Display device
The display device incorporates a window with a light-shielding pattern and an input detection sensor with strategically arranged electrodes and signal lines to reduce the visibility of wiring, enhancing both aesthetics and functionality.
Patent Information
- Application Number
- JP2024000258
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-09-10
- Filing Date
- 2024-01-04
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2039-08-29
AI Technical Summary
The challenge is to reduce the visibility of wiring or signal lines in display devices, which affects the aesthetic appeal and functionality of these devices.
A display device design that includes a window with a light-shielding pattern, a transmissive region, and an input detection sensor. The input detection sensor has a specific arrangement of electrodes and signal lines that include bending portions to reduce visibility and improve reliability.
The solution effectively reduces the visibility of signal lines, enhances the reliability of visual inspection, and improves the overall appearance and functionality of the display device.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to a display device, and more particularly to a display device including an input detection sensor. [Background technology]
[0002] A variety of display devices have been developed for use in multimedia devices such as televisions, mobile phones, tablet computers, navigation systems, game consoles, etc. Input devices for the display devices include a keyboard or a mouse, etc. The display devices are equipped with a touch panel as an input device. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] U.S. Patent No. 9,335,881 [Patent Document 2] U.S. Patent No. 8,717,321 [Patent Document 3] U.S. Patent No. 8,194,223 [Patent Document 4] Korean Patent No. 10-1868473 [Patent Document 5] Korean Patent No. 10-1287042 [Patent Document 6] Korean Patent Publication No. 10-2014-0016071 [Patent Document 7] Korean Patent Publication No. 10-2008-0022359 Summary of the Invention [Problem to be solved by the invention]
[0004] An object of the present invention is to provide a display device in which the phenomenon of visibility of wiring or signal lines is reduced. [Means for solving the problem]
[0005] A display device according to an embodiment of the present invention includes a window, a display panel, and an input detection sensor. The window has a base layer including a light-shielding pattern, a light-shielding region in which the light-shielding pattern is arranged, and a transmissive region adjacent to the light-shielding region. The display panel may be disposed below the window. The input detection sensor may be disposed between the window and the display panel, and may include a wiring region corresponding to the light-shielding region and a sensing region corresponding to the transmissive region.
[0006] The input detection sensor may include a first electrode group including 1st to i-th electrodes (where i is a natural number equal to or greater than 2) arranged to be spaced apart from a pad area defined on one side of the light-shielding area in a first direction and extended in a second direction intersecting the first direction, a second electrode group including 1st to j-th electrodes (where j is a natural number equal to or greater than 2) intersecting with the first electrodes, a first signal line group including 1st to i-th signal lines electrically connected to the 1st to i-th electrodes, and a second signal line group including 1st to j-th signal lines electrically connected to the 1st to j-th electrodes.
[0007] Each of the 1st to nth (where n is a natural number equal to or greater than 1 and less than i) signal lines among the 1st to ith signal lines may include a first portion extending from the pad region in the first direction, a second portion connected to a corresponding electrode among the 1st to ith electrodes, and a third portion disposed between the pad region and the sensing region, having a shape bent multiple times, and disposed between the first portion and the second portion. The third portion of the first signal line of the first signal line group may include The third portion may be longer and have a higher resistance than the third portion of the n-th signal line of the first signal line group, and at least a portion of the first to n-th signal lines may overlap the light blocking pattern on a plane.
[0008] The first to i-th signal lines may have substantially the same resistance.
[0009] On a plane, the third portions of the first to n-th signal lines may overlap the light blocking pattern.
[0010] The first to j-th signal lines of the second signal line group may be connected to one ends adjacent to the pad region of the first to j-th electrodes of the second electrode group, respectively.
[0011] The first to j-th signal lines of the second signal line group may be longer than the first to i-th signal lines of the first signal line group.
[0012] The jth signal line of the second signal line group may be spaced furthest from the first electrode of the second electrode group in the second direction, and the jth signal line of the second signal line group may include an intermediate portion between 1st to mth (where m is a natural number equal to or greater than 2)th extension portions arranged in the second direction and the 1st to mth extension portions.
[0013] The mth extension portion may be connected to the one end of the jth electrode of the second electrode group.
[0014] The 1st to mth intermediate portions of the jth signal line may be closer to the sensing area from the 1st intermediate portion of the jth signal line to the mth intermediate portion of the jth signal line.
[0015] On a plane, the first intermediate portion of the j-th signal line of the second signal line group may overlap the light blocking pattern.
[0016] The third portion of the first signal line of the first signal line group may include a reference portion extended from the first portion in the second direction, 1st to kth (where k is a natural number of 2 or more) extended portions spaced apart from the reference portion in the first direction, and an intermediate portion between the reference portion and the first extended portion and between the 1st to kth (where k is a natural number of 2 or more) extended portions. The 1st to kth extended portions may be farther from the reference portion from the first extended portion to the kth extended portion.
[0017] The jth signal line of the second signal line group may be connected to the jth electrode of the second electrode group, and the jth signal line of the second signal line group may include 1st to mth (where m is a natural number of 2 or more) extension portions arranged in the second direction, and an intermediate portion between the 1st to mth extension portions. The 1st to kth extension portions may be arranged in one-to-one correspondence with some of the 1st to mth extension portions.
[0018] On a plane, the first extension portion of the third portion of the first signal line of the first signal line group may overlap the light-shielding pattern, and the kth extension portion of the third portion of the first signal line may not overlap the light-shielding pattern, and the kth extension portion may have a thicker line width than the first extension portion.
[0019] The j-th signal line of the second signal line group may include a first layer disposed below an insulating layer and a second layer disposed above the insulating layer and connected to the first layer through a contact hole penetrating the insulating layer, and in a plan view, the contact hole may overlap the intermediate portion or a terminal region of the extension portion adjacent to the intermediate portion.
[0020] The display panel may include a non-display area corresponding to the light-shielding area and a display area corresponding to the transmissive area. The display area may include a light-emitting area and a non-light-emitting area adjacent to the light-emitting area. Each of the first to i-th electrodes may have a mesh shape with openings defined therein corresponding to the light-emitting areas.
[0021] The display panel may include a circuitry layer, a display element layer on the circuitry layer, and a top insulating layer on the display element layer.
[0022] The input detection sensor may be disposed directly on the top insulating layer.
[0023] Each of the first to i-th signal lines of the first signal line group may include a first titanium layer, an aluminum layer on the first titanium layer, and a second titanium layer on the aluminum layer.
[0024] The line widths of the third portions of the first to i-th signal lines of the first signal line group may be substantially the same.
[0025] A notch region having an inward recess may be defined on each of the display panel and the input detection sensor on a plane. The 1st to i-th signal lines of the first signal line group may be connected to one ends of the 1st to i-th electrodes of the first electrode group, respectively. The one ends of the 1st to i-th electrodes of the first electrode group may be aligned in a line in the first direction. The length of the 1st to pth (where p is a natural number equal to or greater than 2 and less than i)th electrodes of the first electrode group in the second direction may be longer than the length of the (p+1)th electrode to the i-th electrode of the first electrode group in the second direction. The other ends of the (p+1)th electrode to the i-th electrode of the first electrode group may be adjacent to the notch region. The 1st to jth signal lines of the second signal line group may be connected to one ends of the 1st to jth electrodes of the second electrode group, respectively, adjacent to the pad region. The one ends of the 1st to jth electrodes of the second electrode group may be aligned in a row in the second direction, the length in the first direction of the 1st to qth (where q is a natural number greater than or equal to 2 and less than j)th electrodes of the second electrode group may be shorter than the length in the first direction of the (q+1)th electrode to the jth electrode of the second electrode group, and the other ends of the 1st to qth electrodes of the first electrode group may be adjacent to the notch region.
[0026] A hole area may be defined on a plane in each of the display panel and the input detection sensor, the hole area of the display panel and the hole area of the input detection sensor may be aligned, and the hole area of the input detection sensor may be defined inside the sensing area.
[0027] A display device according to an embodiment of the present invention includes a window including a light-shielding region and a transmissive region adjacent to the light-shielding region, a display panel disposed below the window, and an input detection sensor disposed between the window and the display panel. The input detection sensor includes a first electrode, a second electrode insulated from and crossing the first electrode, a first signal line connected to one end of the first electrode, and a second signal line connected to one end of the second electrode. and a third signal line connected to the other end of the second electrode. The 1st to nth (a natural number equal to or greater than 2) signal lines among the first signal lines may each include a bending portion that is bent a plurality of times. The resistance of the bending portion decreases from the first signal line to the nth signal line, and the 1st to nth signal lines may be connected to electrodes disposed farther away from the bending portion in the first electrode as they move from the first signal line to the nth signal line. On a plane, the bending portion may overlap the light-shielding region.
[0028] The one end of the second electrode may be disposed closer to the bent portion than the other end of the second electrode. The second signal line may include an extension portion extending in the same direction as the first electrode. In a plan view, a part of the extension portion of the second signal line may overlap the light-shielding region, and another part may be exposed from the light-shielding region. Effect of the Invention
[0029] As described above, the first group of signal lines connected to the first group of electrodes of the input detection sensor have substantially the same resistance, thereby improving the sensing sensitivity.
[0030] Even if the third portion, which controls the resistance of the first signal line, is densely arranged in a small area, the external light incident on the three portions is blocked by the light-shielding pattern, thereby suppressing the light leakage phenomenon in the third portion.
[0031] The bending region of the third portion corresponds to the bending region of the second signal line group, thereby improving the reliability of visual inspection of the first signal line group and the second signal line group. [Brief description of the drawings]
[0032] [Figure 1] FIG. 1 is a perspective view of a display device according to an embodiment of the present invention. [Figure 2A] FIG. 2A is a cross-sectional view of a display device according to one embodiment of the present invention. [Figure 2B] FIG. 2B is a cross-sectional view of a display device according to an embodiment of the present invention. [Figure 2C] FIG. 2C is a cross-sectional view of a display device according to an embodiment of the present invention. [Figure 2D] FIG. 2D is a cross-sectional view of a display device according to one embodiment of the present invention. [Figure 3A] FIG. 3A is a cross-sectional view of a display panel according to one embodiment of the present invention. [Figure 3B] FIG. 3B is a cross-sectional view of a display panel according to one embodiment of the present invention. [Figure 4] FIG. 4 is a plan view of a display panel according to an embodiment of the present invention. [Figure 5A] FIG. 5A is an enlarged cross-sectional view of a display panel according to one embodiment of the present invention. [Figure 5B] FIG. 5B is an enlarged cross-sectional view of the top insulating layer according to one embodiment of the present invention. [Figure 6A] FIG. 6A is a cross-sectional view of an input detection sensor according to one embodiment of the present invention. [Figure 6B] FIG. 6B is a plan view of an input detection sensor according to an embodiment of the present invention. [Figure 6C] FIG. 6C is a cross-sectional view corresponding to II' in FIG. 6B. [Figure 6D] FIG. 6D is a cross-sectional view corresponding to II-II' in FIG. 6B. [Figure 6E] FIG. 6E is a cross-sectional view of a signal line according to one embodiment of the present invention. [Figure 6F] FIG. 6F is an enlarged plan view of region AA of FIG. 6B. [Figure 7A] FIG. 7A is an enlarged plan view of a portion of an input detection sensor according to an embodiment of the present invention. [Figure 7B] FIG. 7B is a cross-sectional view of the display device corresponding to line III-III' in FIG. 7A. [Figure 7C] FIG. 7C is an enlarged plan view of region BB of FIG. 7A. [Figure 8A] FIG. 8A is an enlarged plan view of a portion of an input detection sensor according to an embodiment of the present invention. [Figure 8B] FIG. 8B is an enlarged plan view of a portion of FIG. 8A. [Figure 8C] FIG. 8C is an enlarged plan view of a portion of the input detection sensor according to one embodiment of the present invention. [Figure 9A] FIG. 9A is a perspective view of a display module according to one embodiment of the present invention. [Figure 9B] FIG. 9B is a plan view of an input detection sensor according to an embodiment of the present invention. [Figure 10A] FIG. 10A is a perspective view of a display module according to one embodiment of the present invention. [Figure 10B] FIG. 10B is a plan view of the input detection sensor according to one embodiment of the present invention. [Figure 11A] FIG. 11A is a perspective view of a display module according to one embodiment of the present invention. [Figure 11B] FIG. 11B is a plan view of an input detection sensor according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0033] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. In this specification, when a component (or a region, layer, portion, etc.) is described as being "on," "connected to," or "coupled to" another component, it means that it is directly connected / coupled to the other component, or that a third component may be disposed therebetween.
[0034] The same reference numerals refer to the same components. In the drawings, the thickness, ratio and size of the components are exaggerated for the purpose of effectively explaining the technical contents. "And / or" includes all combinations of one or more that can define the related configuration.
[0035] Terms such as first and second are used to describe various components, but the components are not limited by the terms. The terms are used to distinguish one component from another. For example, a first component may be called a second component, and similarly, a second component may be called a first component, without departing from the scope of the present invention. A singular expression includes a plural expression unless a different meaning is clear from the context.
[0036] In addition, terms such as "under", "below", "up" and "above" are used to describe the coupling relationship of components shown in the drawings. The terms are relative concepts and are described based on the directions shown in the drawings.
[0037] Terms such as "comprise" or "have" are intended to specify the presence of features, numbers, steps, operations, components, parts, or combinations thereof set forth in the specification, but are to be understood as not precluding the possible presence or addition of one or more other features, numbers, steps, operations, components, parts, or combinations thereof.
[0038] Fig. 1 is a perspective view of a display device DD according to an embodiment of the present invention. As shown in Fig. 1, the display device DD can display an image IM through a display surface DD-IS. The display surface DD-IS is parallel to a plane defined by a first directional axis DR1 and a second directional axis DR2. A normal direction of the display surface DD-IS, i.e., a thickness direction of the display device DD, is indicated by a third directional axis DR3.
[0039] The front (or top) and rear (or bottom) surfaces of each member or unit described below are divided by a third directional axis DR3. However, the first to third directional axes DR1, DR2, and DR3 illustrated in one embodiment of the present invention are merely examples. Hereinafter, the first to third directions are the directions indicated by the first to third directional axes DR1, DR2, and DR3, respectively, and the same drawing symbols will be used.
[0040] In one embodiment of the present invention, the display device DD having a flat display surface is illustrated, but is not limited to this configuration. The display device DD may also include a curved display surface or a three-dimensional display surface. The three-dimensional display surface may include a plurality of display areas showing different directions, and may include, for example, a polygonal cylindrical display surface.
[0041] The display device DD according to an embodiment of the present invention may be a rigid display device. However, the display device DD according to an embodiment of the present invention is not limited to the configuration shown here and may be a flexible display device DD. In the embodiment of the present invention, a display device DD applicable to a mobile phone terminal is illustrated as an example. Although not illustrated, an electronic module, a camera module, a power module, etc. mounted on a main board may be arranged in a bracket / case together with the display device DD to configure a mobile phone terminal. The display device DD according to an embodiment of the present invention may be applied to large electronic devices such as televisions and monitors, as well as small and medium-sized electronic devices such as tablets, car navigation systems, game consoles, and smart watches.
[0042] As shown in Fig. 1, the display surface DD-IS includes an image area DD-DA in which an image IM is displayed, and a bezel area DD-NDA adjacent to the image area DD-DA. The bezel area DD-NDA is an area in which no image is displayed. Fig. 1 illustrates an image of an icon as an example of the image IM.
[0043] As shown in Fig. 1, the image area DD-DA may have a rectangular shape. The bezel area DD-NDA may surround the image area DD-DA. However, the shape of the image area DD-DA and the shape of the bezel area DD-NDA are not limited to the configuration shown in Fig. 1 and may be designed relatively.
[0044] 2A to 2D are cross-sectional views of a display device DD according to an embodiment of the present invention. FIG 2A to 2D illustrate a cross section defined by a second directional axis DR2 and a third directional axis DR3. FIG 2A to 2D are simply illustrated to explain the stacking relationship of functional panels and / or functional units constituting the display device DD.
[0045] A display device DD according to an embodiment of the present invention includes a display panel, an input detection sensor, an anti-reflection unit, and a window. At least some of the components of the display panel, the input detection sensor, the anti-reflection unit, and the window are formed by a continuous process, or at least some of the components are bonded to each other via an adhesive member. In FIGS. 2A to 2D, an optically transparent adhesive member OCA is illustrated as an example of the adhesive member. The adhesive member described below includes, for example, a commonly used adhesive or pressure sensitive adhesive. In an embodiment of the present invention, the anti-reflection unit and the window may be replaced with other components or may be omitted.
[0046] In FIG. 2A to FIG. 2D, the input detection sensor, the anti-reflection unit, and the other components in the window are formed through a continuous process and expressed as a "layer". The input detection sensor, the anti-reflection unit, and the other components in the window are bonded to each other through an adhesive member. The above-mentioned structure is expressed as a "panel". The panel includes a base layer that provides a base surface, such as a synthetic resin film, a composite material film, a glass substrate, etc., but the "layer" may omit the base layer. In other words, the unit expressed as a "layer" is disposed on a base surface on which other units are provided.
[0047] The input detection sensor, the anti-reflection unit and the window are referred to as an input detection panel ISP, an anti-reflection panel RPP and a window panel WP, or an input detection layer ISL, an anti-reflection layer RPL and a window layer WL, depending on whether or not there is a base layer.
[0048] As shown in Fig. 2A, the display device DD includes a display panel DP, an input detection layer ISL, an anti-reflection panel RPP, and a window panel WP. The input detection layer ISL is disposed directly on the display panel DP. In this specification, "the B structure is disposed directly on the A structure" means that there is no separate adhesive layer / adhesive member disposed between the A structure and the B structure. The B structure is formed through a continuous process on the base surface on which the A structure is provided after the A structure is formed.
[0049] The display panel DP and the input detection layer ISL disposed directly on the display panel DP are defined as a display module DM. An optically transparent adhesive member OCA is disposed between the display module DM and the anti-reflection panel RPP, and between the anti-reflection panel RPP and the window panel WP.
[0050] The display panel DP generates an image, and the input detection layer ISL acquires coordinate information of an external input (e.g., a touch event). Although not shown, the display module DM according to an embodiment of the present invention further includes a protection member disposed on the lower surface of the display panel DP. The protection member and the display panel DP are bonded together via an adhesive member. The display device DD of Figures 2B to 2D described below also further includes a protection member.
[0051] The display panel DP according to an embodiment of the present invention is, for example, an emissive display panel, but is not limited to the configuration shown here. For example, the display panel DP may be an organic light-emitting display panel or a quantum dot emissive display panel. The emissive layer of the organic light-emitting display panel includes an organic emissive material. The emissive layer of the quantum dot emissive display panel includes quantum dots, quantum rods, etc. In the following, the display panel DP is described as an organic light-emitting display panel.
[0052] The anti-reflection panel RPP reduces the reflectance of external light incident from the upper side of the window panel WP. The anti-reflection panel RPP according to an embodiment of the present invention includes a retarder and a polarizer. The retarder may be a film type or a liquid crystal coating type, and may be a λ / 2 retarder and / or a λ / 4 retarder. The polarizer may also be a film type or a liquid crystal coating type. The film type includes a stretched synthetic resin film, and the liquid crystal coating type includes liquid crystal arranged in a predetermined form. The anti-reflection panel RPP according to an embodiment of the present invention may further include a protective film for the retarder and the polarizer. The retarder and the polarizer themselves, or the protective film, are defined as the base layer of the anti-reflection panel RPP.
[0053] The anti-reflection panel RPP according to an embodiment of the present invention includes color filters. The color filters have a predetermined arrangement. The arrangement of the color filters is determined in consideration of the emission colors of the pixels included in the display panel DP. The anti-reflection panel RPP further includes a black matrix adjacent to the color filters.
[0054] The anti-reflection panel RPP according to an embodiment of the present invention includes a structure of destructive interference. For example, the structure of destructive interference includes a first reflective layer and a second reflective layer disposed on different layers. The first reflected light and the second reflected light reflected from the first reflective layer and the second reflective layer, respectively, are destructively interfered with each other, thereby reducing the reflectance of external light.
[0055] The window panel WP according to an embodiment of the present invention includes a base layer WP-BS and a light-shielding pattern WP-BZ. The base layer WP-BS includes a glass substrate and / or a synthetic resin film. The base layer WP-BS is not limited to a single layer. The base layer WP-BS includes two or more films bonded together by an adhesive member.
[0056] The light-shielding pattern WP-BZ partially overlaps the base layer WP-BS. The light-shielding pattern WP-BZ is arranged on the back surface of the base layer WP-BS and arranged in a light-shielding region WP-NT of the base layer WP-BS. The light-shielding region WP-NT can define a bezel region DD-NDA of the display device DD. The region where the light-shielding pattern WP-BZ is not arranged is defined as a transparent region WP-T of the window panel WP.
[0057] The light-shielding pattern WP-BZ is formed as a colored organic film, for example, by a coating method. Although not shown in the drawings, the window panel WP further includes a functional coating layer disposed on the front surface of the base layer WP-BS. The functional coating layer includes an anti-fingerprint layer, an anti-reflection layer, a hard coating layer, etc. In Figures 2B to 2D referred to below, the window panel WP and the window layer WL are simply illustrated by omitting the base layer WP-BS and the light-shielding pattern WP-BZ.
[0058] 2B and 2C, the display device DD includes a display panel DP, an input detection panel ISP, an anti-reflection panel RPP, and a window panel WP. The stacking order of the input detection panel ISP and the anti-reflection panel RPP can be changed.
[0059] As shown in Fig. 2D, the display device DD includes a display panel DP, an input detection layer ISL, an anti-reflection layer RPL, and a window layer WL. The adhesive material is omitted from the display device DD, and the input detection layer ISL, the anti-reflection layer RPL, and the window layer WL are formed in a continuous process on a base surface provided to the display panel DP. The stacking order of the input detection layer ISL and the anti-reflection layer RPL can be changed.
[0060] 3A and 3B are cross-sectional views of a display panel DP according to an embodiment of the present invention.
[0061] As shown in Fig. 3A, the display panel DP includes a base layer BL, a circuit element layer DP-CL disposed on the base layer BL, a display element layer DP-OLED, and an upper insulating layer TFL. A display area DP-DA and a non-display area DP-NDA corresponding to the image area DD-DA and the bezel area DD-NDA shown in Fig. 1 are defined in the display panel DP. In an embodiment of the present invention, the correspondence between the areas means that the areas overlap each other, and is not limited to having the same area.
[0062] The base layer BL includes at least one plastic film, such as a plastic substrate, a glass substrate, a metal substrate, or an organic / inorganic composite substrate.
[0063] The circuit element layer DP-CL includes at least one intermediate insulating layer and circuit elements. The intermediate insulating layer includes at least one intermediate inorganic film and at least one intermediate organic film. The circuit elements include signal lines, pixel driving circuits, etc., which will be described in detail later.
[0064] The display element layer DP-OLED includes at least an organic light emitting diode. The display element layer DP-OLED further includes an organic film, such as a pixel defining film.
[0065] The upper insulating layer TFL includes multiple thin films, some of which are arranged to improve optical efficiency and some of which are arranged to protect the organic light emitting diodes, and a detailed description of the upper insulating layer TFL will be provided later.
[0066] As shown in Fig. 3B, the display panel DP includes a base layer BL, a circuit element layer DP-CL disposed on the base layer BL, a display element layer DP-OLED, an encapsulation substrate ES, and a sealant SM that bonds the base layer BL and the encapsulation substrate ES. The encapsulation substrate ES is spaced apart from the display element layer DP-OLED with a predetermined gap GP. The base layer BL and the encapsulation substrate ES include a plastic substrate, a glass substrate, a metal substrate, an organic / inorganic composite substrate, or the like. The sealant SM includes an organic adhesive material or a frit, or the like.
[0067] Fig. 4 is a plan view of a display panel DP according to an embodiment of the present invention. Fig. 5A is an enlarged cross-sectional view of a display panel DP according to an embodiment of the present invention. Fig. 5B is an enlarged cross-sectional view of an upper insulating layer TFL according to an embodiment of the present invention. The display panel DP of Fig. 5A is illustrated based on the display panel DP of Fig. 3A.
[0068] As shown in FIG. 4, the display panel DP includes a driving circuit GDC, a plurality of signal lines SGL (hereinafter, signal lines), a plurality of signal pads DP-PD (hereinafter, signal pads), and a plurality of pixels PX (hereinafter, pixels).
[0069] The display area DP-DA is defined as an area in which the pixels PX are arranged. Each of the pixels PX includes an organic light emitting diode and a pixel driving circuit connected thereto. The driving circuit GDC, the signal line SGL, the signal pad DP-PD and the pixel driving circuit are included in the circuit element layer DP-CL shown in Figures 3A and 3B.
[0070] The driving circuit GDC includes a scanning driving circuit. The scanning driving circuit generates a plurality of scanning signals (hereinafter, scanning signals) and sequentially outputs the scanning signals to a plurality of scanning lines GL (hereinafter, scanning lines) described later. The scanning driving circuit can further output another control signal to the driving circuit of the pixel PX.
[0071] The scan driving circuit includes a plurality of thin film transistors formed through the same process as the driving circuit of the pixel PX, for example, a low temperature polycrystalline silicon (LTPS) process or a low temperature polycrystalline oxide (LTPO) process.
[0072] The signal lines SGL include scan lines GL, data lines DL, power lines PL, and control signal lines CSL. The scan lines GL are connected to corresponding pixels PX in the pixels PX, and the data lines DL are connected to corresponding pixels PX in the pixels PX. The power lines PL are connected to the pixels PX. The control signal lines CSL provide control signals to the scan driving circuit.
[0073] The signal line SGL overlaps the display area DP-DA and the non-display area DP-NDA. The signal line SGL includes a pad portion and a line portion. The line portion overlaps the display area DP-DA and the non-display area DP-NDA. The pad portion is connected to an end of the line portion. The pad portion is disposed in the non-display area DP-NDA and overlaps a corresponding signal pad in the signal pad DP-PD. The non-display area DP-N An area of the DA where the signal pads DP-PD are arranged is defined as a pad area DP-PA. A circuit board (not shown) can be connected to the pad area DP-PA.
[0074] The line portion connected to the pixel PX constitutes the majority of the signal line SGL. The line portion is connected to the transistors T1, T2 (see FIG. 5A) of the pixel PX. The line portion may have a single-layer / multi-layer structure, be a single body or include two or more parts. The two or more parts are arranged on different layers and are connected to each other through contact holes penetrating an insulating layer arranged between the two or more parts.
[0075] 5A shows a partial cross section of a display panel DP corresponding to transistors T1, T2 and a light emitting diode OLED. The circuit element layer DP-CL disposed on the base layer BL includes at least one insulating layer and circuit elements. The circuit elements include signal lines, driving circuits of pixels, etc. The circuit element layer DP-CL is formed through a process of forming an insulating layer, a semiconductor layer, and a conductive layer by coating, deposition, or the like, and a process of patterning the insulating layer, the semiconductor layer, and the conductive layer by a photolithography process.
[0076] In one embodiment of the present invention, the circuit element layer DP-CL includes a buffer film BFL, a first intermediate inorganic film 10, and a second intermediate inorganic film 20, which are inorganic films, and an intermediate organic film 30, which is an organic film. The buffer film BFL includes a plurality of laminated inorganic films. In FIG. 5A, the arrangement relationship of the first semiconductor pattern OSP1, the second semiconductor pattern OSP2, the first control electrode GE1, the second control electrode GE2, the first input electrode DE1, the first output electrode SE1, the second input electrode DE2, and the second output electrode SE2, which constitute the switching transistor T1 and the driving transistor T2, is illustrated as an example. The first to fourth through holes CH1 to CH4 are also illustrated as an example.
[0077] The display element layer DP-OLED includes an organic light emitting diode OLED. The display element layer DP-OLED includes a pixel definition layer PDL. For example, the pixel definition layer PDL can be an organic layer.
[0078] A first electrode AE is disposed on the intermediate organic film 30. The first electrode AE is connected to the second output electrode SE2 via a fifth through-hole CH5 that penetrates the intermediate organic film 30. An opening OP is defined in the pixel defining film PDL. The opening OP of the pixel defining film PDL exposes at least a portion of the first electrode AE. The opening OP of the pixel defining film PDL is called a light emitting opening to distinguish it from other openings.
[0079] 5A, the display area DP-DA includes a light-emitting area PXA and a non-light-emitting area NPXA adjacent to the light-emitting area PXA. The non-light-emitting area NPXA may surround the light-emitting area PXA. In one embodiment of the present invention, the light-emitting area PXA is defined corresponding to a portion of the first electrode AE exposed by the light-emitting opening OP.
[0080] The hole control layer HCL may be disposed in common to the light-emitting region PXA and the non-light-emitting region NPXA. The hole control layer HCL includes a hole transport layer and may further include a hole injection layer. The light-emitting layer EML is disposed on the hole control layer HCL. The light-emitting layer EML is disposed in an area corresponding to the light-emitting opening OP. In other words, the light-emitting layer EML is formed separately for each pixel. The light-emitting layer EML includes an organic material and / or an inorganic material. The light-emitting layer EML can generate a predetermined color light.
[0081] An electronic control layer ECL is disposed on the light emitting layer EML. The electronic control layer ECL includes an electron transport layer and further includes an electron injection layer. The hole control layer HCL and the electronic control layer ECL can be formed in common to a plurality of pixels using an open mask. A second electrode CE is disposed on the electronic control layer ECL. The second electrode CE has an integral shape and is disposed in common to a plurality of pixels. can be.
[0082] 5A and 5B, an upper insulating layer TFL is disposed on the second electrode CE. The upper insulating layer TFL includes a plurality of thin films. As in one embodiment of the present invention, the upper insulating layer TFL includes a capping layer CPL and a thin film encapsulation layer TFE. The thin film encapsulation layer TFE may include a first inorganic layer IOL1, an organic layer OL, and a second inorganic layer IOL2.
[0083] The capping layer CPL is disposed on and in contact with the second electrode CE. The capping layer CPL includes an organic material. The first inorganic layer IOL1 is disposed on and in contact with the capping layer CPL. The organic layer OL is disposed on and in contact with the first inorganic layer IOL1. The second inorganic layer IOL2 is disposed on and in contact with the organic layer OL.
[0084] The capping layer CPL protects the second electrode CE from a subsequent process, such as a sputtering process, and improves the luminous efficiency of the organic light emitting diode OLED. The capping layer CPL may have a refractive index greater than that of the first inorganic layer IOL1.
[0085] The first inorganic layer IOL1 and the second inorganic layer IOL2 protect the display element layer DP-OLED from moisture / oxygen, and the organic layer OL protects the display element layer DP-OLED from foreign substances such as dust particles. The first inorganic layer IOL1 and the second inorganic layer IOL2 are any one of a silicon nitride layer, a silicon oxynitride layer, and a silicon oxide layer. In one embodiment of the present invention, the first inorganic layer IOL1 and the second inorganic layer IOL2 include a titanium oxide layer, an aluminum oxide layer, or the like. The organic layer OL may include an acrylic organic layer, but is not limited to this configuration.
[0086] In one embodiment of the present invention, an inorganic layer, such as a LiF (lithium fluoride) layer, is further disposed between the capping layer CPL and the first inorganic layer IOL1. The LiF layer improves the luminous efficiency of the light-emitting element OLED.
[0087] FIG. 6A is a cross-sectional view of an input detection sensor ISL according to an embodiment of the present invention. FIG. 6B is a plan view of an input detection sensor ISL according to an embodiment of the present invention. FIG. 6C is a cross-sectional view corresponding to I-I' in FIG. 6B. FIG. 6D is a cross-sectional view corresponding to II-II' in FIG. 6B. FIG. 6E is a cross-sectional view of a signal line according to an embodiment of the present invention. FIG. 6F is an enlarged plan view of an AA region in FIG. 6B. In an embodiment of the present invention, a "layer" type input detection sensor ISL is illustrated as an example. In FIG. 6C and FIG. 6D, the display panel DP is illustrated simply.
[0088] As shown in Fig. 6A, the input detection sensor ISL includes a first insulating layer IS-IL1, a first conductive layer IS-CL1, a second insulating layer IS-IL2, a second conductive layer IS-CL2, and a third insulating layer IS-IL3. The first insulating layer IS-IL1 is disposed directly on the upper insulating layer TFL. In one embodiment of the present invention, the first insulating layer IS-IL1 can be omitted.
[0089] Each of the first conductive layer IS-CL1 and the second conductive layer IS-CL2 may have a single-layer structure, or may have a multi-layer structure stacked along the third direction axis DR3. The multi-layer conductive layer includes at least two of a transparent conductive layer and a metal layer. The multi-layer conductive layer may include a metal layer including a different metal. The transparent conductive layer may be made of ITO (indium tin oxide), IZO (indium zinc oxide), ZnO (zinc oxide), ITZO (indium tin zinc oxide), PEDOT, metal The conductive layer includes a metal layer, a nanowire, and a graphene. The metal layer includes molybdenum, silver, titanium, copper, aluminum, and alloys thereof. For example, each of the first conductive layer IS-CL1 and the second conductive layer IS-CL2 may have a three-layer metal layer structure, for example, a titanium / aluminum / titanium three-layer structure.
[0090] Each of the first conductive layer IS-CL1 and the second conductive layer IS-CL2 includes a plurality of conductive patterns. Hereinafter, the first conductive layer IS-CL1 is described as including a first conductive pattern, and the second conductive layer IS-CL2 is described as including a second conductive pattern. Each of the first conductive pattern and the second conductive pattern may include a detection electrode and a signal line connected thereto.
[0091] Each of the first insulating layer IS-IL1 to the third insulating layer IS-IL3 contains an inorganic material or an organic material. In one embodiment of the present invention, the first insulating layer IS-IL1 and the second insulating layer IS-IL2 are inorganic films containing an inorganic material. The inorganic film contains at least one of aluminum oxide, titanium oxide, silicon oxide, silicon oxynitride, zirconium oxide, and hafnium oxide. The third insulating layer IS-IL3 may contain an organic film. The organic film contains at least one of an acrylic resin, a methacrylic resin, polyisoprene, a vinyl resin, an epoxy resin, a urethane resin, a cellulose resin, a siloxane resin, a polyimide resin, a polyamide resin, and a ferrylene resin.
[0092] 6B, the input detection sensor ISL includes a sensing area IS-DA and a wiring area IS-NDA corresponding to a display area DP-DA (see FIG. 4) and a non-display area DP-NDA (see FIG. 4) of the display panel DP (see FIG. 4). The sensing area IS-DA is defined as an area in which a first electrode group EG1 and a second electrode group EG2, which will be described later, are arranged.
[0093] The input detection sensor ISL includes a first electrode group EG1, a second electrode group EG2, a first signal line group SG1 connected to the first electrode group EG1, and a second signal line group SG2 connected to the second electrode group EG2. A pad area IS-PA in which signal pads are arranged is defined in the wiring area IS-NDA. A circuit board (not shown) may be connected to the pad area IS-PA. In an embodiment of the present invention, the pad area DP-PA (see FIG. 4) of the display panel DP and the pad area IS-PA of the input detection sensor ISL may be connected via a single circuit board.
[0094] The pad area IS-PA includes a first pad area IS-PA1 and a second pad area IS-PA2. A first pad IS-PD1 and a second pad IS-PD2 are disposed in the first pad area IS-PA1 and the second pad area IS-PA2, respectively. The first pad IS-PD1 and the second pad IS-PD2 may be terminal ends of the signal lines of the first signal line group SG1 and the second signal line group SG2, or may be other electrodes connected to terminal ends of the signal lines of the first signal line group SG1 and the second signal line group SG2.
[0095] The first electrode group EG1 includes the 1st to i-th electrodes (where i is a natural number equal to or greater than 2). In one embodiment of the present invention, i is 10. The 1st to 10th electrodes IE1-1 to IE1-10 have shapes that are extended in the second direction DR2. The 1st to 10th electrodes IE1-1 to IE1-10 are arranged so as to be away from the pad area IS-PA in the first direction DR1.
[0096] The second electrode group EG2 includes the 1st to jth electrodes (where j is a natural number equal to or greater than 2). In one embodiment of the present invention, j is 8. The 1st to 8th electrodes IE2-1 to IE2-8 have shapes that are extended in the first direction DR1. 2-8 are sequentially arranged in the second direction DR1. In one embodiment of the present invention, the first electrode IE2-1 is described as being disposed at the leftmost position.
[0097] The first signal line group SG1 includes the 1st to i-th signal lines. In one embodiment of the present invention, i is 10. The 1st to 10th signal lines SL1-1 to SL1-10 are connected to one ends of the 1st to 10th electrodes IE1-1 to IE1-10, respectively. As shown in FIG. 6B, the 1st to 10th signal lines SL1-1 to SL1-10 are connected to right ends of the 1st to 10th electrodes IE1-1 to IE1-10, respectively. The first pads IS-PD1 connected to the 1st to 10th signal lines SL1-1 to SL1-10 are aligned in the first pad area IS-PA1.
[0098] The second signal line group SG2 includes the 1st to jth signal lines. In one embodiment of the present invention, j is 8. The 1st to 8th signal lines SL2-1 to SL2-8 are connected to one ends of the 1st to 8th electrodes IE2-1 to IE2-8, respectively. As shown in FIG. 6B, the 1st to 8th signal lines SL2-1 to SL2-8 are connected to lower ends of the 1st to 8th electrodes IE2-1 to IE2-8, respectively. The second pads IS-PD2 connected to the 1st to 8th electrodes IE2-1 to IE2-8 are aligned in the second pad area IS-PA2.
[0099] In an embodiment of the present invention, the input detection sensor ISL may further include a third signal line group SG3 including the first to j-th signal lines. In an embodiment of the present invention, j is 8. The first to eighth signal lines SL3-1 to SL3-8 are connected to upper ends of the first to eighth electrodes IE2-1 to IE2-8, respectively. The third pad IS-PD3 connected to the first to eighth signal lines SL3-1 to SL3-8 is aligned to the left of the second pad IS-PD2.
[0100] The corresponding signal lines of the second signal line group SG2 and the third signal line group SG3 provide synchronized detection signals to both ends of one electrode, preventing a voltage drop in the detection signals and improving sensing sensitivity. In an embodiment of the present invention, either the second signal line group SG2 or the third signal line group SG3 may be omitted.
[0101] The electrodes of the first electrode group EG1 include a plurality of first sensor portions SP1 and a plurality of first connection portions CP1. The first sensor portions SP1 are arranged along the second direction DR2. Each of the first connection portions CP1 connects two adjacent first sensor portions SP1 among the first sensor portions SP1.
[0102] The electrodes of the second electrode group EG2 include a plurality of second sensor portions SP2 and a plurality of second connection portions CP2. The second sensor portions SP2 are arranged along the first direction DR1. Each of the second connection portions CP2 connects two adjacent second sensor portions SP2 in the second sensor portions SP2.
[0103] The electrodes of the first electrode group EG1 and the electrodes of the second electrode group EG2 are insulated from each other. Fig. 6B illustrates a form in which the first connection part CP1 and the second connection part CP2 cross each other. Some of the first sensor parts SP1, the first connection parts CP1, the second sensor parts SP2, and the second connection parts CP2 are formed by patterning the first conductive layer IS-CL1 illustrated in Fig. 6A, and the other parts are formed by patterning the second conductive layer IS-CL2 illustrated in Fig. 6A.
[0104] Referring to FIG. 6C, in one embodiment of the present invention, a plurality of first connection portions CP1 are formed from a first conductive layer IS-CL1, and a plurality of first sensor portions SP1, a plurality of second sensor portions SP2, It can be seen that the second connection parts CP2 are formed from the second conductive layer IS-CL2. The first sensor part SP1 and the first connection part CP1 can be connected to each other through the first connection contact hole CNT-I penetrating the second insulating layer IS-IL2.
[0105] In the embodiment of the present invention, the multiple first connection parts CP1 and the multiple second connection parts CP2 cross each other, but the present invention is not limited to this configuration. For example, each of the second connection parts CP2 is deformed into the shape of "<" and / or ">" so as not to overlap with the first connection part CP1. The second connection part CP2 in the shape of "<" or ">" can overlap with the first sensor part SP1.
[0106] In an embodiment of the present invention, the signal lines of the first signal line group SG1 and the second signal line group SG2 have a two-layer structure, where the first layer is formed by patterning the first conductive layer IS-CL1 shown in Fig. 6A, and the second layer is formed by patterning the second conductive layer IS-CL2 shown in Fig. 6A.
[0107] 6D, the eighth to tenth signal lines SL1-8 to SL1-10 include a first layer SL-L1 and a second layer SL-L2. The first layer SL-L1 and the second layer SL-L2 are electrically connected via a second connection contact hole CNT-S penetrating the second insulating layer IS-IL2.
[0108] As shown in Fig. 6E, the first layer SL-L1 includes multiple metal layers. Although not shown, the second layer SL-L2 also includes multiple metal layers. Fig. 6E shows the first layer SL-L1 having a three-layer structure of a first metal layer ML1, a second metal layer ML2, and a third metal layer ML3 as an example. The first metal layer ML1, the second metal layer ML2, and the third metal layer ML3 may be a first titanium layer ML1, an aluminum layer ML2, and a second titanium layer ML3. The second layer SL-L2 may also have the same stacked structure as the first layer SL-L1.
[0109] Referring to Figures 6C to 6E, the first layer SL-L1 and the first connecting portion CP1 may be formed through the same process and have the same laminated structure, and the second layer SL-L2 and the second connecting portion CP2 may be formed through the same process and have the same laminated structure.
[0110] In Fig. 6F, the region AA in Fig. 6B is illustrated. In one embodiment of the present invention, the electrodes of the first electrode group EG1 and the electrodes of the second electrode group EG2 have a mesh shape. Fig. 6F illustrates a portion of the mesh-shaped second electrode IE2-8. A portion of the second electrode IE2-8 is illustrated in which openings OP-MR, OP-MG, and OP-MB corresponding to three light-emitting regions PXA-R, PXA-G, and PXA-B are defined.
[0111] In one embodiment of the present invention, the input detection sensor ISL is a capacitive touch panel that detects an external input by a mutual capacitance method, in which one of the first electrode group EG1 and the second electrode group EG2 receives a detection signal, and the other outputs a change in capacitance between the first electrode group EG1 and the second electrode group EG2 as an output signal.
[0112] In one embodiment of the invention, the electrodes of the second electrode group EG2 can sequentially receive detection signals. The input detection circuit reads the output signal from the first electrode group EG1. When the input means is input to a specific position, the output signal represents a different amount of change in capacitance than when the input means is not input. For example, when the input means is input to a specific position, an additional capacitor is connected in parallel to the capacitor defined by the electrodes of the first electrode group EG1 and the electrodes of the second electrode group EG2 at the specific position in terms of an equivalent circuit.
[0113] In the process of reading an output signal from the first electrode group EG1 via the first signal line group SG1, the first to tenth signal lines SL1-1 to SL1-10 have substantially the same resistance in order to reduce noise due to the first signal line group SG1. "Substantially the same" includes resistance deviations that occur due to process errors even if the first to tenth signal lines SL1-1 to SL1-10 are designed to have the same resistance. Even if the resistances of the first to tenth signal lines SL1-1 to SL1-10 are not the same, at least some of the first to tenth signal lines SL1-1 to SL1-10 may have the characteristics described below in order to reduce these deviations.
[0114] Fig. 7A is an enlarged plan view of a part of the input detection sensor ISL according to an embodiment of the present invention. Fig. 7B is a cross-sectional view of the display device DD corresponding to III-III' in Fig. 7A. Fig. 7C is an enlarged plan view of the BB region in Fig. 7A. Hereinafter, the input detection sensor ISL will be described with reference to the overall plan view in Fig. 6B and Figs. 7A to 7C.
[0115] Fig. 7B shows the relative positional relationship between the transmissive region WP-T, the display region DP-DA, and the sensing region IS-DA. The planar regions described with reference to Fig. 7A refer to the regions shown in Fig. 7B. In Fig. 7B, the distance between the transmissive region WP-T and the sensing region IS-DA is several hundred μm, for example, 300 μm to 500 μm.
[0116] 7A and 7B, some of the first to j-th signal lines of the second signal line group SG2 include a first portion P10 (or a connection portion), a second portion P20 (or an extension portion), and a third portion P30 (or an intermediate portion). In one embodiment of the present invention, the second to eighth signal lines SL2-2 to SL2-8 include the first portion P10, the second portion P20, and the third portion P30. In the second to eighth signal lines SL2-2 to SL2-8, the higher the order, the greater the number of second portions P20 and third portions P30 they include.
[0117] The first portion P10 is connected to a corresponding second pad IS-PD2 and extends in a first direction DR1. The second portion P20 extends the signal line in a second direction DR2. The signal line is bent at the third portion P30.
[0118] The eighth signal line SL2-8, which is the jth signal line, is spaced farthest from the first electrode IE2-1 of the second electrode group EG2 in the first direction DR1. The eighth signal line SL2-8 includes m second portions P20 and (m-1) third portions P30. m is a natural number equal to or greater than 2. m is equal to or less than j. In one embodiment of the present invention, m is 7. Of the seven second portions P20 of the eighth signal line SL2-8, a portion overlaps the light-shielding region WP-NT. Of the seven second portions P20, two portions overlap the light-shielding region WP-NT.
[0119] As the order increases, the m second portions P20 are closer to the sensing area IS-DA. Seven of the second portions P20 are connected to the eighth second electrode IE2-8.
[0120] As a result, the width in the first direction DR1 of the region in which the second to eighth signal lines SL2-2 to SL2-8 are arranged gradually decreases toward the first signal line group SG1 in the second direction DR2.
[0121] 7A and 7C, the signal lines of the second signal line group SG2 have different line widths according to the regions. The regions adjacent to the corresponding electrodes have smaller line widths. For example, for the eighth signal line SL2-8, some second portions P20 adjacent to the eighth second electrode IE2-8 of the seven second portions P20 have narrower line widths than other second portions P20 adjacent to the first portion P10.
[0122] 7A, in an embodiment of the present invention, the eighth signal line SL2-8 is illustrated as including seven third portions P30, but the first third portion P30 connected to the first portion P10 is omitted. In this case, the second portion P20 is directly connected to the first portion P10. In an embodiment of the present invention, the third portion P30 is extended in a diagonal direction intersecting the first direction DR1 and the second direction DR2, but may be extended in the first direction DR1.
[0123] 7A and 7B, each of the 1st to nth (where n is a natural number equal to or greater than 1 and less than i) signal lines among the 1st to ith signal lines of the first signal line group SG1 includes a first portion P1, a second portion P2, and a third portion P3. In one embodiment of the present invention, n is 8.
[0124] The first portions P1 of the first to eighth signal lines SL1-1 to SL1-8 extend from the first pad area IS-PA1 in the first direction DR1. The first portions P1 do not necessarily extend in a straight line. The second portions P2 of the first to eighth signal lines SL1-1 to SL1-8 are connected to the first to eighth electrodes IE1-1 to IE1-8 (see FIG. 6B), respectively. The second portions P2 extend in the first direction DR1, but do not necessarily extend in a straight line. The second portions P2 are similar in shape to the second to eighth signal lines SL2-2 to SL2-8 of the second signal line group SG2.
[0125] In one embodiment of the present invention, the second portion P2 having a longer length has a thicker line width than the second portion P2 having a shorter length. The line width of the second portion P2 of the first signal line SL1-1 is thinner than the line width of the second portion P2 of the eighth signal line SL1-8. FIG. 7C illustrates the second portions P2 of the two outermost signal lines SL1-1 as being thicker than the other second portions P2.
[0126] The third portions P3 of the first to eighth signal lines SL1-1 to SL1-8 are disposed between the first portions P1 and the second portions P2. The third portions P3 have an open loop shape.
[0127] The third portion P3 may have a shape that is bent multiple times to increase the length in a narrow area. The third portion P3 has the same line width as each other to control the resistance value according to the length. Some of the signal lines of the second signal line group SG2, for example, the eighth signal line SL2-8, are disposed between the third portion P3 and the sensing area IS-DA.
[0128] The first to eighth signal lines SL1-1 to SL1-8 each include a third portion P3 having a different length, the length of which decreases as the order of the signal lines SL1-1 to SL1-8 increases.
[0129] The resistance of the third portion P3 decreases as the order of the signal lines SL1-1 to SL1-8 increases, and the resistance of the second portion P2 extended from the third portion P3 increases as the order of the signal lines SL1-1 to SL1-8 increases.
[0130] In order to reduce the area of the wiring region IS-NDA, the third portions P3 are concentrated in a narrow region. The line width of the third portions P3 is several micrometers, and the interval between the third portions P3 is also several micrometers. In one embodiment of the present invention, the line width of the third portions P3 and the interval between adjacent third portions are 3 μm to 7 μm.
[0131] The high density wiring in a small area increases the scattering of incident light in the third portion P3. The third portion P3 may also include three metal layers as shown in FIG. 6E. However, the region where the third portion P3 is arranged has a high density of the side of the metal layer. This is because it is expensive.
[0132] 6E, the third metal layer ML3 has a lower reflectivity than the second metal layer ML2 and almost covers the second metal layer ML2, but the inclined side surface of the second metal layer ML2 is exposed. External light is scattered by the inclined side surface of the second metal layer ML2.
[0133] In order to prevent the third portion P3 from being visually recognized by a user due to scattered light, at least a part of the third portion P3 overlaps with the light-shielding pattern WP-BZ. The light-shielding pattern WP-BZ can block the scattered light from being emitted to the outside.
[0134] The third portion P3 may completely overlap the light shielding pattern WP-BZ, but is not limited to this configuration. A part of the third portion P3 may not overlap the light shielding pattern WP-BZ.
[0135] 7C, the third portion P3 may have a narrower line width than the first and second portions P1 and P2, and the third portion P3 is arranged more densely than the first and second portions P1 and P2 in the same area.
[0136] 7A and 7C, each of the third portions P3 includes a reference portion P100, an extension portion P200, and an intermediate portion P300. The reference portion P100 extends from one end of the corresponding first portion P1 toward the first portion P10 of the second signal line group SG2 in the second direction DR2.
[0137] The third portion P3 includes a different number of extension portions P200. The extension portions P200 are spaced apart from the reference portion P100 in the first direction DR1. The third portion P3 of the first signal line SL1-1 includes 1st to kth (where k is a natural number equal to or greater than 2) extension portions P200. The k extension portions P200 may be arranged in the second direction DR2. The 1st to kth extension portions P200 are spaced apart from the reference portion P100 as the order increases. In one embodiment of the present invention, k is 5.
[0138] The third portion P3 includes a different number of intermediate portions P300. The intermediate portions P300 may extend in a diagonal direction or in a direction perpendicular to the extended portion P200. The third portion P3 of the first signal line SL1-1 includes first to kth intermediate portions P300. The first intermediate portion P300 is disposed between one end of the reference portion P100 and the first extended portion P200 of the third portion P3. The second to kth intermediate portions P300 connect the first to kth extended portions P200. The first intermediate portion P300 is longer than the other intermediate portions P300.
[0139] The reference portion P100 corresponds to the first to k-th intermediate portions P300. The distance between the reference portion P100 and the sensing area IS-DA is constant.
[0140] The third portion P3 of the other signal line is disposed in an inner region defined by the reference portion P100, the extension portion P200, and the middle portion P300 of the first signal line SL1-1. As a result, the width of the region in which the third portion P3 is disposed in the first direction DR1 is gradually reduced as it approaches the first portion P10 of the second signal line group SG2 in the second direction DR2. The third portion P3 is disposed in a region in which the second signal line group SG2 is not disposed, thereby reducing the area of the wiring region IS-NDA. The third portion P3 is extended in the second direction DR2, thereby separating the third portion P3 from the sensing region IS-DA. The area of the third portion P3 overlapping the light-shielding region WP-NT can be increased.
[0141] Fig. 8A is a plan view showing an enlarged portion of the input detection sensor according to one embodiment of the present invention. Fig. 8B is a plan view showing an enlarged portion of Fig. 8A. Fig. 8C is a plan view showing an enlarged portion of the input detection sensor according to one embodiment of the present invention. Detailed description of the same configuration as that described with reference to Figs. 1 to 7C will be omitted below.
[0142] 8A and 8B, an intermediate portion P300 of the third portion P3 is disposed corresponding to the third portion P30 of the second signal line group SG2, and an extended portion P200 of the third portion P3 is disposed corresponding to the second portion P20 of the second signal line group SG2. The third portion P3 and the second signal line group SG2 are disposed such that the planar shape of the third portion P3 and the planar shape of a portion of the signal lines of the second signal line group SG2 interdigitate with each other. By arranging the third portion P3 and the signal lines of the second signal line group SG2 to interdigitate with each other, the area of the wiring area IS-NDA can be reduced.
[0143] The third portion P3 and the signal lines of the second signal line group SG2 are arranged to interlock with each other, which facilitates visual inspection. FIG. 8B shows an enlarged view of an area corresponding to one middle portion P300, where the third portion P3 and the middle portion P300 are not bent but are configured as straight lines, allowing visual inspection to be performed simultaneously. In other words, the third portion P3 and the middle portion P300 shown in FIGS. 8A and 8B provide a sufficient area for visual inspection. Visual inspection involves photographing the area corresponding to FIG. 8B and then detecting noise from the photographed image. Noise is determined to be a defect in the signal line.
[0144] FIG. 8B illustrates the second connection contact hole CNT-S described with reference to FIG. 6D. The second connection contact hole CNT-S is disposed in an end region of the second portion P20. The end region may be a region corresponding to a range of 0% to 10% and a range of 90% to 100% of the length of one second portion P20 in the second direction DR2. The second connection contact hole CNT-S may be determined as noise during visual inspection, but since the second connection contact hole CNT-S is not disposed in the central region of the second portion P20, the central region of the second portion P20 can be used as a visual inspection region.
[0145] Referring to FIG. 8C, a portion of the third portion P3 may not overlap the light-shielding region WP-NT. On a plane, the (k-1)th and kth extension portions P200 of the third portion P3 of the first signal line SL1-1 may not overlap the light-shielding region WP-NT. Referring to FIG. 8C, k is 5. The first and second extension portions P200 of the third portion P3 of the first signal line SL1-1 may overlap the light-shielding region WP-NT.
[0146] The portion of the third portion P3 that does not overlap the light-shielding region WP-NT may have a thicker line width than the portion that overlaps the light-shielding region WP-NT. The region where the third portion P3 having a thick line width is arranged has a relatively low density of the side surface of the metal layer described with reference to FIG. 6E, and therefore has a low scattering rate of external light.
[0147] FIG. 9A is a perspective view of a display module DM according to an embodiment of the present invention. FIG. 9B is a plan view of an input detection sensor ISL according to an embodiment of the present invention. FIG. 10A is a perspective view of a display module DM according to an embodiment of the present invention. FIG. 10B is a plan view of an input detection sensor ISL according to an embodiment of the present invention. FIG. 11A is a perspective view of a display module DM according to an embodiment of the present invention. FIG. 11B is a plan view of an input detection sensor ISL according to an embodiment of the present invention. Hereinafter, detailed description of the same configuration as that described with reference to FIGS. 1 to 8C will be omitted. FIGS. 9B, 10B, and 11B are illustrated based on FIG. 6B. The area where the light blocking pattern WP-BZ (see FIG. 7B) is arranged is illustrated darkly.
[0148] 9A to 11B, a "layer" type input detection sensor ISL is illustrated as an example. Although not illustrated, a display device according to an embodiment of the present invention may also include a "panel" type input detection sensor.
[0149] 9A, the display module DM has a concave notch area NTA defined on its inner side in a plan view. The display panel DP and the input detection sensor ISL each have a notch area NTA defined thereon, but the notch areas NTA may not be the same.
[0150] As shown in FIG. 9B, the notch region NTA causes the arrangement and configuration of the first electrode group EG1, the second electrode group EG2, the first signal line group SG1, and the second signal line group SG2 to be different from the arrangement and arrangement of the first electrode group EG1, the second electrode group EG2, the first signal line group SG1, and the second signal line group SG2 of the input detection sensor ISL in FIG. 6B.
[0151] As shown in Fig. 9B, the first to tenth signal lines SL1-1 to SL1-10 of the first signal line group SG1 are connected to one ends of the first to tenth electrodes IE1-1 to IE1-10 of the first electrode group EG1, respectively. The first to tenth signal lines SL1-1 to SL1-10 are connected to one ends of the first to tenth electrodes IE1-1 to IE1-10 where no notch region NTA is formed, i.e., the left ends in Fig. 9A. One ends of the first to tenth electrodes IE1-1 to IE1-10 are aligned in a line in the first direction DR1.
[0152] Due to the formation of the notch region NTA, some portions of the 1st to 10th electrodes IE1-1 to IE1-10 have shorter electrode lengths than the other portions. The 1st to pth (p is a natural number equal to or greater than 2 and less than i) electrodes have shorter electrode lengths than the (p+1)th to ith electrodes.
[0153] The other ends of the (p+1)th to i-th electrodes, i.e., the right ends in an embodiment of the present invention, are adjacent to the notch region NTA. The lengths of the (p+1)th to i-th electrodes may be the same, but are not limited to the configuration shown here. Depending on the shape of the notch region NTA, the lengths of the (p+1)th to i-th electrodes may be adjusted to be different from each other. In FIG. 9B, an example in which p is 9 is illustrated.
[0154] 9B, the first to eighth signal lines SL2-1 to SL2-8 of the second signal line group SG2 are connected to one ends of the first to eighth electrodes IE2-1 to IE2-8 of the second electrode group EG2, respectively. In an embodiment of the present invention, the one ends correspond to lower ends adjacent to the pad areas IS-PA1 and IS-PA2.
[0155] One ends of the first to eighth electrodes IE2-1 to IE2-8 are aligned in a row in the second direction DR2. Due to the formation of the notch region NTA, a portion of the first to eighth electrodes IE2-1 to IE2-8 has a shorter electrode length than the other portions. The first to q (where q is a natural number equal to or greater than 1 and less than j) electrodes have a shorter electrode length than the (q+1) to j electrodes. The other ends of the first to q electrodes, that is, the upper ends in one embodiment of the present invention, are adjacent to the notch region NTA.
[0156] In one embodiment of the present invention, the lengths of the (q+1)th to jth electrodes may be the same, but are not limited to the configuration shown here. Depending on the shape of the notch region NTA, the lengths of the (q+1)th to jth electrodes may be adjusted. In FIG. 9B, an example in which q is 2 is shown.
[0157] In one embodiment of the present invention, the first to tenth signal lines S of the first signal line group SG1 L1-1 to SL1-10 have shapes symmetrical with respect to the first to tenth signal lines SL1-1 to SL1-10 shown in Fig. 6B. The first to tenth signal lines SL2-1 to SL2-8 of the second signal line group SG2 have shapes symmetrical with respect to the first to tenth signal lines SL2-1 to SL2-8 shown in Fig. 6B.
[0158] In the embodiment of the present invention, the notch area NTA is illustrated as being disposed at the upper right corner, but the position of the notch area NTA may be changed to another corner area. For example, when the notch area NTA is disposed at the upper left corner, the first to tenth signal lines SL1-1 to SL1-10 of the first signal line group SG1 have the same arrangement and configuration as the first to tenth signal lines SL1-1 to SL1-10 illustrated in FIG. 6B.
[0159] As shown in Fig. 10A, the notch area NTA may be defined in a central area in the second direction DR2, but is not limited to being located in the center.
[0160] As shown in Fig. 10B, the shapes of the first electrode group EG1 and the second electrode group EG2 may be modified by the notch area NTA. The layout and arrangement of the first signal line group SG1 and the second signal line group SG2 are substantially the same as those of the input detection sensor ISL in Fig. 6B.
[0161] 10B, since the notch region NTA is formed, the tenth electrode IE1-10 can be divided into two parts. The two parts are connected by a dummy signal line DSL. The fourth to sixth electrodes IE2-4 to IE2-6 of the second electrode group EG2 have shorter electrode lengths than the other electrodes.
[0162] The dummy signal line DSL is disposed on a layer different from the third signal line group SG3. The dummy signal line DSL may be formed from one of the first layer SL-L1 and the second layer SL-L2, and the third signal line group SG3 may be formed from the other one.
[0163] As shown in Fig. 11A, a hole area HA is defined on a plane in the display module DM. A part of each of the display panel DP and the input detection sensor ISL is removed to define the hole area HA. The hole area HA of the display panel DP and the hole area HA of the input detection sensor ISL may not be the same. The hole area HA may be a passage for a light signal to move. A plurality of hole areas HA may be defined in the display module DM.
[0164] The hole area HA of the display panel DP corresponds to the light emitting areas PXA-R, PXA-G, and PXA-B (see FIG. 6F). The hole area HA of the input detection sensor ISL may be an area where the sensor units SP1 and SP2 are removed.
[0165] 11B, the shapes of the first electrode group EG1 and the second electrode group EG2 may be modified by the hole region HA. The arrangement and layout of the first signal line group SG1 and the second signal line group SG2 are substantially the same as those of the input detection sensor ISL of FIG. 6B.
[0166] The hall region HA of the input detection sensor ISL may be disposed in an intersection region of the first electrode group EG1 and the second electrode group EG2. In this case, a dummy signal line may be disposed around the hall region HA of the input detection sensor ISL. For example, the dummy signal line may connect the disconnected electrodes of the first electrode group EG1 and the second electrode group EG2 by bypassing the hall region HA.
[0167] As shown above, the present invention has been described with reference to preferred embodiments. However, a person skilled in the art or with ordinary knowledge in the art can understand that the present invention can be modified and changed in various ways without departing from the spirit and technical scope of the present invention as described in the claims below.
[0168] Therefore, the technical scope of the present invention should not be limited to the contents described in the detailed description of the specification, but should be defined only by the claims. [Explanation of symbols]
[0169] DD: Display device DM: Display Module DP-DA: Display Area DP-NDA: Non-display area DP: Display Panel EG1: First electrode group EG2: Second electrode group IS-CL1: 1st conductive layer IS-CL2: Second conductive layer IS-DA: Sensing Area IS-NDA: Wiring area IS-PA: Pad Area ISL: Input detection sensor P1: 1st part P2: 2nd part P3: 2nd part P10: Connection part P20, P200: Extension part P30, P300: Middle part P100: Standard part SG1: First signal line group SG2: Second signal line group
Claims
1. A window and a display panel disposed below the window; an input detection sensor disposed between the window and the display panel; The input detection sensor includes: A first electrode extending in a first direction; A second electrode extending in the first direction; a third electrode intersecting the first electrode and the second electrode and insulated from the first electrode and the second electrode; a first signal line electrically connected to one end of the first electrode; a second signal line electrically connected to one end of the second electrode; a third signal line electrically connected to a first end of the third electrode; each of the first signal line and the second signal line includes a first portion extending in the first direction, a second portion, and a third portion disposed between the first portion and the second portion and extending in a second direction intersecting the first direction; In the second direction, a first portion of the first signal line is disposed apart from a second portion of the first signal line, and the first portion of the second signal line and the second portion of the second signal line are disposed between the first portion of the first signal line and the second portion of the first signal line, the second portion of each of the first signal line and the second signal line includes at least two line portions and an intermediate portion disposed between two adjacent line portions of the at least two line portions; the at least two line portions extend in the first direction, and the intermediate portion extends in a third direction different from the first direction and the second direction; A display device, wherein the first electrode is closer to the first portion of the first signal line than the second electrode.
2. The window includes a light-shielding pattern and a base layer; the base layer includes a light-shielding region in which the light-shielding pattern is arranged, and a transmission region adjacent to the light-shielding region; The display device according to claim 1 , wherein at least a portion of each of the first signal line and the second signal line overlaps the light blocking pattern on a plane.
3. 2. The display device of claim 1, wherein each of the first signal line and the second signal line includes a first layer arranged below an insulating layer, and a second layer arranged above the insulating layer and connected to the first layer via a contact hole penetrating the insulating layer.
4. 2. The display device of claim 1, wherein each of the first signal line and the second signal line includes a first layer of titanium, an aluminum layer above the first layer of titanium, and a second layer of titanium above the aluminum layer.
5. The display device of claim 1 , wherein the first end of the third electrode is closer to the first portion of the first signal line than the second end of the third electrode.
6. the input detection sensor further includes a fourth signal line electrically connected to the second end of the third electrode, The display device of claim 5 , wherein the third signal line is shorter than the fourth signal line.
7. The third signal line is At least two line segments; an intermediate portion disposed between two adjacent line portions of the at least two line portions of the third signal line; The display device according to claim 6 , wherein the at least two line portions of the third signal line extend in the first direction, and the intermediate portion of the third signal line extends in the third direction.
8. The input detection sensor includes: a fourth electrode extending in the second direction; a fifth signal line electrically connected to a first end of the fourth electrode; a sixth signal line electrically connected to the second end of the fourth electrode; The display device of claim 1 , wherein the fourth electrode is disposed to the right of the third electrode.
9. the fifth signal line is shorter than the sixth signal line; The display device of claim 8 , wherein the fifth signal line is longer than the third signal line.
10. The fifth signal line is At least two line segments; an intermediate portion disposed between two adjacent line portions of the at least two line portions of the fifth signal line; the at least two line portions of the fifth signal line extend in the first direction; The display device of claim 9 , wherein the intermediate portion of the fifth signal line extends in the third direction.
11. The display device of claim 1 , wherein each of the first signal line and the second signal line further includes a fourth portion extending from the first portion in the second direction.
12. The window includes a light-shielding pattern and a base layer; the base layer includes a light-shielding region in which the light-shielding pattern is disposed and a transmission region adjacent to the light-shielding region, the display panel includes a non-display area corresponding to the light-shielding area and a display area corresponding to the light-transmitting area; the display area includes a light emitting area and a non-light emitting area adjacent to the light emitting area; The display device according to claim 1 , wherein each of the first electrode, the second electrode, and the third electrode has a mesh shape including an opening corresponding to the light-emitting region.
13. the display panel includes a circuit layer, a display element layer above the circuit layer, and a top insulating layer above the display element layer; The display device of claim 1 , wherein the input detection sensor is disposed directly on the top insulating layer.
14. The display device of claim 1 , wherein the first portion, the second portion, and the third portion have substantially the same line width.
15. The display device of claim 1 , wherein each of the display panel and the input detection sensor includes a notch region recessed inwardly on a plane.
16. The display device according to claim 1 , wherein each of the display panel and the input detection sensor includes a hole area, and the hole area of the display panel and the hole area of the input detection sensor are aligned on a plane.
17. The input detection sensor includes: A fourth electrode extending in the first direction; a fifth signal line electrically connected to one end of the fourth electrode, The display device of claim 1 , wherein the fourth electrode is disposed farther from the first portion of the first signal line than the second electrode.
18. The display device of claim 17 , wherein the fifth signal line has a smaller number of bent portions than the first signal line.
Citation Information
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