showing an example of a touch electrode structure of a display device according to an embodiment of the present specification. [Figure 9] 5 is a cross-sectional view taken along line II-II' of FIG. 4, showing another example of a touch electrode structure of a display device according to an embodiment of the present specification. [Figure 10] FIG. 10 is a plan view illustrating an overlapping structure of a touch electrode and a dummy electrode in the display device. DETAILED DESCRIPTION OF THE INVENTION

[0017] The advantages and features of the present invention, and methods for achieving them, will become more apparent from the following detailed description of the embodiments in conjunction with the accompanying drawings. However, the present invention is not limited to the embodiments disclosed below, and may be embodied in various different forms. The present embodiment is provided solely to ensure that the disclosure of the present invention is complete and to fully convey the scope of the embodiments of the present invention to those skilled in the art.

[0018] The shapes, areas, ratios, angles, numbers, etc. disclosed in the drawings for explaining the embodiments of this specification are illustrative only and the embodiments of this specification are not limited to the details shown.

[0019] In describing an embodiment of the present specification, if it is determined that a detailed description of related publicly known technology may unnecessarily obscure the gist of the embodiment of the present specification, the detailed description will be omitted.

[0020] When the terms "including," "having," "made," etc. are used in this specification, other parts may be added unless "only" is used. When an element is expressed in the singular, it also includes the plural unless otherwise expressly stated.

[0021] When interpreting elements, they are interpreted as including a margin of error even if there is no other explicit description.

[0022] When describing a positional relationship, for example, when describing the positional relationship of two parts using "above," "at the top," "below," "next to," etc., one or more other parts may be located between the two parts, as long as "immediately" or "directly" is not used.

[0023] When an element or layer is referred to as "on" another element or layer, it includes the case where the element or layer is directly on top of the other element or layer, or where there are other layers or elements interposed therebetween.

[0024] Furthermore, when referring to "connected" or "coupled," unless "immediately" or "directly" is used, it can also include being "connected" or "coupled" through one or more other components located between the two components.

[0025] Furthermore, although terms such as "first," "second," etc. are used to describe various components, these components are not limited by these terms. These terms are used merely to distinguish one component from another. Therefore, a first component referred to below may be a second component within the technical concept of this specification.

[0026] Like reference numbers refer to like elements throughout this specification.

[0027] The area and thickness of each structure shown in the drawings are shown for convenience of explanation, and the examples of this specification are not necessarily limited to the area and thickness of the structures shown.

[0028] The features of the various embodiments of this specification may be partially or wholly combined or combined with each other, may be technically interlocked and driven in various ways, and each embodiment may be implemented independently of the other or may be implemented together in a related relationship.

[0029] FIG. 1 is a block diagram of a display device according to an embodiment of the present specification.

[0030] FIG. 2 is a plan view of a display panel according to an embodiment of the present specification.

[0031] 1 and 2, a display device 100 according to an embodiment of the present disclosure may include an image processor 151, a timing controller 152, a data driver 153, a gate driver 154, and a display panel DP.

[0032] The image processor 151 outputs a driving signal including a data signal DATA and a data enable signal DE supplied from the outside. In addition to the data enable signal DE, the image processor 151 can output a driving signal including one or more of a vertical synchronization signal, a horizontal synchronization signal, and a clock signal.

[0033] The timing controller 152 receives drive signals including a data enable signal DE and the like and a data signal DATA from the video processing unit 151. Based on the drive signals, the timing controller 152 outputs a gate timing control signal GDC for controlling the operation timing of the gate driver 154. The timing controller 152 outputs the data signal DATA supplied from the video processing unit 151 and a data timing control signal DDC for controlling the operation timing of the data driver 153.

[0034] The data driver 153 samples and latches the data signal DATA supplied from the timing controller 152 in response to the data timing control signal DDC supplied from the timing controller 152, converts it into a gamma reference voltage, and outputs it. The data driver 153 also outputs the data signal through the data lines DL1 to DLn.

[0035] The gate driver 154 outputs a gate signal in response to a gate timing control signal GDC supplied from the timing controller 152, and at this time, can output the gate signal by shifting the level of the gate voltage. Furthermore, the gate driver 154 outputs the gate signal through the gate lines GL1 to GLm.

[0036] In addition, the display device 100 according to one embodiment of the present specification may further include a touch sensing unit including a plurality of touch electrodes to provide a touch sensing function, and a touch sensing circuit that supplies a touch driving signal to the touch sensing unit and detects a touch sensing signal from the touch sensing unit to sense whether or not a user has touched the display device 100 and the touch position (or coordinates).

[0037] For example, the touch sensing circuit may include a touch drive circuit that supplies a touch drive signal to the touch sensing unit and detects the touch sensing signal from the touch sensing unit, a touch controller that senses whether or not a user touches the touch panel and / or the touch position based on the touch sensing signal detected by the touch drive circuit, etc. The touch drive circuit and the touch controller may be implemented as separate components or, in some cases, may be integrated into one component.

[0038] Meanwhile, each of the data driver 153, the gate driver 154, and the touch driving circuit may be implemented as one or more integrated circuits, and may be implemented as a COG (Chip On Glass) type, a COF (Chip On Film) type, a TCP (Tape Carrier Package) type, etc. in terms of electrical connection with the display panel DP.

[0039] In addition, the timing controller 152, the data driver 153, and the gate driver 154 for driving the display, and the circuit configuration for touch sensing may each be embodied as one or more individual components. In some cases, one or more of the configurations 152, 153, and 154 for driving the display and one or more of the circuit configurations for touch sensing may be functionally integrated and embodied as one or more components. For example, the data driver 153 and the touch driving circuit may be integrated and embodied as one or more integrated circuit chips. When the data driver 153 and the touch driving circuit are integrated and embodied as two or more integrated circuit chips, each of the two or more integrated circuit chips may have a data driving function and a touch driving function.

[0040] The display panel DP includes a plurality of pixels P, and the plurality of pixels P emit light in response to data signals and gate signals supplied from the data driver 153 and gate driver 154, respectively, to display an image.

[0041] One pixel P may be composed of a plurality of sub-pixels SP. For example, one pixel P may include three or more sub-pixels SP that emit light of wavelengths that realize different hues. For example, in the display device 100 according to an embodiment of the present specification, one pixel P may include sub-pixels SP that emit red, green, and blue. However, the number of sub-pixels SP included in one pixel P is not limited, and for example, one pixel P may further include a sub-pixel SP that emits white in addition to the sub-pixels SP that emit red, green, and blue.

[0042] On the display panel DP, a plurality of gate lines GL1 to GLm extending in a first direction and a plurality of data lines DL1 to DLn extending in a second direction different from the first direction are arranged to intersect with each other. Subpixels SP are defined at each point on the display panel DP where the plurality of gate lines and the data lines intersect with each other.

[0043] Referring to FIG. 2, the display panel DP includes a substrate 110 .

[0044] The substrate 110 is configured to support various components included in the display device 100. The substrate 110 may be made of an insulating material. The substrate 110 may also be made of a transparent material. The substrate 110 may also be a rigid substrate or a flexible substrate that allows bending, folding, rolling, etc. The substrate 110 may also be made of glass or a flexible plastic material. For example, if the substrate 110 is made of polyimide (PI), which is a plastic material, the manufacturing process of the display device 100 may be performed in a state where a support substrate made of glass is disposed below the substrate 110, and the support substrate may be released after the manufacturing process of the display device 100 is completed.

[0045] 2, the substrate 110 of the display panel DP may be defined by a display area DA and a non-display area NA that is located on the periphery of the display area DA and does not include a plurality of pixels P. The non-display area NA may be adjacent to the display area DA and located outside the display area DA.

[0046] The display area DA of the substrate 110 may be an area where pixels P are arranged and an image is displayed. A plurality of sub-pixels SP1, SP2, and SP3 may be arranged in the display area DA, and the plurality of sub-pixels SP1, SP2, and SP3 may constitute one pixel P.

[0047] The non-display area NA of the substrate 110 may be defined by a peripheral area surrounding the periphery of the display area DA, a bending area BA extending from one side of the peripheral area and bending it, and a pad area PA extending from the bending area BA. Figure 2 shows the state of the substrate 110 before bending.

[0048] The non-display area NA of the substrate 110 is an area where various wirings, circuits, etc. for driving the sub-pixels SP1, SP2, and SP3 arranged in the display area DA are arranged. Since the non-display area NA is not an area where an image is displayed, it does not need to be viewed from the front of the display panel DP. Therefore, a portion of the non-display area NA of the substrate 110 may be bent toward the rear surface of the display panel DP. For example, one side edge of the substrate 110 may be bent toward the rear surface of the display panel DP with a predetermined curvature. In this case, the pad area PA may be positioned so as to overlap the display area DA on the rear surface of the display panel DP. This allows the non-display area NA to be reduced while still ensuring an area for wirings and driving circuits.

[0049] A pad unit 114 may be disposed in the pad area PA of the substrate 110. The pad unit 114 may be a metal pattern to which an external module, such as a flexible printed circuit board (FPCB) or a chip on film (COF), is bonded. Although the pad unit 114 is shown to be disposed on one side of the non-display area NA in FIG. 2, the shape and location of the pad unit 114 are not limited thereto.

[0050] In addition, the connecting wires 116 may be disposed in a portion of the non-display area NA of the substrate 110. For example, the connecting wires 116 may be disposed in a peripheral area of ​​the substrate 110, adjacent to the bending area BA.

[0051] The connecting wires 116 can transmit signals (e.g., voltages) from an external module bonded to the pad unit 114 to a circuit unit such as a gate driver 112 included in the display area DA or the gate driver 154. The gate driver 112 provides gate signals to thin film transistors of pixel driving circuits and includes various gate driving circuits. In the display device 100 according to an embodiment of the present disclosure, the gate driver 112 may be a GIP (Gate-In-Panel) in which the gate driving circuits are directly formed on the substrate 110.

[0052] Various signals and voltages, such as gate signals, data signals, high potential voltages, and low potential voltages, may be transmitted through the connection wires 116. The connection wires 116 may be classified as power connection wires and / or signal connection wires depending on the voltages and / or signals to be transmitted. The power connection wires may transmit voltages supplied from an external module to the display area DA. The power connection wires may be connected to, but are not limited to, a low potential voltage wire VSS, a high potential voltage wire VDD, and a low gate voltage wire and / or a high gate voltage wire included in the gate driver 112. The signal connection wires may transmit signals for displaying images supplied from an external module to the display area DA. The signal connection wires may be connected to, but are not limited to, gate wires and / or data wires.

[0053] Furthermore, a dam 117 may be disposed in the non-display area NA of the substrate 110 so as to surround all or part of the display area DA. In this case, the dam 117 may be disposed adjacent to the display area DA and outside the display area DA. The dam 117 may be disposed along the periphery of the display area DA to control the flow of a layer containing an organic material in a sealing layer disposed on the light-emitting element. The number of dams 117 may be one or more.

[0054] A crack detection wiring (Panel Crack Detector) 118 may also be arranged in a region of the non-display region NA of the substrate 110. The crack detection wiring 118 may be arranged between an end (or terminal end) of the substrate 110 and the dam 117. The crack detection wiring 118 may also be arranged below the dam 117 so as to overlap at least a portion with the dam 117. The crack detection wiring 118 is arranged on the periphery of the display device 100 and can detect defects such as cracks that may occur in the periphery.

[0055] FIG. 3 is an exploded perspective view illustrating an arrangement structure of a touch sensing layer in a display device according to an embodiment of the present disclosure.

[0056] 3 , a display device 100 according to an embodiment of the present specification includes a substrate layer SUB in which a plurality of subpixels SP are arranged in a display area DA of a substrate 110, and a touch sensing layer TSL disposed on the substrate layer SUB and including a plurality of touch electrodes TE. The display device 100 also includes a color filter layer CFL disposed on the touch sensing layer TSL and including a plurality of color filters and a black matrix. In this case, the black matrix may be located between the color filters on the same layer as the plurality of color filters.

[0057] The display area DA of the substrate layer SUB is an area where a plurality of pixels P that realize images are arranged, and each pixel P may include a plurality of sub-pixels SP each including a light emitting element 200 and a pixel driving circuit that controls the amount of current flowing through the light emitting element 200. The pixel driving circuit may include a plurality of driving thin film transistors (TFTs).

[0058] In one embodiment of the present specification, the display device 100 will be described as an organic light emitting display device, but the present invention is not limited thereto. For example, when the display device 100 is an organic light emitting display device, the subpixel may include a light emitting element 200 including an anode electrode, an emission layer on the anode electrode, and a cathode electrode on the emission layer. In this case, the light emitting element 200 may include an organic emission layer as an emission layer, and may further include a hole transport layer, a hole injection layer, an electron injection layer, and an electron transport layer together with the organic emission layer. Meanwhile, as another example, when the display device 100 is a liquid crystal display device, it may be configured to include a liquid crystal layer as a display unit.

[0059] Referring to FIG. 3, the pixel driving circuit of the subpixel SP according to one embodiment of the present specification may include a driving transistor DT, a switching transistor ST, a capacitor Cst, a gate line GL, a data line DL, and lines connected to power supplies VDD and VSS for driving the pixel.

[0060] The light emitting device 200 can be operated to emit light by a driving current generated by the driving transistor DT. The switching transistor ST can perform a switching operation such that a data signal supplied through a data line DL is stored as a data voltage in the capacitor Cst in response to a gate signal supplied through a gate line GL. The driving transistor DT can operate such that a constant driving current flows between the high potential power supply VDD and the low potential power supply VSS in response to the data voltage stored in the capacitor Cst.

[0061] In the above, in the display device 100 according to one embodiment of this specification, it has been described as an example that the subpixel SP is configured in a 2T (Transistor) 1C (Capacitor) structure including one switching transistor ST, one driving transistor DT, and one capacitor Cst.

[0062] As another example, the subpixel may further include a compensation circuit 135, as shown in FIG.

[0063] The compensation circuit 135 is a circuit for compensating for the threshold voltage of the driving transistor DT, and may include one or more thin film transistors and capacitors. The configurations and structures of the compensation thin film transistors and the compensation capacitors are not limited and may vary depending on the compensation method. For example, when the compensation circuit 135 is added to a subpixel, the compensation circuit 135 may have various structures such as 3T1C, 4T2C, 5T2C, 6T1C, 6T2C, 7T1C, 7T2C, etc.

[0064] Hereinafter, a touch sensing unit of the display device 100 according to an embodiment of the present disclosure will be described in detail with reference to FIGS.

[0065] Fig. 4 is a plan view illustrating a structure of a touch sensing unit disposed in a touch sensing layer according to an embodiment of the present disclosure. Fig. 5 is a cross-sectional view taken along line II' in Fig. 3. Fig. 6 is a plan view illustrating an overlapping structure of a bank and a touch electrode in a display device according to an embodiment of the present disclosure. Fig. 7 is a plan view illustrating an overlapping structure of a black matrix and a touch electrode in a display device according to an embodiment of the present disclosure.

[0066] 4 and 5, the touch sensing layer TSL is disposed on the encapsulation layer ENCAP, and a touch sensing unit is disposed on the touch sensing layer TSL. The touch sensing unit includes a plurality of touch electrodes TE and bridge electrodes BE1 and BE2 that electrically connect unit electrodes of the plurality of touch electrodes TE.

[0067] 4, the touch sensing unit may include a plurality of first touch electrodes TE1 extending in a first direction and a plurality of second touch electrodes TE2 extending in a second direction intersecting the first direction. In this case, a plurality of first touch routing lines connected to the plurality of first touch electrodes TE1, a plurality of second touch routing lines connected to the plurality of second touch electrodes TE2, and a plurality of touch pads connected to the plurality of first and second touch routing lines, respectively, may be further arranged on the substrate 110.

[0068] Each of the plurality of first touch electrodes TE1 and the plurality of second touch electrodes TE2 may include a plurality of unit electrodes, for example, each of the first touch electrode TE1 and the second touch electrode TE2 may include a plurality of unit electrodes patterned in a mesh shape.

[0069] Although FIG. 4 illustrates the first touch electrode TE1 and the second touch electrode TE2 as a continuous unit electrode formed in a diamond-shaped mesh pattern, the unit electrode may have various shapes, such as a triangle, a rectangle, a diamond, or a polygon. The mesh-patterned unit electrodes of the first touch electrode TE1 and the second touch electrode TE2 may include a plurality of first touch electrode lines TEL1 and a plurality of second touch electrode lines TEL2 surrounding an opening OA_T. The first touch electrode lines TEL1 and the second touch electrode lines TEL2 essentially correspond to touch electrodes, and are portions where a touch driving signal is applied or a touch sensing signal is sensed. Each of the at least one opening OA_T in the first touch electrode TE1 may correspond to a light-emitting region of a subpixel SP. That is, the plurality of openings OA_T serve as paths through which light emitted from the subpixels SP disposed thereunder exits. While FIG. 4 illustrates an example of the structure of a unit electrode of the first touch electrode TE1, the second touch electrode TE2 may also have the same structure.

[0070] The display device 100 according to one embodiment of the present specification can sense a touch using a capacitance-based touch sensing method, a mutual-capacitance-based touch sensing method, or a self-capacitance-based touch sensing method.

[0071] In the case of a mutual-capacitance-based touch sensing method, the touch electrodes TE may be classified into drive touch electrodes to which a touch drive signal is applied and sensing touch electrodes to which the touch sensing signal is detected and which form capacitance with the drive touch electrodes. For example, the first touch electrode TE1 may be a sensing touch electrode to which a touch sensing signal is detected, and in this case, the second touch electrode TE2 may be a drive touch electrode to which a touch drive signal is applied, but is not limited thereto. That is, the first touch electrode TE1 may be a drive touch electrode and the second touch electrode TE2 may be a sensing touch electrode.

[0072] In a self-capacitance-based touch sensing method, the plurality of touch electrodes TE serve as both driving touch electrodes and sensing touch electrodes. That is, the touch sensing circuit applies a touch driving signal to one or more touch electrodes TE, detects a touch sensing signal through the touch electrode TE to which the touch driving signal is applied, and determines a change in capacitance between a pointer such as a finger or pen and the touch electrode TE based on the detected touch sensing signal to sense the presence or absence of a touch and / or touch coordinates. In a self-capacitance-based touch sensing method, there is no distinction between driving touch electrodes and sensing touch electrodes. For example, the plurality of first touch electrodes TE1 and the plurality of second touch electrodes TE2 can each serve as both driving touch electrodes and sensing touch electrodes.

[0073] 4 to 6, the touch electrode line TEL1 of the first touch electrode TE1 may be located on a bank 400 disposed in a non-light-emitting region between the subpixels SP. As shown in FIG. 6, the bank 400 includes a plurality of openings OA_BK corresponding to the light-emitting regions of the subpixels SP. Thus, the openings OA_T of the touch electrode TE and the openings OA_BK of the bank 400 may overlap each other.

[0074] 4 to 7 , the touch electrode line TEL1 of the first touch electrode TE1 may be located under a black matrix 710 disposed in a non-light-emitting region between the subpixels SP. As shown in FIG. 7 , the black matrix 710 includes a plurality of openings OA_BM corresponding to the light-emitting regions of the subpixels SP. Thus, the openings OA_T of the first touch electrode TE1, the openings OA_BK of the bank 400, and the openings OA_BM of the black matrix 710 may overlap with each other. In the embodiment of the present specification, the subpixels SP are located in the openings OA_T of the touch electrode TE in a plan view. However, as shown in FIG. 6 , the subpixels SP may not be present in at least a portion of the openings OA_T in a plan view.

[0075] The subpixels SP may have different pixel structures. For example, the blue subpixels, the green subpixels, and the red subpixels may have different pixel structures. Because the subpixels SP have different pixel structures, the openings OA_BM of the black matrix 710 and the openings OA_BK of the bank 400 may have different patterns depending on the light-emitting areas of the blue subpixels, the green subpixels, and the red subpixels, but are not limited thereto.

[0076] Although an example of the structure of the unit electrode of the first touch electrode TE1 has been described above, the second touch electrode TE2 may also have the same structure.

[0077] 4, the touch sensing unit includes a first bridge electrode BE1 electrically connecting unit electrodes of the first touch electrode TE1 and a second bridge electrode BE2 connecting unit electrodes of the second touch electrode TE2. The first touch electrode TE1 and the first bridge electrode BE1 are disposed on different layers, with the first bridge electrode BE1 disposed on an upper layer of the first touch electrode TE1. However, the position of the first bridge electrode BE1 is not limited thereto. According to other embodiments of the present disclosure, the first bridge electrode BE1 may be disposed on a lower layer of the first touch electrode TE1. Meanwhile, the second touch electrode TE2 and the second bridge electrode BE2 may be disposed on the same layer. For example, the second touch electrode TE2 and the second bridge electrode BE2 may be integrally patterned, and a portion connecting an end of one unit electrode of the second touch electrode TE2 to an end of another unit electrode of the second touch electrode TE2 may be the second bridge electrode. However, the position of the second bridge electrode BE2 is not limited to this, and according to other embodiments of the present invention, the first touch electrode TE1 and the first bridge electrode BE1 may be located in the same layer and patterned together, and the second touch electrode TE2 and the second bridge electrode BE2 may be located in different layers, and the second bridge electrode BE2 may be disposed above or below the second touch electrode TE2.

[0078] The stacked structure of the sub-pixels SP, the touch sensing layer TSL, and the color filter layer CFL arranged in the display area DA on the substrate 110 will be described in more detail below with reference to FIG.

[0079] 5, in the display device 100 according to an embodiment of the present specification, a substrate layer SUB, a transistor layer TRL on the substrate layer SUB, a planarization layer PLN on the transistor layer TRL, a light emitting element layer EDL on the planarization layer PLN, an encapsulation layer ENCAP on the light emitting element layer EDL, a touch sensing layer TSL on the encapsulation layer ENCAP, and a color filter layer CFL on the touch sensing layer TSL may be sequentially stacked. In this case, a protective layer, an organic layer, a polarizing layer, a cover layer, etc. may be additionally disposed on the color filter layer CFL of the display device 100.

[0080] In Figure 5, two subpixels SP arranged in the display area DA that emit light of different wavelengths are shown as an example, but subpixels that emit light of other wavelengths may also have the same overall structure, except that the light output by the light-emitting stack that constitutes the light-emitting element 200 is different.

[0081] The substrate layer SUB includes a substrate 110 that supports and protects the components of the display device disposed thereon.

[0082] For example, if the substrate 110 is made of polyimide (PI), moisture may penetrate the substrate 110 made of polyimide (PI) and reach the thin film transistor or light emitting element, thereby degrading the performance of the display device 100. To prevent such degradation of the performance of the display device 100 due to moisture penetration, the display device 100 according to an embodiment of the present specification may employ a double polyimide (PI) structure as the substrate 110.

[0083] For example, the substrate 110 may include a first substrate and a second substrate, each made of polyimide (PI), and an inorganic insulating layer formed between the first and second substrates. The inorganic insulating layer may be a single layer of silicon nitride (SiNx) or silicon oxide (SiOx), or multiple layers thereof. For example, the inorganic insulating layer may be made of silicon dioxide (SiO2), but is not limited thereto, and may be formed as a double layer of silicon dioxide (SiO2) and silicon nitride (SiNx). The inorganic insulating layer prevents moisture from penetrating into the upper part of the second substrate. Furthermore, if an electric charge is charged in the first substrate, the inorganic insulating layer may prevent the charge from affecting the thin film transistor 300 thereon through the second substrate. In this way, blocking the electric charge charged in the lower polyimide (PI) through the inorganic insulating layer improves product reliability and omits the process of disposing a separate metal layer for charge blocking, thereby simplifying the process and reducing production costs.

[0084] The substrate layer SUB may also include a buffer layer 120 disposed on the substrate 110 .

[0085] For example, the buffer layer 120 may include a multi-buffer layer disposed on the substrate 110 and an active buffer layer disposed on the multi-buffer layer. A metal layer capable of serving as a light shield may be further disposed between the multi-buffer layer and the active buffer layer. Such a metal layer may also be referred to as a light-shielding layer.

[0086] The transistor layer TRL may include thin film transistors including a driving transistor Td and at least one switching transistor Ts, various patterns for forming at least one capacitor, various insulating films, and various metal patterns.

[0087] 5, a thin film transistor 300 may be disposed on the buffer layer 120, and the thin film transistor 300 may include an active layer 310, a gate electrode 330, a source electrode 350, and a drain electrode 370. In this regard, although the drain electrode 370 of the thin film transistor 300 is shown in FIG. 5 as being electrically connected to the anode electrode (or first electrode) 210 of the light emitting element 200 described below, this is not limiting. That is, depending on the design of the pixel driving circuit, the source electrode 350 may become the drain electrode, and the drain electrode 370 may become the source electrode.

[0088] The active layer 310 of the thin film transistor 300 may include a channel region where a channel is formed when the thin film transistor 300 is operated, and source and drain regions on both sides of the channel region. The source region of the active layer 310 is connected to a source electrode 350, and the drain region is connected to a drain electrode 370. For example, the source and drain regions may be formed by ion doping (impurity doping) the active layer 310. In this case, the source and drain regions may be formed by ion doping a polysilicon material, and the channel region may refer to, but is not limited to, the remaining portion of the polysilicon material that is not ion doped.

[0089] A gate insulating layer 130 is disposed on the active layer 310. The gate insulating layer 130 may be disposed over the entire substrate 110 including the active layer 310. For example, the gate insulating layer 130 may be formed of a single layer of silicon nitride (SiNx) or silicon oxide (SiOx), or multiple layers thereof. Contact holes may be formed in the gate insulating layer 130 to connect the source electrode 350 and the drain electrode 370 of the thin film transistor 300 to the source region and the drain region of the active layer 310 of the thin film transistor 300, respectively.

[0090] The gate electrode 330 of the thin film transistor 300 is disposed on the gate insulating layer 130. For example, the gate electrode 330 may be formed as a single layer or multiple layers made of any one of molybdenum (Mo), copper (Cu), titanium (Ti), aluminum (Al), chromium (Cr), gold (Au), nickel (Ni), and neodymium (Nd), or an alloy thereof. The gate electrode 330 may be formed on the gate insulating layer 130 so as to overlap a channel region of the active layer 310 of the thin film transistor 300.

[0091] An interlayer insulating layer 140 is disposed on the gate electrode 330. For example, the interlayer insulating layer 140 may be composed of a single layer of silicon nitride (SiNx) or silicon oxide (SiOx), or multiple layers thereof. Contact holes may be formed in the interlayer insulating layer 140 to expose the source and drain regions of the active layer 310 of the thin film transistor 300.

[0092] A first inorganic layer 150 may be disposed on the interlayer insulating layer 140. The first inorganic layer 150 may be a passivation layer for protecting the thin film transistor 300, or may be omitted. For example, the first inorganic layer 150 may be made of silicon oxide (SiOx), silicon nitride (SiNx), or a combination thereof.

[0093] A planarization layer 160 composed of at least one layer is disposed on the planarization layer PLN. The planarization layer 160 may be an organic layer for planarizing and protecting the upper surface of the thin film transistor 300. For example, the planarization layer 160 may be formed of an organic material such as an acrylic resin, an epoxy resin, a phenolic resin, a polyamide resin, or a polyimide resin.

[0094] The light-emitting element layer EDL is provided with a light-emitting element 200 including an anode electrode 210, a light-emitting layer 220, and a cathode electrode (or second electrode) 230. The light-emitting element layer EDL is also provided with a bank 400 that partitions the light-emitting regions of a plurality of sub-pixels SP. For example, referring to FIG. 6, the bank 400 may include an opening OA_BK that exposes a portion corresponding to the light-emitting region of the sub-pixel SP.

[0095] The anode electrode 210 of the light emitting element 200 is disposed on the planarization layer 160. The anode electrode 210 may be formed of a metallic material and may be electrically connected to the thin film transistor 300 through a contact hole formed in the planarization layer 160. For example, if the display device 100 according to an embodiment of the present disclosure is a top emission type, light emitted from the light emitting element 200 is emitted toward the top of the substrate 110. In this case, the anode electrode 210 may further include a transparent conductive layer and a reflective layer on the transparent conductive layer. For example, the transparent conductive layer may be made of a transparent conductive oxide such as ITO or IZO, and the reflective layer may be made of silver (Ag), aluminum (Al), gold (Au), molybdenum (Mo), tungsten (W), chromium (Cr), or an alloy thereof.

[0096] The bank 400 is disposed to cover both ends of the anode electrode 210, and a portion of the anode electrode 210 may be exposed through an opening OA_BK in the bank 400. For example, the bank 400 may be made of an inorganic insulating material such as silicon nitride (SiNx) or silicon oxide (SiOx), or an organic insulating material such as a benzocyclobutene-based resin, an acrylic-based resin, or an imide-based resin, but is not limited thereto. A spacer may be further disposed on the bank 400.

[0097] The light-emitting layer 220 of the light-emitting element 200 is disposed in and around the opening OA_BK of the bank 400. As a result, the light-emitting layer 220 can be disposed on the anode electrode 210 exposed through the opening OA_BK of the bank 400. For example, the light-emitting layer 220 can include multiple organic films. A cathode electrode 230 is disposed on the light-emitting layer 220 of the light-emitting element 200.

[0098] An encapsulation layer 500 having a single layer structure or a multi-layer structure is disposed on the encapsulation layer ENCAP on the light emitting element layer EDL. For example, as shown in FIG. 5, the encapsulation layer 500 may include a first encapsulation layer 510, a second encapsulation layer 520, and a third encapsulation layer 530. Here, the first encapsulation layer 510 and the third encapsulation layer 530 may be made of inorganic films, and the second encapsulation layer 520 may be made of an organic film. Among the first encapsulation layer 510, the second encapsulation layer 520, and the third encapsulation layer 530, the second encapsulation layer 520 may be the thickest and may function as a planarization layer.

[0099] The first encapsulating layer 510 may be disposed closest to the light emitting element 200. That is, the first encapsulating layer 510 may be disposed on the cathode electrode 230 of the light emitting element layer EDL. The first encapsulating layer 510 may be formed of an inorganic insulating material that can be deposited at low temperatures. For example, the first encapsulating layer 510 may be made of silicon nitride (SiNx), silicon oxide (SiOx), silicon oxynitride (SiON), aluminum oxide (Al2O3), or the like. Because the first encapsulating layer 510 is deposited in a low-temperature atmosphere, it is possible to prevent damage to the light emitting layer 220, which includes organic materials that are vulnerable to high-temperature atmospheres, during the deposition process.

[0100] The second encapsulation layer 520 may be formed to have a smaller area than the first encapsulation layer 510. In this case, the second encapsulation layer 520 may be formed to expose both ends of the first encapsulation layer 510. The second encapsulation layer 520 may serve as a buffer to relieve stress between layers due to warping of the flexible display device and to enhance planarization performance. For example, the second encapsulation layer 520 may be made of an organic insulating material such as acrylic resin, epoxy resin, polyimide, polyethylene, or silicon oxycarbonate (SiOC). For example, the second encapsulation layer 520 may be formed using an inkjet method, but is not limited thereto.

[0101] The third encapsulation layer 530 may be formed on the substrate 110 on which the second encapsulation layer 520 is formed, to cover the top and side surfaces of the second encapsulation layer 520 and the first encapsulation layer 510. In this case, the third encapsulation layer 530 may minimize or block external moisture or oxygen from penetrating into the first encapsulation layer 510 and the second encapsulation layer 520. For example, the third encapsulation layer 530 may be made of an inorganic insulating material such as silicon nitride (SiNx), silicon oxide (SiOx), silicon oxynitride (SiON), or aluminum oxide (Al2O3). As shown in FIG. 2, at least one dam 117 may be disposed in the non-display area NA to block the flow of the second encapsulation layer 520 of the encapsulation layer 500.

[0102] A touch sensing unit is disposed on the touch sensing layer TSL above the encapsulation layer ENCAP. The touch sensing unit includes a plurality of touch electrodes and a plurality of bridge electrodes. As previously described with reference to FIG. 4, the touch sensing unit includes a plurality of first touch electrodes TE1 extending in a first direction and a plurality of second touch electrodes TE2 extending in a second direction intersecting the first direction. Each of the first touch electrodes TE1 and the second touch electrodes TE2 may include a plurality of unit electrodes. For example, each of the first touch electrode TE1 and the second touch electrode TE2 may include a plurality of unit electrodes patterned in a mesh shape. The touch sensing unit also includes a first bridge electrode BE1 electrically connecting the unit electrodes of the first touch electrode TE1 and a second bridge electrode BE2 electrically connecting the unit electrodes of the second touch electrode TE2. The first touch electrode TE1 and the first bridge electrode BE1 are disposed on different layers, with the first bridge electrode BE1 disposed on an upper layer of the first touch electrode TE1. On the other hand, the second touch electrode TE2 and the second bridge electrode BE2 may be disposed in the same layer.

[0103] 5, a touch insulating layer 600 including an insulating film for disposing a touch sensing unit is disposed on an encapsulation layer 500. In this case, a touch buffer layer 610 is disposed on a third encapsulation layer 530, and a first touch electrode TE1 is disposed on the touch buffer layer 610. A second touch electrode TE2 may also be disposed on the touch buffer layer 610.

[0104] The touch buffer layer 610 can prevent damage to the light emitting layer 220, which includes a material that is vulnerable to chemicals or moisture. When forming the touch sensing layer TSL, chemicals (such as a developer or an etchant) used in the process or moisture from the outside can be generated. Therefore, by disposing the touch buffer layer 610 and disposing the touch sensing unit thereon, it is possible to prevent chemicals or moisture from penetrating into the light emitting layer 220, which includes an organic material, during the manufacturing process of the touch sensing unit. In addition, the touch buffer layer 610 can prevent damage to the light emitting layer 220, which includes an organic material that is vulnerable to high temperatures. In this case, the touch buffer layer 610 can be formed at a low temperature (e.g., 100°C) or less and can be formed of an organic insulating material having a low dielectric constant of 1 to 3. For example, the touch buffer layer 610 can be formed of an acrylic-based, epoxy-based, or siloxane-based material. In this way, the touch buffer layer 610 is made of an organic insulating material, which can prevent damage to the encapsulation layer ENCAP due to warping of the flexible display device, and thereby can also prevent cracking of the multiple touch electrodes TE1, TE2 and bridge electrodes BE1, BE2 arranged on the encapsulation layer ENCAP.

[0105] A touch interlayer insulating layer 620 is disposed on the first touch electrode TE1 and the touch buffer layer 610, and a first bridge electrode BE1 is disposed on the touch interlayer insulating layer 620. The first touch electrode TE1 and the first bridge electrode BE1 are insulated by the touch interlayer insulating layer 620. That is, to prevent the plurality of touch electrodes arranged in the first and second directions from being short-circuited to each other in an area where they intersect, the plurality of first touch electrodes TE1 extending in the first direction may be electrically connected to each other through the bridge electrode BE1 disposed in the upper layer. In this case, a contact hole for electrically connecting the first touch electrode TE1 and the first bridge electrode BE1 may be formed in the touch interlayer insulating layer 620. The touch interlayer insulating layer 620 may be an organic film made of an organic material, but the material constituting the touch interlayer insulating layer 620 is not limited thereto. For example, the touch interlayer insulating layer 620 may be an inorganic film made of an inorganic material.

[0106] A second inorganic layer 630 covering the touch sensing unit is disposed on the first bridge electrode BE1 and the touch interlayer insulating layer 620. The second inorganic layer 630 prevents damage to the electrodes of the touch sensing unit from chemicals (such as a developer) or moisture used in the processes for the upper layers.

[0107] Meanwhile, the display device 100 according to an embodiment of the present disclosure may improve the touch sensing performance of the touch electrodes TE1 and TE2 by increasing the metal density of the touch electrodes. Specifically, the touch sensing performance of the touch sensing unit may be improved by increasing the metal density of the touch electrodes, such as by increasing the width of the touch electrode lines of the touch electrodes TE1 and TE2 or by increasing the area of ​​the touch electrodes TE1 and TE2 themselves. For example, at least some of the touch electrode lines TEL1 of the first touch electrodes TE1 and the touch electrode lines of the second touch electrodes TE2 may have the same or approximately the same width as a gap between adjacent openings among the openings of the black matrix 710. In addition, the sum of the width of the bridge electrode BE1 and the width of the touch electrode line of the unit electrode of the touch electrode TE1 connected through the corresponding bridge electrode BE1 may be the same or approximately the same width as a gap between adjacent openings among the openings of the black matrix 710. In addition, the sum of the width of the bridge electrode BE2 and the width of the touch electrode line of the unit electrode of the touch electrode TE2 connected through the corresponding bridge electrode BE2 may be the same as or approximately the same as the width between adjacent or some other openings among the plurality of openings in the black matrix 710. As a result, the plurality of touch electrodes TE1, TE2 and the bridge electrodes BE1, BE2 are all disposed below the black matrix 710 and are not visible from the outside, and the metal density of the touch electrodes can be increased, thereby improving touch sensing performance.

[0108] As such, the display device 100 according to an embodiment of the present disclosure increases the metal density of the touch electrodes, thereby increasing the area overlapping between the user's touch input means (e.g., a finger or a pen) and the touch electrodes, thereby increasing the capacitance between the user's touch input means and the touch electrodes, thereby improving touch sensing performance. While only the first touch electrode TE1 and the first bridge electrode BE1 are shown in FIG. 5 to illustrate the structure of the touch sensing unit including the touch electrode and the bridge electrode disposed on different layers, the second touch electrode TE2 may also have an increased metal density, like the first touch electrode TE1.

[0109] 5, a second inorganic layer 630 that shields the touch sensing unit is disposed on the front side of the touch sensing layer TSL. The second inorganic layer 630 is a shielding layer that minimizes damage to the electrodes of the touch sensing unit due to chemicals (such as a developer and an etchant) used in a process of forming the color filter layer CFL, which is the upper layer of the touch sensing layer TSL.

[0110] In the display device 100 according to an embodiment of the present invention, the touch electrodes are designed to maximize metal density. However, if the touch electrodes are disposed directly below the second inorganic layer 630, an arc fault may occur in the touch electrodes with high metal density during a process (e.g., a plasma process) of depositing the second inorganic layer 630 on the touch sensing unit. To prevent this, in the display device 100 according to an embodiment of the present invention, the touch electrodes TE1 and TE2 are disposed below the touch interlayer insulating layer 620, which is an organic film, and the first bridge electrode BE1, which has a relatively low metal density, is disposed above the touch interlayer insulating layer 620 and below the second inorganic layer 630. This prevents an arc fault that may occur during the process of the second inorganic layer 630 and improves touch sensing performance.

[0111] The color filter layer CFL on top of the touch sensing layer TSL has a plurality of color filters 720 and a black matrix 710 disposed between the plurality of color filters 720 on the same layer as the plurality of color filters 720.

[0112] As shown in FIG. 5, color filters 720_A and 720_B and a black matrix 710 are disposed on the second inorganic layer 630.

[0113] A black matrix 710 is disposed on the second inorganic layer 630 to overlap the bank 400, and a plurality of color filters 720 are disposed to overlap the plurality of openings OA_BM of the black matrix 710. The color filters 720 reduce the amount of external light incident on the bank 400 and reflected therefrom, thereby reducing visibility, and maintain light efficiency without blocking light emitted from the light emitting device 200. The black matrix 710 is positioned to overlap the edge of the light emitting region of the light emitting device 200, absorbing incident external light to reduce external light entering the light emitting region and preventing reflected light from external light from being visible. The openings OA_BM of the black matrix 710 may overlap the openings OA_BK of the bank 400. In addition, the area of ​​the opening OA_BM of the black matrix 710 may be larger than the area of ​​the opening OA_BK of the bank 400. In this case, the width of each touch electrode line of the touch electrodes TE1 and TE2 may be substantially the same as the width between the openings OA_BM of the black matrix 710. That is, the opening OA_BM of the black matrix 710, the opening OA_T of the first touch electrode TE1, and the opening OA_BK of the bank 400 may be disposed at positions corresponding to each other in a direction perpendicular to the substrate 110. For example, the centers of the openings OA_BM, OA_T, and OA_BK may be positioned on the same line perpendicular to the substrate 110, and the openings OA_BM, OA_T, and OA_BK may have shapes corresponding to each other. In an embodiment of the present specification, the size of the opening OA_T may be larger than or equal to the size of the opening OA_BK. In an embodiment of the present specification, the size of the opening OA_T may be smaller than but substantially equal to the size of the opening OA_BM. In addition, in one embodiment of the present specification, the centers of the openings OA_BM and OA_BK may overlap with each other, with a gap having a circular ring shape or a polygonal ring shape formed between them.

[0114] An insulating layer 730 may be disposed on the black matrix 710 and the plurality of color filters 720, and the insulating layer 730 may be made of an organic material.

[0115] On the other hand, in a display device in which the touch sensing unit is disposed on the color filter layer CFL or does not include the color filter layer CFL, external light reflection occurs due to the touch electrodes, making the touch electrodes visible. In such a case, the arrangement position and area of ​​the touch electrodes are limited. In contrast, in the display device 100 according to an embodiment of the present specification, the touch sensing unit is disposed between the encapsulation layer ENCAP and the color filter layer CFL, and the touch electrodes of the touch sensing unit are disposed below the black matrix 710, thereby increasing the degree of freedom in the arrangement of the touch electrodes and enabling an increase in the metal density of the touch electrodes.

[0116] In the display device 100 according to an embodiment of the present specification, the plurality of first touch electrodes TE1, the plurality of second touch electrodes TE2, and the plurality of first bridge electrodes BE1 disposed in the upper layer of the touch electrodes are each arranged to overlap the black matrix 710. In this case, the plurality of first touch electrodes TE1 and the plurality of second touch electrodes TE2 may each be arranged perpendicular to and parallel to a portion of the black matrix 710 and may have the same or approximately the same width as the width between two adjacent openings OA_BM of the black matrix 710.

[0117] Hereinafter, an example of a touch electrode structure of a display device according to an embodiment of the present specification will be described with reference to FIGS.

[0118] Fig. 8 is a cross-sectional view taken along line II-II' in Fig. 4, showing an example of a touch electrode structure of a display device according to an embodiment of the present specification. Fig. 9 is a cross-sectional view taken along line II-II' in Fig. 4, showing another example of a touch electrode structure of a display device according to an embodiment of the present specification. Fig. 10 is a plan view illustrating an overlapping structure of a touch electrode and a dummy electrode in a display device.

[0119] 8, in an example of a touch electrode structure of a display device 100 according to an embodiment of the present disclosure, a first touch electrode TE1 and a first bridge electrode BE1 disposed thereover are electrically connected through a contact hole in a touch interlayer insulating layer 620. The width of the touch electrode line of the first touch electrode TE1 is the same or approximately the same as the width between the openings of the black matrix 710, thereby increasing the metal density of the touch electrode and increasing the capacitance for touch sensing, thereby improving touch sensing performance. In addition, by disposing the bridge electrode, which has a relatively low metal density of the touch electrode, under the second inorganic layer 630, arc faults that may occur during the deposition process of the second inorganic layer 630 can be prevented.

[0120] 9, in another example of a touch electrode structure of a display device according to an embodiment of the present disclosure, a dummy electrode DE may be disposed on a portion of the first touch electrode TE1 that is not connected to the first bridge electrode BE1. In this case, the dummy electrode DE is disposed in the same layer as the first bridge electrode BE1.

[0121] As shown in FIG. 9, the dummy electrode DE is disposed on the upper layer of the first touch electrode TE1 so as to overlap the first touch electrode TE1. However, the location of the dummy electrode DE is not limited thereto, and the dummy electrode DE may be disposed on the lower layer of the first touch electrode TE1. For example, the dummy electrode DE having a mesh shape and overlapping the first touch electrode TE1 or the second touch electrode TE2 may be disposed under the black matrix 710. This forms a double electrode structure of the dummy electrode DE and the first touch electrode TE1, generating a fringe electric field effect. This double electrode structure of the dummy electrode DE and the first touch electrode TE1 increases the capacitance between the user's touch input means (e.g., a finger or pen) and the touch electrode, thereby further improving touch sensing performance. Although FIG. 9 illustrates an example in which the dummy electrode DE is disposed on the first touch electrode TE1, the dummy electrode DE may also be disposed on the second touch electrode TE2.

[0122] The position and the number of the dummy electrodes DE corresponding to the first touch electrodes TE1 or the second touch electrodes TE2 are not limited, but the dummy electrodes DE may be locally arranged to prevent an arc fault that may occur during a deposition process of the second inorganic layer 630. That is, the dummy electrodes DE may be arranged to correspond to a portion of the plurality of first touch electrodes TE1 and the plurality of second touch electrodes TE2.

[0123] In addition, at least one of the first touch electrode TE1 and the second touch electrode TE2 and the dummy electrode DE disposed thereon are electrically insulated from each other by the touch interlayer insulating layer 620. In this case, the dummy electrode DE may be floating.

[0124] 10, the width of the dummy electrode DE may be smaller than the widths of the first touch electrode TE1 and the second touch electrode TE2. While the dummy electrodes DE are continuously arranged on the first touch electrode line TEL1 constituting the unit electrode of the first touch electrode TE1 in FIG. 10, the dummy electrodes DE may be locally arranged on the unit electrodes of the touch electrode, and may be arranged regularly or randomly. Furthermore, a unit electrode on which the dummy electrode DE is not arranged may be included among the plurality of unit electrodes constituting one touch electrode, and there may also be a touch electrode on which the dummy electrode DE is not arranged.

[0125] As shown in FIG. 10, by disposing the dummy electrode DE having a width smaller than that of the first touch electrode TE1 and the second touch electrode TE2 under the inorganic layer 630, it is possible to prevent arc faults that may occur during the deposition process of the inorganic layer 630 and further improve touch sensing performance.

[0126] Display devices according to various embodiments of the present disclosure can be described as follows.

[0127] A display device according to an embodiment of the present specification includes a substrate including a display area in which a plurality of light-emitting elements are arranged and a non-display area surrounding the display area, a touch sensing unit disposed on the substrate in the display area, a plurality of color filters disposed on the touch sensing unit and corresponding to each of the plurality of light-emitting elements, and a black matrix disposed on the touch sensing unit and between the plurality of color filters on a plane, wherein the touch sensing unit includes a plurality of first touch electrodes extending in a first direction, a plurality of second touch electrodes extending in a second direction intersecting the first direction, and bridge electrodes disposed on the plurality of first touch electrodes and connecting unit electrodes of the plurality of first touch electrodes.

[0128] According to another feature of the present disclosure, the display device may further include an inorganic layer covering the touch sensing portion, the inorganic layer being disposed on the bridge electrode.

[0129] According to still another feature of the present disclosure, the display device may further include an organic layer disposed between the first touch electrode and the bridge electrode.

[0130] According to another aspect of the present disclosure, the first touch electrode and the bridge electrode may be electrically connected through a contact hole included in the organic layer.

[0131] According to another feature of the present disclosure, the first touch electrode, the second touch electrode, and the bridge electrode may each overlap a black matrix.

[0132] According to another feature of the present disclosure, the first touch electrode and the second touch electrode may be disposed perpendicularly and parallel to a portion of the black matrix, respectively.

[0133] According to another feature of the present specification, the black matrix may include a plurality of openings overlapping a plurality of color filters, and the width of each of the first touch electrode and the second touch electrode may be the same as the width between two adjacent openings.

[0134] According to another feature of the present specification, the touch panel may further include dummy electrodes arranged in the same layer as the bridge electrodes and overlapping with some of the plurality of first touch electrodes and some of the plurality of second touch electrodes.

[0135] According to another feature of the present specification, the touch panel may further include an organic layer disposed between the first touch electrode and the bridge electrode, and the dummy electrode may be electrically insulated from the first touch electrode and the second touch electrode by sandwiching the organic layer.

[0136] According to yet another feature of the present disclosure, the dummy electrode may be floating.

[0137] According to another feature of the present disclosure, the width of the dummy electrode may be smaller than the width of the first touch electrode and the second touch electrode.

[0138] According to another feature of the present disclosure, the overlapped dummy electrode and the first touch electrode, or the overlapped dummy electrode and the second touch electrode, may be arranged vertically and parallel to each other below the black matrix.

[0139] According to still another feature of the present specification, the display device may further include a sealing layer disposed on the plurality of light-emitting elements, and the first touch electrode and the second touch electrode may be disposed on the sealing layer.

[0140] According to another aspect of the present disclosure, the display device may further include a thin film transistor disposed on the substrate, the thin film transistor including an active layer, a gate electrode, a source electrode, and a drain electrode, the thin film transistor being electrically connected to the light emitting element, a planarization layer disposed on the thin film transistor, and a bank disposed on the planarization layer and including a plurality of first openings overlapping with a light emitting region of the light emitting element, wherein the first touch electrode, the second touch electrode, and the bridge electrode may each overlap with the bank.

[0141] According to another feature of the present specification, the black matrix may include a plurality of second openings overlapping with light-emitting regions of the light-emitting elements, the first openings and the second openings overlapping with each other, and the area of ​​the second openings may be larger than the area of ​​the first openings.

[0142] Although the embodiments of the present specification have been described in more detail above with reference to the accompanying drawings, the present specification is not necessarily limited to these embodiments and may be variously modified within the scope of the technical concept of the present specification. Therefore, the embodiments disclosed in the present specification are intended to be illustrative rather than limiting the technical concept of the present specification, and the scope of the technical concept of the present specification is not limited by these embodiments. Therefore, the above-described embodiments should be understood to be illustrative in all respects and not restrictive. The scope of protection of the present specification should be interpreted by the scope of the following claims, and all technical concepts within the scope equivalent thereto should be interpreted as being included in the scope of the present specification.

Claims

1. a substrate including a display area and a non-display area; a light-emitting element layer disposed on the substrate in the display region; a sealing layer disposed on the light-emitting element layer; a touch sensing layer disposed on the encapsulation layer; a color filter layer disposed on the touch sensing layer; a gate driver provided on the substrate in the non-display area; a dam disposed on the substrate within the non-display area and around the display area; and a panel crack detection unit disposed on an edge portion of the substrate in the non-display area; The dam is located between the gate driver and the panel crack detector, the touch sensing layer includes a plurality of first touch electrodes, a plurality of second touch electrodes, and a first bridge electrode electrically connecting adjacent first touch electrodes; The display device further includes a dummy electrode disposed in the same layer as the first bridge electrode.

2. The display device according to claim 1 , wherein the color filter layer includes a black matrix having a plurality of first openings, and a plurality of color filters respectively covering the plurality of first openings.

3. the touch sensing layer further includes an inter-touch insulating layer disposed between the first bridge electrode and the first touch electrode; The display device of claim 1 , wherein the first bridge electrode is electrically connected to the first touch electrode through a contact hole formed in the touch interlayer insulating layer.

4. The display device of claim 2 , wherein the first bridge electrode, the plurality of first touch electrodes, and the plurality of second touch electrodes are disposed under the black matrix.

5. the light-emitting element layer includes a plurality of sub-pixels and a bank having a plurality of second openings that define light-emitting regions of the plurality of sub-pixels; the first opening and the second opening have shapes corresponding to each other; The display device according to claim 4 , wherein the size of the first opening is equal to or larger than the size of the second opening.

6. The display device of claim 1 , wherein the touch sensing layer further comprises a second bridge electrode electrically connecting adjacent second touch electrodes to each other.

7. The display device according to claim 6 , wherein the plurality of second touch electrodes and the second bridge electrode are integrally formed in the same layer.

8. 6. The display device according to claim 5, wherein, when viewed from above, the centers of the first openings and the second openings are overlapped with each other with a gap formed between the centers of the first openings and the second openings.

9. The display device according to claim 8 , wherein the gap has a circular ring shape or a polygonal ring shape.

10. the plurality of first touch electrodes and the plurality of second touch electrodes are formed in a mesh shape including a plurality of third openings; the plurality of sub-pixels are located within the plurality of third openings in a plan view, The display device according to claim 5 , wherein no subpixel is located in at least one of the plurality of third openings in plan view.

11. The dummy electrode is formed in a mesh shape, The display device according to claim 1 , wherein the dummy electrode overlaps with the plurality of first touch electrodes and the plurality of second touch electrodes in a plan view.

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