Display device and tiled display device including same
The introduction of an overcoating layer with a black pigment in display devices addresses the challenge of uniform coverage of side interconnect lines and via layers, enhancing manufacturing reliability and image quality.
Patent Information
- Application Number
- JP2024538957
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-01-27
- Filing Date
- 2022-09-13
- Publication Date
- 2025-05-22
- Estimated Expiration
- 2042-09-13
AI Technical Summary
Existing display devices face challenges in ensuring reliable and uniform coverage of side interconnect lines and exposed via layers, which can affect the image quality and manufacturing process variability.
A display device with an overcoating layer that includes a black pigment, covering the entire side interconnect lines and the exposed top surface of the via layers, is proposed. This overcoating layer is formed using a pad printing process, where the via layers act as dams to control the layer's edge and reduce process variations.
The implementation of the overcoating layer with a black pigment enhances the reliability of the manufacturing process by reducing process variations and improves image quality by minimizing light reflection from the side connection lines.
Smart Images

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Abstract
Description
[Technical field]
[0001] An embodiment of the present disclosure relates to a display device and a tiled display device including the same. [Background technology]
[0002] In recent years, as interest in information displays has increased, research and development of display devices has been continuously conducted. For example, a tiled display device in which a plurality of display devices are connected to each other to create a large-screen display device has been put to practical use. A tiled display device realizes a large screen by connecting a plurality of display panels having a predetermined size to each other.
[0003] The information provided in this Background section is intended to provide background information for the present disclosure and may include information that does not constitute prior art. Summary of the Invention [Problem to be solved by the invention]
[0004] One or more embodiments of the present disclosure relate to a display device that includes an overcoating layer that includes a black pigment. The overcoating layer can cover the entire side interconnect lines and the exposed top surface of the first via layer that is exposed from the second via layer.
[0005] One or more embodiments of the present disclosure relate to a tiled display device including the display device.
[0006] However, the aspects and features of the embodiments of the present disclosure are not limited to the above description, and may be variously expanded without departing from the spirit and scope of the present disclosure. [Means for solving the problem]
[0007] A display device according to one or more embodiments of the present disclosure includes a substrate including a display region and a non-display region around the display region, a transistor layer on a first surface of the substrate including transistors of a pixel circuit located in the display region, a pad portion electrically connected to the pixel circuit in the non-display region of the transistor layer, a first via layer on the transistor layer and separated from the pad portion, a second via layer on the first via layer having a step with the first via layer so as to expose a portion of an upper surface of the first via layer, and a second via layer on the second via layer exposing a portion of an upper surface of the second via layer. a third via layer having a step with the second via layer so as to form a third via layer on the third via layer in the display area; a display element layer including a light emitting element electrically connected to the transistor on the third via layer in the display area; a lead line located on the second surface of the substrate; a side connection line disposed on the first surface of the substrate, the second surface of the substrate, and one side surface of the substrate between the first surface and the second surface, electrically connecting the pad portion and the lead line to each other; and an overcoating layer covering the entire side connection line and overlapping the upper surface of the first via layer exposed from the second via layer.
[0008] According to an embodiment, one end of the overcoating layer may face one end of the second via layer.
[0009] According to an embodiment, the overcoating layer may overlap at least a portion of the exposed top surface of the second via layer, and one end of the overcoating layer may face one end of the third via layer.
[0010] According to an embodiment, the overcoating layer includes an insulating layer, the insulating layer directly contacting the side connection line, and the insulating layer may include a black pigment.
[0011] According to one embodiment, the transistor layer may include an interlayer insulating layer on the transistor in contact with the first via layer, and the interlayer insulating layer may include a portion exposed from the first via layer and the pad portion.
[0012] According to one embodiment, the display element layer may include a pixel electrode electrically connected to the light emitting element on the third via layer, and a protection layer on the pixel electrode and the pad portion exposing a part of an upper surface of the pixel electrode and a part of an upper surface of the pad portion. The protection layer may be in contact with the exposed part of the interlayer insulating layer, the first via layer, the second via layer, and the third via layer.
[0013] According to an embodiment, the side connection line may be located on the protective layer and overlap the exposed portion of the interlayer insulating layer.
[0014] According to an embodiment, one end of the overcoating layer may face one end of the second via layer across the protective layer.
[0015] According to one embodiment, on a plane, the one end of the second via layer may have a shape that extends linearly in a first direction.
[0016] According to one embodiment, the overcoating layer may overlap at least a portion of the exposed upper surface of the second via layer, and one end of the overcoating layer may face one end of the third via layer across the protective layer.
[0017] According to one embodiment, on a plane, the one end of the second via layer may have a shape that extends linearly in a first direction.
[0018] According to one embodiment, the display device may further include a first source metal layer on the transistor layer, the first source metal layer being covered by the first via layer in the display area, a second source metal layer located on the first via layer in the display area and covered by the second via layer, and a third source metal layer located on the second via layer in the display area and covered by the third via layer.
[0019] According to an embodiment, the pad unit may include a first pad electrode formed together with the first source metal layer, a second pad electrode formed together with the second source metal layer and directly formed on the first pad electrode, a third pad electrode formed together with the third source metal layer and directly formed on the second pad electrode, and a fourth pad electrode formed together with the pixel electrode and directly formed on the third pad electrode. A portion of each of the first to fourth pad electrodes may contact the protection layer.
[0020] According to one embodiment, the display element layer further includes a black anisotropic conductive film located on a portion of the overcoating layer and the protective layer in the display area, the black anisotropic conductive film including black pigment and fine conductive particles, and the light emitting element and the pixel electrode can be electrically connected to each other via the fine conductive particles.
[0021] According to an embodiment, the display device may further include a second surface electrode disposed on the second surface of the substrate, and a flexible film electrically connected to the second surface electrode via a conductive adhesive member. The side connection line may be electrically connected to the rear electrode via the lead line.
[0022] According to an embodiment, the light emitting device may be a flip chip type micro light emitting diode device.
[0023] A tiled display device according to an embodiment of the present disclosure may include a plurality of display devices and a coupling region between the plurality of display devices for coupling the plurality of display devices to each other. At least one of the plurality of display devices includes a substrate including a display region and a non-display region around the display region, a transistor layer on an upper surface of the substrate including transistors of pixel circuits located in the display region, a pad portion electrically connected to the pixel circuits in the non-display region of the transistor layer, a first via layer on the transistor layer and separated from the pad portion, a second via layer on the first via layer having a step with the first via layer to expose a portion of an upper surface of the first via layer, and a coupling region between the second via layer and the first via layer to expose a portion of an upper surface of the second via layer. The display element layer may include a third via layer having a step with the via layer, a display element layer including a light-emitting element electrically connected to the transistor on the third via layer in the display area, a lead line arranged on the second surface of the substrate, side connection lines arranged on the first surface of the substrate, the second surface of the substrate, and one side surface of the substrate between the first surface and the second surface, electrically connecting the pad portion and the lead line to each other, and an overcoating layer covering the entire side connection line and overlapping the upper surface of the first via layer exposed from the second via layer, and including a black pigment.
[0024] According to an embodiment, one end of the overcoating layer may face one end of the second via layer.
[0025] According to one embodiment, the overcoating layer may overlap at least a portion of the exposed upper surface of the second via layer, and one end of the overcoating layer may face one end of the third via layer.
[0026] According to an embodiment, the display element layer may include a pixel electrode electrically connected to the light emitting element on the third via layer, and a protective layer on the pixel electrode and the pad portion to expose a part of an upper surface of the pixel electrode and a part of an upper surface of the pad portion. The protective layer may be in contact with the first via layer, the second via layer, and the third via layer.
[0027] According to an embodiment, one end of the overcoating layer may face one end of the second via layer with the protection layer interposed therebetween.
[0028] According to an embodiment, each of the light emitting devices may be a flip-chip type micro light emitting diode device. Effect of the Invention
[0029] According to an embodiment of the present disclosure, a display device and a tiled display device including the same may include an overcoating layer covering the entire side connection wiring. The overcoating layer may be formed by being blocked by a dam formed by steps between via layers arranged in a stepped manner on a substrate. Thus, the overcoating layer may have an end portion that is blocked by the steps of the via layers in a non-display region on the substrate and extends uniformly in one direction, thereby reducing process capability (e.g., process variation) of the overcoating layer. For example, the process capability of the overcoating layer formed in a pad printing process may be reduced, thereby reducing the variation of a manufacturing process of a display device including the overcoating layer. Thus, the reliability of the manufacturing process of a display device and a tiled display device including the overcoating layer and the image quality may be improved.
[0030] However, the aspects and features of the present disclosure are not limited to the above-mentioned aspects and features, and may be variously expanded without departing from the spirit and scope of the present disclosure. [Brief description of the drawings]
[0031] The above and other aspects and features of the present disclosure will be more clearly understood from the following detailed description of illustrative, non-limiting embodiments thereof, taken in conjunction with the accompanying drawings.
[0032] [Figure 1] FIG. 1 illustrates a display device according to an embodiment of the present disclosure. [Diagram 2] FIG. 2 is a diagram showing an example of a pixel included in the display device of FIG. [Diagram 3] 1. FIG. 4 is a diagram showing another example of a pixel included in the display device of FIG. [Figure 4] FIG. 1 illustrates a tiled display device according to an embodiment of the present disclosure. [Diagram 5] FIG. 2 is a plan view showing an example of the display device of FIG. [Figure 6] FIG. 6 is a diagram (1) showing an example of a connection relationship between a pixel circuit and a light-emitting element included in the display device of FIG. 5. [Figure 7] 6 is a diagram (2) showing an example of a connection relationship between a pixel circuit and a light-emitting element included in the display device of FIG. 5. [Figure 8] 6 is a diagram showing an example of a pixel circuit region, a demux region, a fan-out region, an electrostatic discharge region, and a non-display region included in the display device of FIG. 5. [Figure 9] FIG. 9 is an enlarged view of an example of a portion of the electrostatic discharge region and fan-out region of FIG. 8. [Figure 10] FIG. 1 is a perspective view showing a display device according to an embodiment of the present disclosure. [Figure 11] 11 is a diagram showing an example of a part of the rear surface of the display device of FIG. [Figure 12] 11 is a cross-sectional view showing an example of the display device of FIG. [Figure 13a] 13 is a perspective view showing an example of side connection lines and via layers of the display device of FIG. 12. FIG. [Figure 13b] FIG. 11 is a perspective view showing an example of the display device of FIG. [Figure 14] 11 is a cross-sectional view showing an example of the display device of FIG. [Figure 15] 11 is a cross-sectional view showing an example of the display device of FIG. [Figure 16] 11 is a cross-sectional view showing an example of the display device of FIG. [Figure 17] 11 is a cross-sectional view showing an example of the display device of FIG. [Figure 18] 11A to 11C are diagrams illustrating an example of a method for forming an overcoating layer on the display device of FIG. [Figure 19] FIG. 11 is a diagram showing an example in which an overcoating layer is formed on the display device of FIG. [Figure 20] 11A to 11C are diagrams illustrating an example of a method for forming an overcoating layer on the display device of FIG. [Figure 21] 6 is a circuit diagram showing an example of a pixel included in the display device of FIG. 5. [Figure 22] 22 is a layout diagram showing an example of a pixel circuit included in the pixel of FIG. 21. [Figure 23] 5 is a cross-sectional view showing an example in which display devices included in the tiled display device of FIG. 4 are connected to each other. [Figure 24] FIG. 5 is a block diagram showing an example of the tiled display device of FIG. 4. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0033] Hereinafter, the embodiments will be described in more detail with reference to the accompanying drawings, and the same reference numerals throughout the specification refer to the same components. However, the present disclosure can be realized in various different forms and should not be construed as being limited to only the embodiments described herein. Rather, these embodiments are provided as examples so that the present disclosure is thorough and complete, and the aspects and features of the present disclosure can be fully conveyed to those skilled in the art. Therefore, processes, elements and techniques that are not necessary for a person having ordinary skill in the art to fully understand the aspects and features of the present disclosure may not be described. Unless otherwise stated, the same reference numerals throughout the accompanying drawings and the specification refer to the same components, and duplicate descriptions will be omitted.
[0034] If a particular embodiment is implemented differently, the order of certain processes may differ from that described, for example two steps described as successive may be performed simultaneously or substantially simultaneously, or may be performed in the reverse order from that described.
[0035] In the drawings, the relative sizes of components, layers, and regions may be exaggerated and / or simplified for clarity. Spatially relative terms such as "below," "above," and the like may be used herein to easily describe the relationship of one component or feature to another. It will be understood that the spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation shown in the drawings. For example, if the device is inverted in the drawings, an element described as "below" would be oriented "above" the other components or features. Thus, the exemplary term "below" can include both an up and down orientation. The device can be oriented differently (e.g., rotated 90 degrees or in other orientations) and the spatially relative descriptors used herein should be interpreted accordingly.
[0036] In the drawings, the x-axis, y-axis, and z-axis are not limited to the three axes of a Cartesian coordinate system, but may be interpreted in a broader sense, for example, the x-axis, y-axis, and z-axis may represent different directions that are perpendicular or substantially perpendicular to each other, or that are not perpendicular to each other.
[0037] In this specification, terms such as "first", "second", "third", etc. may be used to describe various components, elements, regions, layers, and / or sections, but it will be understood that such components, elements, regions, layers, and / or sections should not be limited by such terms. Such terms are used to distinguish one component, element, region, layer, or section from another component, element, region, layer, or section. Thus, a first element, component, region, layer, or section described below can be referred to as a second element, component, region, layer, or section without departing from the spirit and scope of the present invention.
[0038] When an element or layer is referred to as being "coupled" or "bonded" to another element or layer, it will be understood that it can be directly coupled or bonded to the other element or layer, or that one or more intervening elements or layers may be present. Similarly, when a layer, region, or element is referred to as being "electrically coupled" to another layer, region, or element, it can be directly electrically coupled to the other layer, region, or element, or it can be indirectly electrically coupled by having one or more intermediate layers, regions, or elements therebetween. Also, when an element or layer is referred to as being between two elements or layers, it will be understood that it may be the only element or layer between the two elements or layers, or that there may be one or more intermediate elements or layers.
[0039] The terms used herein are for the purpose of describing particular embodiments and are not intended to limit the invention. As used herein, the singular forms "a," "an," and "the" are intended to include the plural forms unless the context clearly dictates otherwise. As used herein, "comprises" and "comprises" specify the presence of the stated features, constants, steps, operations, elements, and / or components, but are understood not to exclude the presence or addition of one or more other features, constants, and / or components. steps, operations, elements, components, and / or groups thereof. As used herein, "and / or" includes any and all combinations of one or more of the associated list items. For example, the phrase "A and / or B" refers to A, B, or A and B. A phrase such as "at least one or more" preceding a list of elements modifies the entire list of elements and not the individual elements of the list. For example, "at least one of a, b, c," "at least one of a, b, c," and "at least one selected from the group consisting of a, b, c" refer to a, b, c, a and b, a and c, b and c, a, b, and c, and variations thereof.
[0040] As used herein, the terms "substantially," "slightly," and similar terms are used as terms of approximation, rather than degree, to account for inherent variations in measured or calculated values that one of ordinary skill in the art would recognize. Additionally, the use of "may" in describing embodiments of the present invention means "one or more embodiments of the present invention." As used herein, the term "use" may be considered synonymous with the term "utilize." Additionally, the term "exemplary" is intended to refer to an example or drawing.
[0041] Electronic or electrical devices and / or other related devices or components according to embodiments of the invention described herein may be embodied using any suitable hardware, firmware (e.g., application specific integrated circuits), software, or a combination of software, firmware, and hardware. The various components of such devices may be formed, for example, on a single integrated circuit (IC) chip or on separate integrated circuit chips. Also, the various components of such devices may be embodied on a flexible printed circuit film, a tape carrier package (TCP), a printed circuit board (PCB), or on a single substrate. Furthermore, the various components of such devices may be processes or threads that run on one or more processors and interact with other system components in one or more computing devices to execute computer program instructions and perform various functions described herein. The computer program instructions are stored in a memory that may be embodied in the computing device using standard memory devices such as, for example, a random access memory (RAM). The computer program instructions may also be stored on other non-transitory computer readable media such as, for example, a CD-ROM, a flash drive, or the like. Further, those skilled in the art should recognize that the functionality of the various computing devices of the embodiments of the present disclosure may be combined or integrated into one computing device, or the functionality of a particular computing device may be distributed across one or more other computing devices without departing from the spirit and scope of the exemplary embodiments.
[0042] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. Furthermore, terms that are the same as those defined in commonly used dictionaries should be interpreted as having a meaning consistent with the meaning in the context of the relevant art and / or this specification unless expressly defined herein, and should not be interpreted in an idealized or overly formal sense.
[0043] FIG. 1 is a diagram showing a display device according to an embodiment of the present disclosure, FIG. 2 is a diagram showing an example of a pixel included in the display device of FIG. 1, and FIG. 3 is a diagram showing another example of a pixel included in the display device of FIG. 1.
[0044] 1, 2 and 3, a display device 1 can include a pixel PX.
[0045] The display device 1 is a device that displays moving images and / or still images, and can be used as a display screen for various suitable products, including not only portable electronic devices such as mobile phones, smart phones, tablet personal computers (PCs), smart watches, watch phones, mobile communication terminals, electronic organizers, e-books, portable multimedia players (PMPs), navigation systems, and Ultra Mobile PCs (UMPCs), but also televisions, notebook computers, monitors, billboards, and Internet of Things (IOT) devices.
[0046] The display device 1 (or the display panel) may be formed in a rectangular plane having a long side extending in a first direction DR1 and a short side extending in a second direction DR2 intersecting with the first direction DR1. A corner where the long side extending in the first direction DR1 and the short side extending in the second direction DR2 intersect may be rounded with an appropriate curvature (e.g., a predetermined curvature) or formed at a right angle. The planar shape of the display device 1 is not limited to a rectangle, and may be formed in other appropriate polygonal, circular, or elliptical shapes. The display device 1 may be a flat or substantially flat display device, but the embodiments of the present disclosure are not limited thereto. For example, the display device 1 may include curved surface portions formed at the left and right ends and having a constant curvature or a varying curvature. In addition, the display device 1 may be formed to be flexible so that it can be bent, flexed, bent, folded, or rolled.
[0047] Each of the pixels PX may be expressed as a unit pixel UP, for example, as shown in Figures 2 and 3. Each of the unit pixels UP may include first, second, and third pixels SP1, SP2, and SP3. Although Figures 2 and 3 illustrate that the unit pixel UP includes three pixels SP1, SP2, and SP3, the embodiment of the present disclosure is not limited thereto.
[0048] The first pixel SP1, the second pixel SP2, and the third pixel SP3 can emit light in different colors. Each of the first pixel SP1, the second pixel SP2, and the third pixel SP3 can have a rectangular, square, or diamond-shaped planar shape. For example, each of the first pixel SP1, the second pixel SP2, and the third pixel SP3 may have a rectangular planar shape having a short side extending in a first direction DR1 and a long side extending in a second direction DR2, as shown in FIG. 2. As another example, each of the first pixel SP1, the second pixel SP2, and the third pixel SP3 may have a square or diamond-shaped planar shape, as shown in FIG. 3.
[0049] In one embodiment, as shown in FIG. 2, the first pixel SP1, the second pixel SP2, and the third pixel SP3 may be arranged along a first direction DR1.
[0050] In another embodiment, the first pixel SP1, the second pixel SP2, and the third pixel SP3 may be arranged along a first direction DR1, and the remaining one and the first pixel SP1 may be arranged along a second direction DR2. For example, as shown in FIG 3, the second pixel SP2 may be arranged in the first direction DR1 relative to the first pixel SP1, and the third pixel SP3 may be arranged in the second direction DR2 relative to the first pixel SP1.
[0051] The first pixel SP1 can emit a first light, the second pixel SP2 can emit a second light, and the third pixel SP3 can emit a third light. The first light can be light in a red wavelength band, the second light can be light in a green wavelength band, and the third light can be light in a blue wavelength band. The red wavelength band can be a wavelength band of about 600 nm to 750 nm, the green wavelength band can be a wavelength band of about 480 nm to 560 nm, and the blue wavelength band can be a wavelength band of about 370 nm to 460 nm, but the embodiments of the present disclosure are not limited thereto.
[0052] Each of the first pixel SP1, the second pixel SP2, and the third pixel SP3 may include an inorganic light-emitting element having an inorganic semiconductor as a light-emitting element that emits light. For example, the inorganic light-emitting element may be a flip chip type micro LED (Light Emitting Diode), but the embodiment of the present disclosure is not limited thereto.
[0053] 2 and 3, the area of the first pixel SP1, the area of the second pixel SP2, and the area of the third pixel SP3 may be the same or substantially the same, but the embodiments of the present disclosure are not limited thereto. The area of a pixel can be understood as the planar area of a light-emitting element (or light source) included in the pixel, or the planar area of a light-emitting region of the light-emitting element.
[0054] At least one of the areas of the first pixel SP1, the second pixel SP2, and the third pixel SP3 may be different from the others. As another example, any two of the areas of the first pixel SP1, the second pixel SP2, and the third pixel SP3 may be the same or substantially the same, and the remaining one may be different from the two. As another example, the areas of the first pixel SP1, the second pixel SP2, and the third pixel SP3 may be different from each other.
[0055] FIG. 4 is a diagram illustrating a tiled display device according to an embodiment of the present disclosure.
[0056] Referring to FIG. 4, a tiled display device TD may include multiple display devices 10-1, 10-2, 10-3, 10-4.
[0057] The display devices 10-1, 10-2, 10-3, and 10-4 may be arranged in a lattice pattern, but the embodiment of the present disclosure is not limited thereto. The display devices 10-1, 10-2, 10-3, and 10-4 may be connected to each other in a first direction DR1 (e.g., the X-axis direction) or a second direction DR2 (e.g., the Y-axis direction), so that the tiled display device TD may have a suitable shape (e.g., a predetermined specific shape). For example, each of the display devices 10-1, 10-2, 10-3, and 10-4 may have the same or substantially the same size as each other, but the embodiment of the present disclosure is not limited thereto. As another example, at least some of the display devices 10-1, 10-2, 10-3, and 10-4 may have a size different from the rest.
[0058] The display devices 10-1, 10-2, 10-3, and 10-4 may include first to fourth display devices 10-1, 10-2, 10-3, and 10-4. The number and coupling relationship between the display devices 10-1, 10-2, 10-3, and 10-4 are not limited to the embodiment shown in Fig. 4. The number of the display devices 10-1, 10-2, 10-3, and 10-4 may be determined according to the size of the display devices 10-1, 10-2, 10-3, and 10-4 and / or the size of the tiled display device TD.
[0059] The first to fourth display devices 10-1, 10-2, 10-3, and 10-4 are fixed to a mounting frame (for example, a predetermined mounting frame) to realize a large-screen image.
[0060] Each of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may have a rectangular shape including a long side and a short side. The first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may be arranged such that the long sides or the short sides are connected to each other. Some of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may be arranged on an edge of the tiled display device TD to form one side of the tiled display device TD. Other parts of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may be arranged on a corner of the tiled display device TD to form two adjacent sides of the tiled display device TD. Still other parts of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may be arranged inside the tiled display device TD to be surrounded by other display devices (e.g., surrounding display devices).
[0061] Each of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may include a display area DA and a non-display area NDA. The display area DA may include the unit pixel UP and may display an image. Each of the unit pixels UP may include first, second, and third pixels SP1, SP2, and SP3. Each of the first, second, and third pixels SP1, SP2, and SP3 may include a micro light emitting diode (Micro LED). However, the embodiment of the present disclosure is not limited thereto, and each of the first, second, and third pixels SP1, SP2, and SP3 may include one of an organic light emitting diode (Organic Light Emitting Diode) including an organic light emitting layer, a quantum dot light emitting element (Quantum Dot LED) including a quantum dot light emitting layer, and an inorganic light emitting diode (Inorganic LED) including an inorganic semiconductor. In the following, for convenience of explanation, it is assumed that each of the first, second, and third pixels SP1, SP2, and SP3 includes a micro light emitting diode.
[0062] The non-display area NDA is disposed on the periphery of the display area DA and may surround at least a portion of the display area DA (for example, may surround the periphery). The non-display area NDA may not display an image.
[0063] The first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may include first, second, and third pixels SP1, SP2, and SP3 arranged along a plurality of rows and columns in the display area DA. Each of the first, second, and third pixels SP1, SP2, and SP3 may include a light-emitting region or an aperture region defined by a pixel definition film or a bank, and may emit light having a desired peak wavelength (e.g., a predetermined peak wavelength) through the light-emitting region or the aperture region. The light-emitting region may be a region where light generated by a light-emitting element of each of the first, second, and third pixels SP1, SP2, and SP3 is emitted to the outside of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4.
[0064] The first, second and third pixels SP1, SP2 and SP3 may be repeatedly arranged in sequence along a first direction DR1 of the display area DA.
[0065] The tiled display device TD may have a planar shape as a whole, but is not limited thereto. The tiled display device TD may have a three-dimensional shape to give a user a three-dimensional feeling. For example, when the tiled display device TD has a three-dimensional shape, at least a part of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may have a curved shape. As another example, each of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may have a planar shape and may be connected to each other at an appropriate angle (e.g., a predetermined angle), so that the tiled display device TD may have a three-dimensional shape.
[0066] The tiled display device TD may include a bonding region SM disposed between the display regions DA. The tiled display device TD may be formed by connecting the non-display regions NDA of adjacent display devices. The first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may be connected to each other via a bonding member or adhesive member disposed in the bonding region SM (e.g., within or on the bonding region SM).
[0067] The distance between the display areas DA of the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 may be small or minimized so that the coupling area SM is not recognized by a user. For example, a first horizontal pixel pitch HPP1 between the pixels of the first display device 10-1 and the pixels of the second display device 10-2 may be the same as or substantially the same as a second horizontal pixel pitch HPP2 between the pixels of the second display device 10-2. A first vertical pixel pitch VPP1 between the pixels of the first display device 10-1 and the pixels of the third display device 10-3 may be the same as or substantially the same as a second vertical pixel pitch VPP2 between the pixels of the third display device 10-3.
[0068] Therefore, the tiled display device TD prevents or substantially prevents the coupling areas SM between the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 from being recognized by the user, thereby improving (e.g., reducing) the sense of disconnection between the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 and improving the immersiveness of the image.
[0069] FIG. 5 is a plan view illustrating an example of the display device of FIG.
[0070] 4 and 5, the display device 10 can include a display area DA and a non-display area NDA.
[0071] The first to fourth display devices 10-1, 10-2, 10-3, and 10-4 in FIG. 4 may have the same or substantially the same (or similar) configuration as the display device 10 shown in FIG.
[0072] In one embodiment, the display area DA may include a pixel circuit area CCA, a demux area DMA, a fan-out area FOA, and an electrostatic discharge area ESA. In one embodiment, the demux area DMA, the fan-out area FOA, and the electrostatic discharge area ESA may be disposed on at least one edge of the display area DA.
[0073] 5 shows the demux area DMA, the fan-out area FOA, and the electrostatic discharge area ESA as being disposed at the upper edge of the display area DA, but the locations of these are not limited thereto. As another example, at least one of the demux area DMA, the fan-out area FOA, and the electrostatic discharge area ESA may further be disposed at at least one of the lower edge, the left edge, and the right edge of the display device 10.
[0074] The non-display area NDA may include a plurality of pad parts PAD. In one embodiment, the pad parts PAD may electrically connect various driving circuits disposed on the rear surface of the display device 10 to the circuits of the display area DA via signal lines (e.g., predetermined signal lines).
[0075] The unit pixel UP may include first, second, and third pixels SP1, SP2, and SP3. The first, second, and third pixels SP1, SP2, and SP3 may each include a first pixel electrode ETL1 (e.g., an anode AND or pixel electrode) and a second pixel electrode ETL2 (e.g., a cathode CTD or common electrode). For example, in each pixel row, the first and second pixel electrodes ETL1, ETL2 of the first pixel SP1, the first and second pixel electrodes ETL1, ETL2 of the second pixel SP2, and the first and second pixel electrodes ETL1, ETL2 of the third pixel SP3 may be arranged repeatedly along the first direction DR1.
[0076] The first pixel SP1 may include a first light emitting element ED1 electrically connected to the first pixel electrode ETL1 and the second pixel electrode ETL2, and may further include a first pixel circuit PC1 electrically connected to the first light emitting element ED1 via the first pixel electrode ETL1 included therein.
[0077] The second pixel SP2 may include a second light emitting element ED2 electrically connected to the first pixel electrode ETL1 and the second pixel electrode ETL2. The second pixel SP2 may further include a second pixel circuit PC2 electrically connected to the second light emitting element ED2 via the first pixel electrode ETL1 included therein.
[0078] The third pixel SP3 may include a third light emitting element ED3 electrically connected to the first pixel electrode ETL1 and the second pixel electrode ETL2. The third pixel SP3 may further include a third pixel circuit PC3 electrically connected to the third light emitting element ED3 via the first pixel electrode ETL1 included therein.
[0079] In one embodiment, the first light-emitting element ED1, the second light-emitting element ED2, and the third light-emitting element ED3 may be disposed on the corresponding first pixel electrode ETL1 and second pixel electrode ETL2, and may be positioned overlapping each other. The first pixel circuit PC1, the second pixel circuit PC2, and the third pixel circuit PC3 may be disposed below (or directly below) the first pixel electrode ETL1 and the second pixel electrode ETL2.
[0080] For ease of explanation, the first and second pixel electrodes ETL1, ETL2 and / or the first light-emitting element ED1 of the first pixel SP1 will be referred to as the first pixel SP1 in the drawings. Similarly, the first and second pixel electrodes ETL1, ETL2 and / or the second light-emitting element ED2 of the second pixel SP2 will be referred to as the second pixel SP2, and the first and second pixel electrodes ETL1, ETL2 and / or the third light-emitting element ED3 of the third pixel SP3 will be referred to as the third pixel SP3. Also, each of the unit pixels UP will be described assuming a configuration including the first, second, and third pixels SP1, SP2, and SP3 defined above.
[0081] 5 shows one light emitting element disposed in one pixel, but the embodiment of the present disclosure is not limited thereto. For example, each of the first, second and third pixels SP1, SP2 and SP3 may include at least two light emitting elements. For example, each of the first, second and third pixels SP1, SP2 and SP3 may include a main light emitting element and a repair light emitting element.
[0082] Meanwhile, the first, second and third pixels SP1, SP2, SP3 may be disposed in (eg, within or on) the electrostatic discharge area ESA, the fan-out area FOA, the demux area DMA, and the pixel circuit area CCA.
[0083] The unit pixels UP may be arranged to have a uniform or substantially uniform pixel pitch. For example, the pixel pitch (e.g., horizontal interval) between adjacent unit pixels UP in the first direction DR1 may be uniform or substantially uniform. Also, the pixel pitch (e.g., vertical interval) between adjacent unit pixels UP in the second direction DR2 may be uniform or substantially uniform.
[0084] The unit pixels UP may be arranged along a plurality of pixel rows and a plurality of pixel columns (e.g., unit pixel columns). For example, the first, second and third pixels SP1, SP2 and SP3 may be arranged in the first to ninth pixel rows PROW1, PROW2, PROW3, PROW4, PROW5, PROW6, PROW7, PROW8 and PROW9. The first to ninth pixel rows PROW1, PROW2, PROW3, PROW4, PROW5, PROW6, PROW7, PROW8 and PROW9 may be sequentially arranged along the second direction DR2. Since the first to ninth pixel rows PROW1, PROW2, PROW3, PROW4, PROW5, PROW6, PROW7, PROW8, and PROW9 including the actual light emitting areas are arranged at uniform or substantially uniform intervals to reduce or minimize the appearance of foreign textures in an image, the first to ninth pixel rows PROW1, PROW2, PROW3, PROW4, PROW5, PROW6, PROW7, PROW8, and PROW9 may be arranged at substantially the same intervals. Furthermore, as shown in FIG 4, all pixel rows may be arranged at uniform intervals.
[0085] The pixel circuit PC may be disposed in (e.g., in or on) the pixel circuit area CCA. The pixel circuit PC may include a first, a second, and a third pixel circuit PC1, PC2, PC3. The first pixel circuit PC1 may supply a driving current to the first light-emitting element ED1 of the first pixel SP1, the second pixel circuit PC2 may supply a driving current to the second light-emitting element ED2 of the second pixel SP2, and the third pixel circuit PC3 may supply a driving current to the third light-emitting element ED3 of the third pixel SP3.
[0086] The pixel circuits PC may be arranged along a circuit row. The first, second and third pixel circuits PC1, PC2 and PC3 may be repeatedly arranged in the first to ninth circuit rows CROW1, CROW2, CROW3, CROW4, CROW5, CROW6, CROW7, CROW8 and CROW9 along the first direction DR1. The first to ninth circuit rows CROW1, CROW2, CROW3, CROW4, CROW5, CROW6, CROW7, CROW8 and CROW9 may be sequentially arranged along the second direction DR2.
[0087] The first pixel row PROW1 may be disposed at the outermost edge (eg, the uppermost edge) of the display area DA. The first pixel row PROW1 may be disposed at one side edge or an upper edge of the display area DA.
[0088] The electrostatic discharge circuit of the electrostatic discharge area ESA may be disposed in (e.g., inside or on) a layer different from that of the first, second, and third pixels SP1, SP2, SP3 (e.g., the first pixel electrode ETL1 and the second pixel electrode ETL2). In one embodiment, the first pixel row PROW1 may overlap the electrostatic discharge area ESA. This can minimize or reduce the area of the non-display area NDA.
[0089] The first pixel row PROW1 and the first circuit row CROW1 may be electrically connected, for example, the pixels SP1, SP2, and SP3 of the first pixel row PROW1 may be connected to the pixel circuits PC1, PC2, and PC3 of the first circuit row CROW1, respectively.
[0090] In one embodiment, the first pixel row PROW1 and the first circuit row CROW1 may be spaced apart in the second direction DR2 with a predetermined different configuration therebetween. For example, the second pixel row PROW2 may be disposed between the first pixel row PROW1 and the first circuit row CROW1. Also, in one embodiment, the fan-out region FOA may be disposed between the first pixel row PROW1 and the first circuit row CROW1. The fan-out line of the fan-out region FOA may be disposed in a layer different from (for example, inside or above) the first, second, and third pixels SP1, SP2, SP3. That is, the fan-out region FOA may be disposed inside the display region DA to minimize the non-display area NDA.
[0091] The fan-out lines of the fan-out area FOA may be formed in (e.g., inside or on) the same layer as the pixel circuits PC. For example, the fan-out lines may be formed in (e.g., inside or on) a space in which the first circuit row CROW1 in the display area DA should be originally disposed. In addition, since the first pixel row PROW1 and the second pixel row PROW2 must be maintained at the same interval or substantially the same interval as the other pixel rows, the first circuit row CROW1 may be disposed below (or inside) the second pixel row PROW2.
[0092] The second pixel row PROW2 may be disposed inside the display area DA relative to the first pixel row PROW1, and may be disposed inside the edge. In one embodiment, the second pixel row PROW2 may overlap the fan-out area FOA.
[0093] The second pixel row PROW2 and the second circuit row CROW2 may be spaced apart in the second direction DR2. In one embodiment, the first circuit row CROW1 and the third pixel row PROW3 may be disposed between the second pixel row PROW2 and the second circuit row CROW2.
[0094] In one embodiment, the second circuit row CROW2 may be disposed between the third pixel row PROW3 and the fourth pixel row PROW4. The second pixel row PROW2 and the second circuit row CROW2 may be electrically connected. For example, the pixels SP1, SP2, and SP3 of the second pixel row PROW2 may be connected to the pixel circuits PC1, PC2, and PC3 of the second circuit row CROW2, respectively.
[0095] In one embodiment, a demux area DMA including a demux DMX may be disposed between the second pixel row PROW2 and the first circuit row CROW1. The demux DMX may supply a data signal (or a data voltage) provided from the fan-out line to a corresponding data line in a time-division manner.
[0096] The DEMUX DMX may be formed in (for example, inside or above) the same layer as the pixel circuit PC. For example, the DEMUX DMX may be formed in a space where the second circuit row CROW2 should be disposed. In addition, since the second pixel row PROW2 and the third pixel row PROW3 must be maintained at the same or substantially the same interval as the other pixel rows, the second circuit row CROW2 may be disposed below (or inside) the third pixel row PROW3.
[0097] The third pixel row PROW3 may be disposed inside the display area DA relative to the second pixel row PROW2, and may be disposed inside the edge. The third pixel row PROW3 and the third circuit row CROW3 may be spaced apart in the second direction DR2. The second circuit row CROW2 may be disposed between the third pixel row PROW3 and the third circuit row CROW3. The third pixel row PROW3 and the third circuit row CROW3 may be electrically connected to each other. For example, the pixels SP1, SP2, and SP3 of the third pixel row PROW3 may be connected to the pixel circuits PC1, PC2, and PC3 of the third circuit row CROW3, respectively.
[0098] The fourth and fifth pixel rows PROW4 and PROW5 may be disposed inside the display area DA relative to the third pixel row PROW3, and may be disposed inside the edge. The fourth pixel row PROW4 and the fourth circuit row CROW4 may be adjacent to each other in the second direction DR2, and the fifth pixel row PROW5 and the fifth circuit row CROW5 may be adjacent to each other in the second direction DR2. In one embodiment, the fourth and fifth circuit rows CROW4 and CROW5 may be disposed between the fourth pixel row PROW4 and the fifth pixel row PROW5. The fourth circuit row CROW4 and the fifth circuit row CROW5 may be electrically connected to the fourth pixel row PROW4 and the fifth pixel row PROW5, respectively.
[0099] The sixth and seventh pixel rows PROW6 and PROW7 may be disposed inside the display area DA relative to the fifth pixel row PROW5, and may be disposed inside the edge. The sixth and seventh pixel rows PROW6 and PROW7 may be disposed in (e.g., inside or on) the pixel circuit area CCA. The sixth pixel row PROW6 and the sixth circuit row CROW6 may be adjacent to each other in the second direction DR2, and the seventh pixel row PROW7 and the seventh circuit row CROW7 may be adjacent to each other in the second direction DR2. The sixth and seventh circuit rows CROW6 and CROW7 may be disposed between the sixth pixel row PROW6 and the seventh pixel row PROW7. The sixth circuit row CROW6 and the seventh circuit row CROW7 may be electrically connected to the sixth pixel row PROW6 and the seventh pixel row PROW7, respectively.
[0100] As described above, each pixel row may maintain a uniform or substantially uniform distance from an adjacent pixel row, so that a space sufficient for two circuit rows to be arranged may be formed between the fifth pixel row PROW5 and the sixth pixel row PROW6. A signal line (e.g., a predetermined signal line) may be arranged / extended in the space. For example, a stage of a gate driver may be arranged in the empty space between the two pixel rows.
[0101] The arrangement and configuration of the eighth and ninth pixel rows PROW8, PROW9 and the eighth and ninth circuit rows CROW8, CROW9 may be the same as or substantially the same as the arrangement and configuration of the sixth and seventh pixel rows PROW6, PROW7 and the sixth and seventh circuit rows CROW6, CROW7.
[0102] In addition, a space large enough for two circuit rows to be arranged can be formed between the seventh pixel row PROW7 and the eighth pixel row PROW8.
[0103] In one embodiment, a gate driver that outputs a gate signal for driving the pixel circuit PC may be disposed within (or on) the pixel circuit area CCA. For example, a stage of the gate driver may be disposed in an empty space where the first, second, and third pixel circuits PC1, PC2, and PC3 are not disposed.
[0104] In this manner, the demux area DMA, the fan-out area FOA, and the electrostatic discharge area ESA can be included in the display area DA by changing the positions of the first to third circuit rows CROW1, CROW2, and CROW3 in the display area DA of the display device 10. Therefore, the non-display area NDA of the display device 10 can be minimized or reduced.
[0105] Furthermore, the tiled display device TD can be designed such that the pixel pitch between adjacent display devices 10 is the same or substantially the same as the pixel pitch inside each of the display devices 10 by reducing the distance between the display devices 10 through minimization or reduction of the non-display areas NDA. This prevents or minimizes the user from recognizing the joining areas SM between the display devices 10, improves the sense of disconnection between the display devices 10, and improves the immersiveness of the image.
[0106] 6 and 7 are diagrams showing an example of a connection relationship between pixel circuits and light emitting elements included in the display device of FIG.
[0107] 5, 6 and 7, the pixel SP may include a pixel circuit PC, first and second pixel electrodes ETL1, ETL2, and a light-emitting element ED.
[0108] In one embodiment, the light-emitting element ED may be in contact with and disposed on the first and second pixel electrodes ETL1, ETL2. For example, the first pixel electrode ETL1 may be connected to the light-emitting element ED as an anode, and the second pixel electrode ETL2 may be connected to the light-emitting element ED as a cathode.
[0109] In addition, the first pixel electrode ETL1 may be electrically connected to a pixel circuit PC. For example, the first pixel electrode ETL1 may be connected to a transistor TFT of the pixel circuit PC. The pixel circuit PC may include a plurality of transistors and at least one capacitor. For example, the pixel circuit PC may have a circuit configuration equivalent to that shown in FIG. 21.
[0110] In one embodiment, the pixel circuit PC may be disposed below the light emitting element ED in a plan view, as shown in Fig. 6. For example, the pixel SP in Fig. 6 may be applied to the connection relationship between the fourth pixel row PROW4 and the fourth circuit row CROW4.
[0111] In one embodiment, the pixel circuit PC may be disposed above the light emitting element ED in a plan view, as shown in Fig. 7. For example, the pixel SP in Fig. 7 may be applied to the connection relationship between the fifth pixel row PROW5 and the fifth circuit row CROW5.
[0112] FIG. 8 is a diagram showing an example of a pixel circuit region, a demux region, a fan-out region, an electrostatic discharge region, and a non-display region included in the display device of FIG.
[0113] 5 and 8, each of the display devices 10 can include a display area DA and a non-display area NDA. For convenience of explanation, pixel rows are not shown in FIG.
[0114] The display area DA may include an electrostatic discharge area ESA, a fan-out area FOA, a demux area DMA, and a pixel circuit area CCA. In one embodiment, the electrostatic discharge area ESA, the fan-out area FOA, and the demux area DMA may be disposed on at least one edge of the display area DA. For example, the electrostatic discharge area ESA, the fan-out area FOA, and the demux area DMA may be disposed on the upper edge of the display area DA. As another example, the electrostatic discharge area ESA, the fan-out area FOA, and the demux area DMA may be disposed on the left and right edges or the upper and lower edges. As yet another example, at least one of the electrostatic discharge area ESA, the fan-out area FOA, and the demux area DMA may be disposed on at least one edge of the display device 10 (for example, inside or on). The non-display area NDA may include a pad part PAD.
[0115] The electrostatic discharge area ESA may include an electrostatic discharge circuit ESD. In one embodiment, the electrostatic discharge circuit ESD may overlap at least a portion of the first, second and third pixels SP1, SP2, SP3 of the first pixel row PROW1.
[0116] The electrostatic discharge circuit ESD can protect the fan-out line FOL, the demax DMX, and the pixel circuit PC from static electricity. The electrostatic discharge circuit ESD can discharge static electricity flowing in from the outside and prevent static electricity from flowing in to the display area DA.
[0117] The fan-out area FOA may include a fan-out line FOL. In one embodiment, the fan-out line FOL may overlap the first, second, and third pixels SP1, SP2, SP3 of the second pixel row PROW2.
[0118] In one embodiment, the fan-out line FOL can extend from the pad section PAD to the DEMUX DMX. The fan-out line FOL can supply the data voltage (data signal) received from the pad section PAD to the DEMUX DMX.
[0119] In one embodiment, the fan-out line FOL may extend from the pad unit PAD to the pixel circuit area CCA. The fan-out line FOL can supply a clock signal received from the pad unit PAD to a clock line for driving the gate driver, and can supply a power supply voltage or a control voltage received from the pad unit PAD to a voltage line (e.g., a predetermined voltage line) for driving the gate driver.
[0120] The demux area DMA can include a demux DMX. The demux DMX can supply the data voltage received from the fan-out line FOL to the first, second, and third data lines DL1, DL2, and DL3 in a time-division manner. By including the demux DMX, each of the display devices 10 can reduce the number of the fan-out lines FOL and reduce the area of the fan-out area FOA.
[0121] The pixel circuit area CCA may include the data lines DL, and may further include gate lines and gate drivers for driving the pixel circuits PC.
[0122] The data lines DL may be connected between the DEMUX DMX and the pixel circuits PC. The data lines DL may extend in a second direction DR2 and be spaced apart from each other in a first direction DR1. The data lines DL may supply a data voltage received from the DEMUX DMX to the pixel circuits PC. The data lines DL may include the first, second, and third data lines DL1, DL2, and DL3.
[0123] The first data lines DL1 may be connected to the first pixel circuits PC1 of the corresponding pixel columns, and may sequentially supply data voltages to the first pixel circuits PC1 arranged in each of the pixel columns. Here, the pixel columns may correspond to an arrangement of unit pixels UP, which are composed of first, second and third pixels SP1, SP2 and SP3, along the second direction DR2.
[0124] The second data line DL2 may be connected to the second pixel circuits PC2 of the corresponding pixel columns, and may sequentially supply data voltages to the second pixel circuits PC2 arranged in the corresponding pixel columns.
[0125] The third data line DL3 may be connected to the third pixel circuits PC3 of the corresponding pixel columns, and may sequentially supply data voltages to the third pixel circuits PC3 arranged in the corresponding pixel columns.
[0126] FIG. 9 is an expanded view of an example of a portion of the electrostatic discharge region and fan-out region of FIG.
[0127] 8 and 9, a fan-out line FOL connected to a pad unit PAD may include a first line resistor R1 and a second line resistor R2. In one embodiment, each of the first and second line resistors R1 and R2 may be formed in a zigzag pattern.
[0128] The lengths of the first and second line resistors R1 and R2 may be designed in various ways depending on the positions of the fan-out lines FOL. For example, the lengths of the first and second line resistors R1 and R2 of the fan-out lines FOL may be adjusted so that the fan-out lines FOL have the same or substantially the same resistance values.
[0129] The electrostatic discharge circuits ESD may be disposed adjacent to the fan-out lines FOL, a portion of the electrostatic discharge circuits ESD may be connected between the fan-out lines FOL and the gate-off voltage lines VGHL, and another portion of the electrostatic discharge circuits ESD may be connected between the fan-out lines FOL and the gate-on voltage lines VGLL.
[0130] The gate-off voltage line VGHL may be a signal line transmitting a gate-off voltage for turning off transistors included in the display area DA. The gate-on voltage line VGLL may be a signal line transmitting a gate-on voltage for turning on transistors included in the display area DA. When the gate-off voltage is a logic high level, the gate-on voltage may be a logic low level. Conversely, when the gate-off voltage is a logic low level, the gate-on voltage may be a logic high level.
[0131] The electrostatic discharge circuit ESD may be connected to a portion between the first and second line resistors R1 and R2 of the fan-out line FOL, but the embodiment of the present disclosure is not limited thereto. The electrostatic discharge circuit ESD can discharge static electricity flowing in from the outside, thereby preventing or substantially preventing static electricity from flowing in to the display area DA.
[0132] FIG. 10 is a perspective view showing a display device according to an embodiment of the present disclosure, and FIG. 11 is a diagram showing an example of a part of the rear surface of the display device of FIG.
[0133] Fig. 10 is a schematic diagram mainly showing the configuration of the pad portion PAD and the side connection line SCL, and will be mainly described. Fig. 11 shows an example in which the side connection line SCL is connected to other configurations on the back surface BS (e.g., the second surface) of the substrate SUB.
[0134] Referring to Figures 5, 10, and 11, the display device 10 may include a substrate SUB including a display area DA and a non-display area NDA, a pad section PAD arranged on an upper surface US of the substrate, and a side connecting line SCL arranged on the upper surface US, rear surface BS, and side surface SS between the upper surface US and rear surface BS of the substrate SUB.
[0135] The upper surface US and the back surface BS of the substrate SUB may be opposed to and spaced apart from each other in the third direction DR3.
[0136] In one embodiment, the substrate SUB may include chamfered surfaces CHM formed by chamfering the ridge between the top surface US and the side surface SS and the ridge between the back surface BS and the side surface SS. The chamfered surfaces CHM allow the side surface SS of the substrate SUB to have an appropriate inclination (e.g., a predetermined inclination). This makes it possible to prevent or substantially prevent breaks in the side connection lines SCL surrounding (or extending from) the top surface US, side surface SS, and back surface BS of the substrate SUB.
[0137] The pad part PAD may be arranged in (e.g., in or on) a non-display area NDA of an upper surface US of the substrate SUB. In Fig. 10, the pad part PAD is shown as being arranged on one side edge of the upper surface US of the substrate SUB, but the present disclosure is not limited thereto, and the pad part PAD may also be arranged on the other side edge of the upper surface US of the substrate SUB.
[0138] In one embodiment, as described with reference to Figures 8 and 9, the pad unit PAD may be connected to the fan-out lines that contact the side connection lines SCL and extend into the display area DA. Each of the fan-out lines may be connected to one of a data line, a power line, and a clock line for driving the pixels SP. For example, the power line may include a power line that supplies various appropriate power sources to the gate drivers and / or the pixels SP. The clock line may be provided with a clock signal that is supplied to the gate drivers.
[0139] The side connection lines SCL may be connected to the pad parts PAD in a one-to-one relationship. The side connection lines SCL may be physically and electrically connected to the pad parts PAD. In one embodiment, the side connection lines SCL may cover the entire upper surface of the pad part PAD. This may strengthen the physical and electrical connection between the pad parts PAD and the side connection lines SCL.
[0140] The width of the side connection line SCL may be several tens of μm. The interval between adjacent side connection lines SCL may be several tens of μm. In one embodiment, the width of the side connection line SCL may be equal to or larger than the interval between adjacent side connection lines SCL.
[0141] As shown in FIG. 11, lead lines LDL, back electrodes BTE, and a soft film FPCB (flexible wiring board) can be arranged on a back surface BS (for example, a second surface) of the substrate SUB.
[0142] The lead line LDL may be electrically and physically connected between the side connection line SCL and the back electrode BTE. One end of the lead line LDL may be physically connected to the side connection line SCL extending to the back surface BS of the substrate SUB. The other end of the lead line LDL may be physically connected to the back electrode BTE formed on the back surface BS (e.g., the second surface) of the substrate SUB.
[0143] The back electrode BTE may supply a voltage or signal received from the flexible film FPCB to the side connection line SCL via the lead line LDL. In one embodiment, the back electrode BTE and the flexible film FPCB may be electrically connected via a conductive adhesive member (e.g., an anisotropic conductive film, etc.). For example, at least a portion of a first surface of the flexible film FPCB may be attached to the back surface BS of the substrate SUB via a conductive adhesive member. In addition, a second surface of the flexible film FPCB, which is spaced apart from and faces the first surface, may be connected to a source circuit board, a driving chip, etc.
[0144] FIG. 12 is a cross-sectional view showing an example of the display device of FIG.
[0145] 10, 11, and 12, a display device 10 may include a substrate SUB, a pixel circuit layer PCL, and a display element layer DPL.
[0146] A laminated structure (for example, a predetermined laminated structure) can be formed on each of the upper surface US and rear surface BS of the substrate SUB. For example, a pixel circuit layer PCL and a display element layer DPL can be disposed on the upper surface US of the substrate SUB.
[0147] The pixel circuit layer PCL may include a light-shielding layer BML, a buffer layer BF, an active layer ACTL, a first gate insulation layer GI1, a first gate layer GTL1, a second gate insulation layer GI2, a second gate layer GTL2, an interlayer insulation layer ILD, a first source metal layer SDL1, a first via layer VIA1, a second source metal layer SDL2, a second via layer VIA2, a third source metal layer SDL3, and a third via layer VIA3.
[0148] The display element layer DPL may include a fourth source metal layer SDL4, an anode layer ANDL, a fourth via layer VIA4, and a first protective layer PAS1.
[0149] A second protective layer PAS2, a back electrode BTE, a lead line LDL, a fifth via layer VIA5, a third protective layer PAS3, and a soft film FPCB may be disposed on the back surface BS of the substrate SUB.
[0150] In addition, a side connection line SCL can be arranged on the upper surface US and rear surface BS of the substrate SUB across the side surface SS of the substrate SUB.
[0151] The substrate SUB can support the display device 10. The substrate SUB can be a base substrate or a base member. The substrate SUB can be a rigid substrate including a glass material. As another example, the substrate SUB can be a flexible substrate capable of bending, folding, rolling, and the like. For example, the substrate SUB can include an insulating material such as a polymer resin, such as polyimide (PI), but the embodiment of the present disclosure is not limited thereto.
[0152] The light-shielding layer BML may be disposed on the substrate SUB. The light-shielding layer BML may be a single layer or multiple layers made of any one or more of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd), and copper (Cu), or an alloy thereof.
[0153] In one embodiment, the light blocking layer BML may be connected to one electrode (e.g., a source electrode) of the transistor TFT (e.g., a driving transistor). As another example, the light blocking layer BML may overlap at least a portion of the active layer ACTL of the transistor TFT, and may block light incident on the active layer ACTL, thereby stabilizing the operating characteristics of the transistor TFT.
[0154] The buffer layer BF may be disposed on the substrate SUB. The buffer layer BF may include an inorganic material capable of preventing or substantially preventing the penetration of air and / or moisture. The buffer layer BF may include a plurality of inorganic films stacked alternately. For example, the buffer layer BF may include a multi-layer (stacked film) in which one or more inorganic films selected from the group consisting of a silicon nitride layer, a silicon oxynitride layer, a silicon oxide layer, a titanium oxide layer, and an aluminum oxide layer are stacked alternately.
[0155] The active layer ACTL may be disposed on the buffer layer BF. The active layer ACTL may include a channel CH, a source electrode SE, and a drain electrode DE of the transistor TFT. Here, the transistor TFT may be a transistor constituting the pixel circuit PC. The source electrode SE and the drain electrode DE may be made conductive by heat treating the active layer ACTL. For example, the active layer ACTL may include polycrystalline silicon, single crystal silicon, low-temperature polycrystalline silicon, amorphous silicon, or an oxide semiconductor. As another example, the active layer ACTL may include first and second active layers disposed in different layers (e.g., inside or on top of) each other. In this case, the first active layer may include polycrystalline silicon, single crystal silicon, low-temperature polycrystalline silicon, or amorphous silicon, and the second active layer may include an oxide semiconductor.
[0156] The first gate insulating layer GI1 can be disposed on the active layer ACTL. The first gate insulating layer GI1 can insulate the gate electrode GE and the channel CH of the transistor TFT from each other. The first gate insulating layer GI1 can include an inorganic film. For example, the first gate insulating layer GI1 can include one of a silicon nitride layer, a silicon oxynitride layer, a silicon oxide layer, a titanium oxide layer, and an aluminum oxide layer.
[0157] The first gate layer GTL1 may be disposed on the first gate insulating layer GI1. The first gate layer GTL1 may include a fan-out line FOL, a gate electrode GE of the transistor TFT, and a first capacitor electrode CE1 (e.g., a lower electrode) of a first capacitor C1 (e.g., see FIG. 21). The first gate layer GTL1 may be a single layer or a multilayer (stacked film) made of any one or more of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd), and copper (Cu), or an alloy thereof.
[0158] The fan-out line FOL may be connected to the pad portion PAD penetrating (e.g., passing through) the interlayer insulating layer ILD and the second gate insulating layer GI2. In one embodiment, the fan-out line FOL may extend from the pad portion PAD to the display area DA to reduce the size of the non-display area NDA.
[0159] The second gate insulating layer GI2 can be disposed on the first gate layer GTL1. The second gate insulating layer GI2 can insulate the first gate layer GTL1 and the second gate layer GTL2 from each other. The second gate insulating layer GI2 can include an inorganic film. For example, the second gate insulating layer GI2 can include one of a silicon nitride layer, a silicon oxynitride layer, a silicon oxide layer, a titanium oxide layer, and an aluminum oxide layer.
[0160] The second gate layer GTL2 may be disposed on the second gate insulating layer GI2. The second gate layer GTL2 may include a second capacitor electrode CE2 of the first capacitor C1. The second gate layer GTL2 may be a single layer or multiple layers made of any one or more of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd), and copper (Cu), or an alloy thereof.
[0161] The interlayer insulating layer ILD may be disposed on the second gate layer GTL2. The interlayer insulating layer ILD may insulate the first source metal layer SDL1 and the second gate layer GTL2. The interlayer insulating layer ILD may include an inorganic film. For example, the interlayer insulating layer ILD may include one of a silicon nitride layer, a silicon oxynitride layer, a silicon oxide layer, a titanium oxide layer, and an aluminum oxide layer.
[0162] The structure including the transistor TFT, the buffer layer BF, the first gate insulating layer GI1, the second gate insulating layer GI2, and the interlayer insulating layer ILD can be understood as a transistor layer TL. For example, the top layer of the transistor layer TL can be the interlayer insulating layer ILD. The transistor layer TL can be a part of the pixel circuit layer PCL.
[0163] The first source metal layer SDL1 may be disposed on the interlayer insulating layer ILD of the transistor layer TL. The first source metal layer SDL1 may include a connecting electrode CCE.
[0164] The connecting electrode CCE may be connected to the anode connecting line ACL penetrating (e.g., passing through) the first via layer VIA1. The connecting electrode CCE may be connected to the drain electrode DE of the transistor TFT penetrating (e.g., passing through) the interlayer insulating layer ILD, the second gate insulating layer GI2, and the first gate insulating layer GI1. Thus, the connecting electrode CCE may electrically connect the anode connecting line ACL and the drain electrode DE to each other.
[0165] The first pad electrode PAD1 may be formed together with the first source metal layer SDL1. In other words, the first pad electrode PAD1 may be disposed on the interlayer insulating layer ILD in the non-display area NDA.
[0166] The first pad electrode PAD1 can be connected to the fan-out line FOL via a contact hole penetrating the interlayer insulating layer ILD and the second gate insulating layer GI2.
[0167] The first source metal layer SDL1 and the first pad electrode PAD1 may be a single layer or multiple layers made of any one or more of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd) and copper (Cu), or an alloy thereof.
[0168] The first via layer VIA1 may be disposed on the first source metal layer SDL1. The first via layer VIA1 may planarize or substantially planarize the upper end of the first source metal layer SDL1. The first via layer VIA1 may include an organic film such as an acrylic resin, an epoxy resin, a phenolic resin, a polyamide resin, or a polyimide resin.
[0169] In one embodiment, the first via layer VIA1 may be disposed within (or above) the display area DA. The first via layer VIA1 may be separated from the pad portion PAD. For example, the first via layer VIA1 may be separated from the first pad electrode PAD1. As a result, an interlayer insulating layer exposed area IEA may be formed between the first via layer VIA1 and the pad portion PAD (e.g., the first pad electrode PAD1). The interlayer insulating layer exposed area IEA may be a portion where the upper surface of the interlayer insulating layer ILD is exposed from the first via layer VIA1 between the first via layer VIA1 and the pad portion PAD.
[0170] The second source metal layer SDL2 may be disposed on the first via layer VIA1. The second source metal layer SDL2 may include an anode connection line ACL. The anode connection line ACL may be connected to an anode connection electrode ACE that penetrates (e.g., passes through) the second via layer VIA2.
[0171] The anode connecting line ACL may be connected to the connecting electrode CCE by passing through (for example, passing through) the first via layer VIA1, and thus the anode connecting line ACL may electrically connect the anode connecting electrode ACE and the connecting electrode CCE.
[0172] The second pad electrode PAD2 may be formed together with the second source metal layer SDL2. The second pad electrode PAD2 may be disposed directly on the first pad electrode PAD1. The second pad electrode PAD2 may be formed in (e.g., in or on) the non-display area NDA.
[0173] The second source metal layer SDL2 and the second pad electrode PAD2 may be a single layer or multiple layers made of any one or more of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd) and copper (Cu), or an alloy thereof.
[0174] The second via layer VIA2 may be disposed on (or within) the first via layer VIA1 and the second source metal layer SDL2. The second via layer VIA2 may planarize the upper end of the second source metal layer SDL2. The second via layer VIA2 may include an organic film such as an acrylic resin, an epoxy resin, a phenolic resin, a polyamide resin, or a polyimide resin.
[0175] In one embodiment, the second via layer VIA2 may be disposed within the display area DA. The second via layer VIA2 may be spaced apart from the pad portion PAD. Also, the second via layer VIA2 may form a step with the first via layer VIA1 to expose a portion of the upper surface of the first via layer VIA1. The portion of the first via layer VIA1 exposed from the second via layer VIA2 may be a first exposed area EA1. For example, the width of the first exposed area EA1 in the second direction DR2 may be about 10 μm.
[0176] The third source metal layer SDL3 may be disposed on the second via layer VIA2. The third source metal layer SDL3 may include an anode connecting electrode ACE. The anode connecting electrode ACE may be connected to the first anode electrode AND1 penetrating (e.g., passing through) the third via layer VIA3. The anode connecting electrode ACE may be connected to the anode connecting line ACL penetrating the second passivation layer PAS2. Thus, the anode connecting electrode ACE may electrically connect the anode AND and the anode connecting line ACL to each other.
[0177] The third pad electrode PAD3 may be formed together with the third source metal layer SDL3. The third pad electrode PAD3 may be disposed directly on the second pad electrode PAD2. The third pad electrode PAD3 may be formed in the non-display area NDA.
[0178] The third source metal layer SDL3 and the third pad electrode PAD3 may be a single layer or multiple layers made of any one or more of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd) and copper (Cu), or an alloy thereof.
[0179] The third via layer VIA3 may be disposed on the second via layer VIA2 and the third source metal layer SDL3. The third via layer VIA3 may planarize or substantially planarize an upper end of the third source metal layer SDL3. The third via layer VIA3 may include an organic film such as an acrylic resin, an epoxy resin, a phenolic resin, a polyamide resin, or a polyimide resin.
[0180] In one embodiment, the third via layer VIA3 may be disposed within (or above) the display area DA. The third via layer VIA3 may be separated from the pad portion PAD. Also, the third via layer VIA3 may form a step with the second via layer VIA2 so as to expose a portion of the upper surface of the second via layer VIA2. The portion of the second via layer VIA2 exposed from the third via layer VIA3 may be a second exposed area EA2. For example, the width of the second exposed area EA2 in the second direction DR2 may be similar to or smaller than the width of the first exposed area EA1 in the second direction DR2.
[0181] In this manner, the first, second and third via layers VIA1, VIA2, VIA3 can be stacked to have a staircase shape.
[0182] The fourth source metal layer SDL4 may be disposed on the third via layer VIA3. The fourth source metal layer SDL4 may include a first anode electrode AND1 and a first cathode electrode CTD1. The first anode electrode AND1 may be connected to the anode connection electrode ACE through the third via layer VIA3. The first cathode electrode CTD1 may be connected to a predetermined power supply wiring through (for example, passing through) the third via layer VIA3. In FIG. 12, the anode AND and the cathode CTD are shown as being adjacent to each other in the second direction DR2 in order to illustrate and explain the shape in which the anode AND and the cathode CTD are connected to the light emitting element ED and the detailed configuration of the light emitting element ED, but the arrangement of the anode AND and the cathode CTD is not limited thereto. For example, as shown in FIG. 6, the anode AND and the cathode CTD may be disposed adjacent to each other in the first direction DR1.
[0183] The fourth pad electrode PAD4 may be formed together with the fourth source metal layer SDL4. The fourth pad electrode PAD4 may be disposed directly on the third pad electrode PAD3. The fourth pad electrode PAD4 may be formed in (e.g., in or on) the non-display area NDA.
[0184] The fourth source metal layer SDL4 and the fourth pad electrode PAD4 may be a single layer or multiple layers made of any one or more of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd) and copper (Cu), or an alloy thereof.
[0185] The anode layer ANDL may be disposed on the fourth source metal layer SDL4. The anode layer ANDL may include a second anode electrode AND2 and a second cathode electrode CTD2. In one embodiment, the thickness of the second anode electrode AND2 and the second cathode electrode CTD2 may be smaller than the thickness of the first anode electrode AND1 and the first cathode electrode CTD1.
[0186] The fifth pad electrode PAD5 may be formed together with the anode layer ANDL. The fifth pad electrode PAD5 may be disposed directly on the fourth pad electrode PAD4. For example, the fifth pad electrode PAD5 may contact the upper surface and side surfaces of the fourth pad electrode PAD4 and cover the fourth pad electrode PAD4. The thickness of the fifth pad electrode PAD5 may be smaller than the thickness of the fourth pad electrode PAD4.
[0187] The anode layer ANDL and the fifth pad electrode PAD5 may include a transparent conductive material (TCO) such as ITO or IZO.
[0188] The first anode electrode AND1 and the second anode electrode AND2 may form an anode AND (for example, the first pixel electrode shown in FIG. 5), and the first cathode electrode CTD1 and the second cathode electrode CTD2 may form a cathode CTD (for example, the second pixel electrode shown in FIG. 5). The first to fifth pad electrodes PAD1 to PAD5 may form a pad part PAD.
[0189] The pad part PAD may be disposed on the interlayer insulating layer ILD in (e.g., inside or on) the non-display area NDA. The pad part PAD may supply a voltage or a signal received from the side connection line SCL to the fan-out line FOL. The second pad electrode PAD2 may be electrically connected to the lead line LDL via the side connection line SCL.
[0190] The fourth via layer VIA4 may be disposed on the third via layer VIA3 where the anode AND and the cathode CTD are not formed. The fourth via layer VIA4 may planarize or substantially planarize the upper end of the third via layer VIA3. The fourth via layer VIA4 may include an organic film such as an acrylic resin, an epoxy resin, a phenolic resin, a polyamide resin, or a polyimide resin.
[0191] In one embodiment, the fourth via layer VIA4 may be disposed within (or above) the display area DA. The fourth via layer VIA4 may be spaced apart from the pad portion PAD. Also, the fourth via layer VIA4 may form a step with the third via layer VIA3 so as to expose a portion of the upper surface of the third via layer VIA3. A portion of the third via layer VIA3 exposed from the fourth via layer VIA4 may be a third exposed area EA3. For example, the width of the third exposed area EA3 in the second direction DR2 may be similar to or smaller than the width of the second exposed area EA2 in the second direction DR2.
[0192] The first protective layer PAS1 is disposed on the fourth via layer VIA4 and can cover the anode AND, the cathode CTD, and a part of the pad portion PAD. The first protective layer PAS1 can also contact the interlayer insulating layer ILD in the interlayer insulating layer exposed area IEA (e.g., in or on the area) so as to cover the interlayer insulating layer ILD in the interlayer insulating layer exposed area IEA.
[0193] Also, the first protective layer PAS1 can contact the first via layer VIA1, the second via layer VIA2, and the third via layer VIA3. For example, the first protective layer PAS1 can contact the first via layer VIA1 at (e.g., in or on) the first exposed area EA1, contact the second via layer VIA2 at (e.g., in or on) the second exposed area EA2, and contact the third via layer VIA3 at (e.g., in or on) the third exposed area EA3.
[0194] The first protective layer PAS1 may include an inorganic film, for example, the first protective layer PAS1 may include one of a silicon nitride layer, a silicon oxynitride layer, a silicon oxide layer, a titanium oxide layer, and an aluminum oxide layer.
[0195] The first protective layer PAS1 can expose a part of the upper surface of the anode AND without covering it, and expose a part of the upper surface of the cathode CTD without covering it. The light-emitting element ED can contact the anode AND and the cathode CTD that are not covered by the first protective layer PAS1.
[0196] In one embodiment, the first protective layer PAS1 may cover all exposed portions of the first to fourth pad electrodes PAD1 to PAD4. For example, the first protective layer PAS1 may contact the exposed portions of the first to fourth pad electrodes PAD1 to PAD4.
[0197] However, the first protective layer PAS1 can expose a part of the upper surface of the fifth pad electrode PAD5 without covering it. The side connection line SCL can be in contact with the pad part PAD that is not covered by the first protective layer PAS1.
[0198] In one embodiment, additional protective layers, at least one of which includes an inorganic material, may be further disposed between the first via layer VIA1 and the second via layer VIA2, between the second via layer VIA2 and the third via layer VIA3, and between the third via layer VIA3 and the fourth via layer VIA4.
[0199] The second protective layer PAS2 is disposed on the back surface BS of the substrate SUB to planarize or substantially planarize the back surface BS of the substrate SUB. The second protective layer PAS2 may include an inorganic film. For example, the second protective layer PAS2 may include one of a silicon nitride layer, a silicon oxynitride layer, a silicon oxide layer, a titanium oxide layer, and an aluminum oxide layer.
[0200] The back electrode BTE may be disposed on one surface (e.g., the back surface) of the second protective layer PAS2. The back electrode BTE may supply a voltage or signal received from the flexible film FPCB to the side connection line SCL via the lead line LDL. The back electrode BTE may be electrically connected to the flexible film FPCB via the conductive adhesive member ACF.
[0201] The back electrode BTE may include a first back electrode BTE1 and a second back electrode BTE2. The first back electrode BTE1 may be disposed on one side (e.g., the back side) of the second protective layer PAS2. The first back electrode BTE1 may be a single layer or multiple layers made of any one or more of molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd), and copper (Cu), or an alloy thereof.
[0202] The second rear electrode BTE2 may be disposed on one surface (eg, rear surface) of the first rear electrode BTE1. The second rear electrode BTE2 may include a transparent conductive material (TCO) such as ITO or IZO.
[0203] The lead line LDL may be disposed on one surface (e.g., rear surface) of the second protective layer PAS2. The lead line LDL may be formed in the same layer (e.g., in or on) as the first rear electrode BTE1 and of the same material as the first rear electrode BTE. The lead line LDL may supply a voltage or signal received from the rear electrode BTE to the side connection line SCL. For example, as shown in FIG. 11, the lead line LDL may be physically connected to the rear electrode BTE.
[0204] The side connection lines SCL may be disposed on the edge of the lower surface, the side surfaces, and the edge of the upper surface of the substrate SUB. One end of the side connection line SCL may be connected to the pad unit PAD, and the other end of the side connection line SCL may be connected to the lead line LDL.
[0205] In one embodiment, on the upper surface US of the substrate SUB, the side connection line SCL may overlap the entire pad portion PAD. For example, when viewed in a plan view, the side connection line SCL may cover the entire pad portion PAD. In one embodiment, the side connection line SCL may overlap the interlayer insulating layer exposed area IEA. For example, the side connection line SCL may be disposed on the first protective layer PAS1 in the interlayer insulating layer exposed area IEA (for example, inside or above). Also, on the back surface BS of the substrate SUB, the side connection line SCL may cover a part of the lead line LDL.
[0206] This can reduce the risk of electrical disconnection between the pad portion PAD and the lead line LDL.
[0207] The side connection line SCL may extend through the side surfaces of the substrate SUB, the buffer layer BF, the first and second gate insulating layers GI1 and GI2, the interlayer insulating layer ILD, and the first protective layer PAS1.
[0208] The side connection line SCL may be a single layer or multiple layers made of any one or more of silver (Ag), molybdenum (Mo), aluminum (Al), chromium (Cr), gold (Au), titanium (Ti), nickel (Ni), neodymium (Nd), and copper (Cu), or an alloy thereof. For example, the side connection line SCL may be made of silver.
[0209] The fifth via layer VIA5 can cover at least a part of the back surface of the back electrode BTE and the lead line LDL. Also, the fifth via layer VIA5 can cover a part of the side connection line SCL. The fifth via layer VIA5 can planarize or substantially planarize the lower end of the substrate SUB. The fifth via layer VIA5 can include an organic film such as acrylic resin, epoxy resin, phenolic resin, polyamide resin, or polyimide resin.
[0210] The third protective layer PAS3 may be disposed on one side (e.g., the back side) of the fifth via layer VIA5 to protect the back electrode BTE and the lead line LDL. The third protective layer PAS3 may include an inorganic film. For example, the third protective layer PAS3 may include one of a silicon nitride layer, a silicon oxynitride layer, a silicon oxide layer, a titanium oxide layer, and an aluminum oxide layer.
[0211] The flexible film FPCB may be disposed on one side or the rear side of the third protective layer PAS3. The flexible film FPCB may be attached to the rear side of the third protective layer PAS3 using an adhesive member. One side of the flexible film FPCB may supply a voltage or a signal to the pad unit PAD via the rear electrode BTE, the lead line LDL, and the side connection line SCL. The other side of the flexible film FPCB may be connected to a source circuit board or the like at the bottom (below) (or directly below) of the substrate SUB. The flexible film FPCB may transmit a signal provided from the source circuit board to the display device 10.
[0212] The conductive adhesive member ACF can attach the flexible film FPCB to the rear surface of the back electrode BTE. For example, the conductive adhesive member ACF can include an anisotropic conductive film. When the conductive adhesive member ACF includes an anisotropic conductive film, the conductive adhesive member ACF can have conductivity in the area where the back electrode BTE and the flexible film FPCB contact with the conductive adhesive member ACF, thereby electrically connecting the flexible film FPCB to the back electrode BTE.
[0213] The display device 10 can minimize or reduce the area of the non-display area NDA by including a flexible film FPCB arranged on the back surface BS of the substrate SUB, a pad portion PAD arranged on the top surface US of the substrate SUB, a back electrode BTE electrically connecting the flexible film FPCB and the pad portion PAD to each other, a lead line LDL, and a side connecting line SCL.
[0214] The overcoating layer OC may cover the entire side connection lines SCL. For example, the overcoating layer OC may be formed in one pattern that covers all of the side connection lines SCL. The overcoating layer OC may cover a portion of the upper surface US and a portion of the rear surface BS of the substrate SUB.
[0215] The overcoating layer OC is an insulating layer and can include an organic insulating material and / or an inorganic insulating material. The overcoating layer OC can prevent or substantially prevent contamination from penetrating into the side SS and edge portions of the display device 10 including the side connection lines SCL, and can protect the side connection lines SCL.
[0216] In one embodiment, the overcoating layer OC may include a black pigment, and thus the overcoating layer OC may be entirely black, and thus the overcoating layer OC may prevent or reduce light reflection at the side connection lines SCL, thereby improving poor visibility.
[0217] The black pigment may include at least one of carbon black and titanium black, although this is merely an example and the black pigment contained in the overcoating layer OC is not limited thereto.
[0218] In other words, the overcoating layer OC may function as a light blocking pattern, protect the side connection line SCL, and function as a protective layer that is insulated from other wirings.
[0219] In one embodiment, the overcoating layer OC may be formed on a portion of the top surface US, the side surface SS, and the back surface BS of the substrate SUB by a pad printing process. For example, an end of the overcoating layer OC on the top surface US of the substrate SUB and an end of the overcoating layer OC on the back surface BS of the substrate SUB may coincide or substantially coincide so as to abut on a virtual axis parallel or substantially parallel to the third direction DR3. The overcoating layer OC may have a thickness of about 5 to 15 μm. For example, the overcoating layer OC may have a thickness similar to that of the side connection line SCL. However, this is merely an example, and the thickness of the overcoating layer OC is not limited thereto.
[0220] In one embodiment, the overcoating layer OC may overlap the first exposed area EA1. In other words, the overcoating layer OC may overlap at least a portion of the upper surface of the first via layer VIA1 exposed from the second via layer VIA2. Also, one end of the overcoating layer OC may face one end (e.g., a side surface) of the second via layer VIA2 with the first protective layer PAS1 interposed therebetween.
[0221] In this manner, the second via layer VIA2 formed with a step with respect to the first via layer VIA1 can act as a dam to prevent or substantially prevent the overcoating layer OC from overflowing to the anode AND and the cathode CTD. The third and fourth via layers VIA3 and VIA4 can also act as dams.
[0222] Therefore, the overcoating layer OC can have a uniform or substantially uniform edge in (or over) the first exposed area EA1 due to the dam formed by the second via layer VIA2, and the process capability of the overcoating layer OC can be reduced. For example, the process capability of the overcoating layer OC formed in the pad printing process can be reduced, and the capability of the manufacturing process of the display device 10 including the overcoating layer OC can be reduced. Therefore, the reliability of the manufacturing process of the display device 10 and the image quality can be improved.
[0223] The light emitting element ED may be disposed on the anode AND and the cathode CTD. In one embodiment, the light emitting element ED may include a flip-chip type micro LED including a first contact electrode CTE1 and a second contact electrode CTE2 facing the anode AND and the cathode CTD, respectively.
[0224] The light emitting element ED may be formed of an inorganic material such as GaN. The width, length, and height of the light emitting element ED may each be several to several hundred μm. For example, the width, length, and height of the light emitting element ED may each be approximately 100 μm or less.
[0225] The light emitting element ED may be formed by growing on a semiconductor substrate such as a silicon wafer. The light emitting element ED may be transferred directly from the silicon wafer onto the anode AND and cathode CTD of the substrate SUB. As another example, the light emitting element ED may be transferred onto the anode AND and cathode CTD of the substrate SUB through an electrostatic method using an electrostatic head, or a stamp method using an elastic polymer material such as PDMS or silicone as a transfer substrate.
[0226] The light emitting element ED may include a base substrate SSUB, an n-type semiconductor NSEM, an active layer MQW, a p-type semiconductor PSEM, a first contact electrode CTE1, and a second contact electrode CTE2.
[0227] The base substrate SSUB can be a sapphire substrate, although embodiments of the present disclosure are not limited thereto.
[0228] The n-type semiconductor NSEM may be disposed on one surface of the base substrate SSUB. For example, the n-type semiconductor NSEM may be disposed on the lower surface of the base substrate SSUB. The n-type semiconductor NSEM may be made of GaN doped with an n-type conductive dopant such as Si, Ge, Sn, or the like.
[0229] The active layer MQW may be disposed on a portion of one surface of the n-type semiconductor NSEM. The active layer MQW may include a material having a single quantum well structure or a multiple quantum well structure. When the active layer MQW includes a material having a multiple quantum well structure, it may have a structure in which a plurality of well layers and barrier layers are alternately stacked. In this case, the well layers may be formed of InGaN, and the barrier layers may be formed of GaN or AlGaN, but are not limited thereto. As another example, the active layer MQW may have a structure in which a semiconductor material having a large band gap energy and a semiconductor material having a small band gap energy are alternately stacked, and may include other group III to V semiconductor materials according to the wavelength band of the emitted light.
[0230] The p-type semiconductor PSEM may be disposed on one surface of the active layer MQW. The p-type semiconductor PSEM may be made of GaN doped with a p-type conductive dopant such as Mg, Zn, Ca, Se, or Ba.
[0231] The first contact electrode CTE1 may be disposed on the p-type semiconductor PSEM, and the second contact electrode CTE2 may be disposed on another part of one surface of the n-type semiconductor NSEM. The other part of the one surface of the n-type semiconductor NSEM on which the second contact electrode CTE2 is disposed may be disposed apart from the part of the one surface of the n-type semiconductor NSEM on which the active layer MQW is disposed.
[0232] The first contact electrode CTE1 and the anode AND may be bonded to each other via a conductive adhesive member such as an anisotropic conductive film or an anisotropic conductive paste. As another example, the first contact electrode CTE1 and the anode AND may be bonded to each other through a soldering process.
[0233] In one embodiment, the second contact electrode CTE2 and the cathode CTD may be bonded to each other via a conductive adhesive member such as an anisotropic conductive film or an anisotropic conductive paste. As another example, the second contact electrode CTE2 and the cathode CTD may be bonded to each other through a soldering process.
[0234] 13a is a perspective view showing an example of a side connecting line and a via layer of the display device of FIG. 12, and FIG. 13b is a perspective view showing an example of the display device of FIG.
[0235] In Fig. 13b, an overcoating layer OC is further illustrated compared to Fig. 10. For convenience of explanation, the first protective layer PAS1 is omitted in Fig. 13a and Fig. 13b. For example, in Fig. 13a, the first protective layer PAS1 may be interposed between the overcoating layer OC and the upper surface of the substrate SUB (see, for example, Fig. 12).
[0236] 10, 12, 13a, and 13b, the overcoating layer OC may be integrally disposed on one side surface SS of the display device 10, a portion of the non-display area of the top surface US connected to the side surface SS, and a portion of the back surface BS connected to the side surface SS. The overcoating layer OC may also integrally cover the entire side connection line SCL.
[0237] As described above, the first, second, and third via layers VIA1, VIA2, and VIA3 may be sequentially stacked in the third direction DR3 with a step between them. In one embodiment, the end EP1 of the first via layer VIA1 (e.g., one side of the first via layer VIA1) and the end EP2 of the second via layer VIA2 (e.g., one side of the second via layer VIA2) may each have a shape that extends linearly or substantially linearly in the first direction DR1. For example, the end EP1 of the first via layer VIA1 and the end of the second via layer VIA2 may extend parallel to each other or substantially parallel to each other.
[0238] Therefore, the width of the first exposed area EA1 in the second direction DR2 may be uniform or substantially uniform. For example, the width of the first exposed area EA1 in the second direction DR2 may be about 10 μm.
[0239] Similarly, the end EP3 of the third via layer VIA3 (e.g., one side surface of the third via layer VIA3) may also have a shape extending in a straight line or substantially in a straight line in the first direction DR1. For example, the end EP3 of the third via layer VIA3 and the end EP2 of the second via layer VIA2 may extend parallel or substantially parallel to each other. Therefore, the width of the second exposed area EA2 in the second direction DR2 may be uniform or substantially uniform.
[0240] The overcoating layer OC may be formed to cover at least a portion of the first exposed area EA1. The second via layer VIA2 may act as a dam. The overcoating layer OC may be formed to prevent the overcoating layer OC from exceeding (or overflowing) an upper surface of the second via layer VIA2.
[0241] In this manner, the ends EP1, EP2, and EP3 of the first, second, and third via layers VIA1, VIA2, and VIA3 are formed in a straight or substantially straight shape, so that the ends of the overcoating layer OC can be formed at uniform positions. Therefore, the process variations of the overcoating layer OC and the display device 10 including the same can be reduced. In addition, the second, third, and fourth via layers VIA2, VIA3, and VIA4 act as dams to prevent or substantially prevent the overcoating layer OC from overflowing to the anode AND and the cathode CTD.
[0242] FIG. 14 is a cross-sectional view showing an example of the display device of FIG.
[0243] In Fig. 14, the same reference numerals are used for components that have been described with reference to Fig. 12 above or components that are substantially the same as these components, and duplicated descriptions of these components may be omitted. In Fig. 14, the display device of Fig. 14 may be the same as or substantially the same as the display device of Fig. 12, except that it further includes a black anisotropic conductive film BACF.
[0244] 10 and 14, a display device 10 may include a substrate SUB, a pixel circuit layer PCL, a display element layer DPL, a side connecting line SCL, and an overcoating layer OC.
[0245] In one embodiment, the display element layer DPL may further include a black anisotropic conductive film BACF. The black anisotropic conductive film BACF may be disposed adjacent to the light-emitting element ED. For example, after the first protective layer PAS1 and the overcoating layer OC are formed, the black anisotropic conductive film BACF may be disposed on the first protective layer PAS1 and the overcoating layer OC.
[0246] The black anisotropic conductive film BACF may define a light-emitting area of the pixel SP. The black anisotropic conductive film BACF may be configured to include at least one light-shielding material and / or a reflective material, and may prevent or substantially prevent light leakage defects, in which light (or light) leaks between adjacent pixels (or light-emitting elements ED).
[0247] The black anisotropic conductive film BACF may contain an organic material that strengthens the adhesive force between the light emitting element ED and the anode AND and the cathode CTD while stably fixing the light emitting element ED. The black anisotropic conductive film BACF may also absorb external light to improve the contrast of the screen. Furthermore, the black anisotropic conductive film BACF may function as a bank (e.g., a pixel defining film) for defining the light emitting areas of adjacent pixels.
[0248] For example, a black anisotropic conductive film BACF can include black pigment and fine conductive particles FCP.
[0249] The first contact electrode CTE1 and the anode AND may be electrically connected to each other through fine conductive particles FCP in contact therewith, and the second contact electrode CTE2 and the cathode CTD may be electrically connected to each other through fine conductive particles FCP in contact therewith.
[0250] FIG. 15 is a cross-sectional view showing an example of the display device of FIG.
[0251] In Figure 15, 14 The same reference numerals are used for components described with reference to FIG. 15 or components substantially the same as these components, and duplicated descriptions of these components may be omitted. The display device of FIG. 15 is similar to that of FIG. 15 except that the display device of FIG. 15 further includes a cover layer COV. 14 The display device may be the same as or substantially the same as the display device of FIG.
[0252] 10 and 15, a display device 10 may include a substrate SUB, a pixel circuit layer PCL, a display element layer DPL, a side connecting line SCL, and an overcoating layer OC.
[0253] In one embodiment, the display device 10 may further include a cover layer COV. The cover layer COV may be disposed on the display element layer DPL using the intermediate layer CTL. For example, the cover layer COV may protrude outward from the side surface of the substrate SUB (or the non-display area NDA of the display device).
[0254] The intermediate layer CTL may be a transparent adhesive layer (or a bonding layer) for enhancing the adhesive force between the display element layer DPL and the cover layer COV, for example, an optically clear adhesive layer, but the present disclosure is not limited thereto. According to an embodiment, the intermediate layer CTL may include a filler made of an insulating material having insulating and adhesive properties.
[0255] The cover layer COV may include a first layer FL and a second layer SL, which are sequentially disposed on the intermediate layer CTL.
[0256] The first layer FL may be a light transmittance control layer designed to reduce the transmittance of external light or light reflected from the display device 10. Such a first layer FL may prevent or substantially prevent the gap between adjacent display devices 10 from being visible from the outside. The first layer FL may include a phase retardation layer, but the present disclosure is not limited thereto.
[0257] The second layer SL may be an anti-glare layer designed to diffusely reflect external light in order to prevent or substantially prevent the external light from being reflected as it is and reducing the visibility of the image. Such a second layer SL may increase the contrast ratio of the image displayed by the display device 10. The second layer SL may include a polarizing plate, but the present disclosure is not limited thereto.
[0258] FIG. 16 is a cross-sectional view showing an example of the display device of FIG.
[0259] In Fig. 16, the same reference numerals are used for components described with reference to Fig. 12 or components substantially the same as these components, and duplicated descriptions of these components may be omitted. The display device in Fig. 16 may be the same as or substantially the same as the display device in Fig. 12, except that the display device in Fig. 16 further includes a chamfered surface CHM.
[0260] 10 and 16, a display device 10 may include a substrate SUB, a pixel circuit layer PCL, a display element layer DPL, a side connecting line SCL, and an overcoating layer OC.
[0261] In one embodiment, the substrate SUB may include a chamfered surface CHM formed between the top surface US and the side surface SS and / or between the back surface BS and the side surface SS. The chamfered surface CHM may allow the side surface SS of the substrate SUB to have an inclination (e.g., a predetermined inclination). This may prevent or substantially prevent breakage of the side connection line SCL surrounding the top surface US, the side surface SS, and the back surface BS of the substrate SUB. In addition, the chamfered surface CHM may prevent or substantially prevent the substrates SUB of the display device 10 from colliding with each other and being damaged when the display device 10 is embodied as a tiled display device TD.
[0262] FIG. 17 is a cross-sectional view showing an example of the display device of FIG.
[0263] In Fig. 17, the same reference numerals are used for components described with reference to Fig. 12 or components substantially the same as these components, and duplicated descriptions of these components may be omitted. The display device of Fig. 17 may be substantially the same as the display device of Fig. 12, except that the display device of Fig. 17 further includes an overcoating layer OC.
[0264] 10 and 17, a display device 10 may include a substrate SUB, a pixel circuit layer PCL, a display element layer DPL, a side connecting line SCL, and an overcoating layer OC.
[0265] In one embodiment, the overcoating layer OC may extend to the second exposed area EA2. For example, the overcoating layer OC may overlap an upper surface of the second via layer VIA2 exposed from the third via layer VIA3. One end of the overcoating layer OC may face one end (e.g., a side portion) of the third via layer VIA3 with the first protective layer PAS1 interposed therebetween.
[0266] The third via layer VIA3 may prevent or substantially prevent the overcoating layer OC from overflowing beyond the third via layer VIA3 during a pad printing process of the overcoating layer OC. The overcoating layer OC may be expressed in black. In consideration of the visibility of the front of the display device 10, an end of the overcoating layer OC extending to the display area DA on the upper surface US of the substrate SUB may be adjusted depending on the product.
[0267] FIG. 18 is a diagram showing an example of a method for forming an overcoating layer on the display device of FIG. 10, FIG. 19 is a diagram showing an example of an overcoating layer formed on the display device of FIG. 10, and FIG. 20 is a diagram showing an example of a method for forming an overcoating layer on the display device of FIG. 10.
[0268] 10, 12, 13b, 18, 19, and 20, the overcoating layer OC may be transferred to the substrate SUB through a printing technique using a solid pad.
[0269] The three-dimensional pad may include a silicone mold SIM, but the present disclosure is not limited thereto.
[0270] First, the overcoating material OCM may be transferred to the silicon mold SIM. The overcoating material OCM may include an organic material. For example, the overcoating material OCM may include a monomer (e.g., an epoxy-based material) for reflow during the curing (e.g., high temperature curing) process of the overcoating layer OC.
[0271] In addition, the overcoating material OCM may include a black pigment for expressing black. The black pigment may include carbon black, titanium black, etc. The overcoating material OCM may further include a dispersant for dispersing the black pigment evenly in the organic insulating material.
[0272] The silicon mold SIM may be a pad having softness. For example, the silicon mold SIM may have elasticity to such an extent that the shape of the silicon mold SIM can be deformed by an external force and can be restored to the original shape when the force is removed.
[0273] In one embodiment, as shown in FIG. 18, the silicon mold SIM may include a groove GRV corresponding to the shape of the overcoating layer OC.
[0274] The overcoating material OCM can be transferred (or applied) to the groove GRV (e.g., the transfer area) of the silicon mold SIM through a process of picking up the overcoating material OCM from a pad image plate (e.g., a predetermined pad image plate) on which the overcoating material OCM is provided using the silicon mold SIM.
[0275] However, the present disclosure is not limited thereto, and as shown in FIG. 20, the transfer region where the overcoating material OCM is transferred to the silicon mold SIM may be a protruding portion that protrudes from the periphery of the silicon mold SIM.
[0276] After the silicon mold SIM is disposed to face the side surface SS of the substrate SUB, a pad printing process may be performed to adhere and press the edge region of the upper surface US and the edge region of the rear surface BS of the substrate SUB. As a result, as shown in Fig. 19, the overcoating layer OC may be formed to cover the side connection line SCL. In addition, the second via layer VIA2 acting as a dam may prevent or substantially prevent the overcoating layer OC from overflowing beyond the second via layer VIA2, and the overcoating layer OC may be formed uniformly or substantially uniformly in the edge region of the upper surface US of the substrate SUB. As a result, process variations (e.g., process fluctuations) in the pad printing process of the overcoating layer OC may be reduced.
[0277] FIG. 21 is a circuit diagram showing an example of a pixel included in the display device of FIG. 5, and FIG. 22 is a layout diagram showing an example of a pixel circuit included in the pixel of FIG.
[0278] 21 and 22, a pixel PX can include a pixel circuit PC and a light emitting element ED.
[0279] The light-emitting element ED may be a micro- or nano-sized inorganic light-emitting diode. For example, the light-emitting element ED may be a flip-chip type micro light-emitting diode element.
[0280] In one embodiment, the pixel circuit PC may include a pulse width modulation (PWM) circuit PWMC and a current generating circuit CGC. The current generating circuit CGC may generate a constant or substantially constant current (hereinafter, referred to as a driving current) having an appropriate or desired magnitude (e.g., a predetermined magnitude) to supply the current to the light-emitting element ED. The PWM circuit PWMC may control the time during which the driving current is supplied to the light-emitting element ED based on the PWM data voltage V_PWM.
[0281] 22, the initialization voltage line VIL, the initialization scan line GIL, the write scan line GWL, the PWM emission control line PWEL, the horizontal power line HVDL, the gate-off voltage line VGHL, the sweep signal line SWPL, the control scan line GCL, the PAM emission control line PAEL, the test signal line TSTL, and the third power line VSL may extend in a first direction DR1 and be spaced apart from each other in a second direction DR2. The initialization voltage line VIL, the initialization scan line GIL, the write scan line GWL, the PWM emission control line PWEL, the horizontal power line HVDL, the gate-off voltage line VGHL, the sweep signal line SWPL, the control scan line GCL, the PAM emission control line PAEL, the test signal line TSTL, and the third power line VSL may be formed by a first source metal layer SDL1 disposed on the interlayer insulating layer ILD.
[0282] For example, the initialization scan line GIL, the write scan line GWL, the PWM light emission control line PWEL, the control scan line GCL, the PAM light emission control line PAEL, and the test signal line TSTL may each be connected to the gate electrodes of the corresponding transistors via contact holes penetrating (e.g., passing through) the interlayer insulating layer ILD and the second gate insulating layer GI2.
[0283] For example, the initialization voltage line VIL, the horizontal power line HVDL, the gate-off voltage line VGHL, the sweep signal line SWPL, and the third power line VSL may be connected to the source electrode SE or drain electrode DE of the corresponding transistor via contact holes penetrating (e.g., passing through) the interlayer insulating layer ILD, the second gate insulating layer GI2, and the first gate insulating layer GI1, respectively.
[0284] The data line DL, the vertical power line VVDL, and the PAM data line RDL may extend in a second direction DR2 and may be spaced apart from each other in the first direction DR1. The data line DL, the vertical power line VVDL, and the PAM data line RDL may be formed by a second source metal layer SDL2 disposed on the first protective layer PAS1.
[0285] The data line DL and the PAM data line RDL may be connected to the source electrode SE or drain electrode DE of the corresponding transistor via a contact hole penetrating (e.g., passing through) the first protective layer PAS1, the first via layer VIA1, the interlayer insulating layer ILD, the second gate insulating layer GI2, and the first gate insulating layer GI1.
[0286] In one embodiment, the vertical power line VVDL and the horizontal power line HVDL may be disposed on different layers and may be connected to each other through contact holes penetrating (e.g., passing through) the first protective layer PAS1 and the first via layer VIA1. The vertical power line VVDL and the horizontal power line HVDL may form the first power line VDL1.
[0287] In one embodiment, although not shown, the second power supply line VDL2 may be formed of a third source metal layer SDL3 disposed on the second protective layer PAS2. The second power supply line VDL2 may be connected to the sixth and seventh transistors T6 and T7 via contact holes penetrating (e.g., through) the second protective layer PAS2, the second via layer VIA2, the first protective layer PAS1, and the first via layer VIA1.
[0288] Each of the first to nineteenth transistors T1 to T19 may be stacked in a structure similar to the stacked structure of the transistor TFT described above with reference to FIG. 16. For example, each of the first to nineteenth transistors T1 to T19 may include a channel CH, a source electrode SE, and a drain electrode DE formed in the active layer ACTL, and a gate electrode GE formed in the first gate layer GTL1. For convenience of explanation, in FIG. 22, the gate electrode formed in the first gate layer GTL1 and the channel CH portion of the active layer ACTL overlapping therewith are defined as the transistors T1 to T19. Both sides of the channel CH of the active layer ACTL can be understood to be the source electrode SE and the drain electrode DE (e.g., one electrode and the other electrode), respectively.
[0289] In one embodiment, the active layer ACTL including the channel CH, the source electrode SE, and the drain electrode DE of the first to nineteenth transistors T1 to T19 may be integrally formed.
[0290] Each of the first to third capacitors C1, C2, and C3 may be stacked in a similar structure to the stacked structure of the first capacitor C1 described above with reference to Fig. 12. For example, each of the first to third capacitors C1, C2, and C3 may include a lower electrode formed in the first gate layer GTL1 and an upper electrode formed in the second gate layer GTL2.
[0291] In one embodiment, the current generating circuit CGC may include first to eleventh transistors T1 to T11 and a first capacitor C1.
[0292] The first transistor T1 serves as a driving transistor and can generate a driving current to be supplied to the light emitting element ED during the light emitting period.
[0293] The second transistor T2 may be connected between the PAM data line RDL and a second node N2. A gate electrode of the second transistor T2 may be connected to a write scan line GWL through a contact hole. The second transistor T2 may be turned on in response to a write scan signal provided to the write scan line GWL.
[0294] A PAM data voltage V_PAM may be supplied to the PAM data line RDL. The PAM data voltage V_PAM may determine the magnitude of a driving current. Unlike an organic light emitting diode, the luminance of the light emitting element ED, which is an inorganic light emitting diode, is not sensitive to changes in the driving current. Therefore, the luminance of the light emitting element ED may be controlled by the time during which the driving current is supplied, rather than by the magnitude of the driving current.
[0295] In one embodiment, the PAM data voltage V_PAM may be supplied with the same or substantially the same magnitude to the same type of sub-pixels emitting the same color light, regardless of gray scale, etc. However, the present disclosure is not limited thereto, and the PAM data voltage V_PAM may vary according to a criterion (e.g., a predetermined criterion).
[0296] The third transistor T3 may be electrically connected between the gate electrode (e.g., the first node N1) of the first transistor T1 and the drain electrode (e.g., the third node N3) of the first transistor T1. The gate electrode of the third transistor T3 may be connected to the write scan line GWL.
[0297] The third transistor T3 may be turned on together with the second transistor T2 and may diode-connect the first transistor T1, thereby compensating for the threshold voltage of the first transistor T1. In one embodiment, the third transistor T3 may have a configuration in which a plurality of transistors are connected in series, and may include gate electrodes connected in common. For example, as shown in FIG. 22, the gate electrode of the third transistor T3 may be divided into two branches, each of which overlaps with the active layer ACTL.
[0298] The fourth transistor T4 may be connected between the first node N1 and an initialization voltage line VIL for supplying a voltage of an initialization power supply Vint. A gate electrode of the fourth transistor T4 may be connected to an initialization scan line GIL through a contact hole. The fourth transistor T4 may be turned on in response to an initialization scan signal supplied to the initialization scan line GIL. When the fourth transistor T4 is turned on, the voltage of the initialization power supply Vint may be supplied to the first node N1. In other words, the gate voltage of the first transistor T1 may be initialized.
[0299] In one embodiment, the fourth transistor T4 may have a form in which a plurality of transistors are connected in series, and may include a gate electrode connected in common. For example, as shown in FIG 22, the gate electrode of the fourth transistor T4 may be divided into two branches, each of which may overlap with the active layer ACTL.
[0300] The voltage of the initialization power supply Vint may be low enough to turn on the transistors.
[0301] The fifth transistor T5 may be connected between the third node N3 and an anode electrode (e.g., the fourth node N4) of the light emitting element ED. For example, the drain electrode of the fifth transistor T5 may be connected to the anode connecting electrode ACE through a contact hole. The anode connecting electrode ACE may be connected to the upper anode AND (shown in FIG. 16) through a contact hole.
[0302] A gate electrode of the fifth transistor T5 may be connected to a PAM emission control line PAEL through a contact hole, and the fifth transistor T5 may be turned on in response to a PAM emission control signal provided to the PAM emission control line PAEL.
[0303] The sixth transistor T6 may be connected between a second power supply line VDL2 for supplying a voltage of a second power supply VDD2 and a second node N2. A gate electrode of the sixth transistor T6 may be connected to a PWM light emission control line PWEL through a contact hole. The sixth transistor T6 may be turned on in response to a PWM light emission control signal provided to the PWM light emission control line PWEL. In one embodiment, the PWM light emission control signal and the PAM light emission control signal may be provided at the same or substantially the same timing.
[0304] The seventh transistor T7 may be connected between the second power supply line VDL2 and the second capacitor electrode CE2 (e.g., the upper electrode in FIG. 16) of the first capacitor C1. The second capacitor electrode CE2 of the first capacitor C1 may be formed on the second gate layer GTL2. The gate electrode of the seventh transistor T7 may be connected to the PWM light emission control line PWEL through a contact hole.
[0305] The seventh transistor T7 may be turned on in response to the PWM light emission control signal, so that the second capacitor electrode CE2 of the first capacitor C1 may be coupled to the second power supply VDD2 during the light emission period.
[0306] The eighth transistor T8 may be connected between a first power supply line VDL1 for supplying a voltage of the first power supply VDD1 and the second capacitor electrode CE2 of the first capacitor C1. For example, one electrode of the eighth transistor T8 may be connected to the vertical power supply line VVDL through a contact hole, and the other electrode may be connected to the second capacitor electrode CE2 of the first capacitor C1 through a contact hole.
[0307] The gate electrode of the eighth transistor T8 may be connected to the control scan line GCL through a contact hole. The eighth transistor T8 may be turned on in response to a control scan signal. When the eighth transistor T8 is turned on, the voltage of the first power supply VDD1 may be supplied to the second capacitor electrode CE2 of the first capacitor C1.
[0308] The voltage of the first power supply VDD1 and the voltage of the second power supply VDD2 may be the same or substantially the same, or may be different from each other.
[0309] The write scan signal, the initialization scan signal, and the control scan signal may be supplied during a non-light emitting period. The initialization scan signal may be supplied prior to the write scan signal. The control scan signal may be supplied at the same or substantially the same timing as the supply timing of the write scan signal. However, the present disclosure is not limited thereto, and the control scan signal may be supplied after the write scan signal is supplied.
[0310] The first capacitor electrode CE1 of the first capacitor C1 may be connected to the gate electrode of the first transistor T1, in other words, the first node N1. For example, the first capacitor electrode CE1 of the first capacitor C1 and the gate electrode of the first transistor T1 may be integrally formed. It may be understood that the portion of the gate electrode of the first transistor T1 that overlaps with the second capacitor electrode CE2 of the first capacitor C1 is the first capacitor electrode CE1.
[0311] The first capacitor C1 may act as a storage capacitor that stores the PAM data voltage V_PAM.
[0312] The ninth transistor T9 may be connected between a drain electrode of the fifth transistor T5 corresponding to the fourth node N4 and the initialization voltage line VIL, and an electrode of the ninth transistor T9 may be connected to the initialization voltage line VIL through a contact hole.
[0313] The gate electrode of the ninth transistor T9 may be connected to the control scan line GCL through a contact hole. The ninth transistor T9 may supply a voltage of an initialization power supply Vint to the fourth node N4 in response to a control scan signal. Thus, the voltage of the initialization power supply Vint may be provided to the anode AND through the anode connecting electrode ACE.
[0314] The tenth transistor T10 may be connected between the fourth node N4 and a third power line VSL for supplying a second power supply VDD2, and may be turned on in response to a test voltage provided to a test signal line TSTL.
[0315] During the manufacturing process, the tenth transistor T10 may be turned on in response to a test voltage before the light emitting element ED is connected to the pixel circuit PC, and may be used to check whether or not there is an abnormality in the pixel circuit PC. One electrode of the tenth transistor T10 may be electrically connected to the anode connecting electrode ACE through a contact hole, and the other electrode may be connected to the third power line VSL through a contact hole. The voltage of the third power supply VSS supplied to the third power supply line VSL may be lower than the voltages of the first power supply VDD1 and the second power supply VDD2. For example, the voltage of the third power supply VSS may correspond to a ground voltage.
[0316] The gate electrode of the tenth transistor T10 may be connected to a test signal line TSTL via a contact hole.
[0317] The eleventh transistor T11 may be connected between the third node N3 and the fifth transistor T5. For example, the eleventh transistor T11 may be formed between the first transistor T1 and the fifth transistor T5.
[0318] A gate electrode of the eleventh transistor T11 may be connected to a bottom electrode of the third capacitor C3. The gate electrode of the eleventh transistor T11 and the bottom electrode of the third capacitor C3 may be connected to a ninth node N9.
[0319] The eleventh transistor T11 may be turned on based on the voltage of the ninth node N9, and the turn-on time of the eleventh transistor T11 may correspond to the light emitting period (eg, light emitting duty) of the light emitting element ED.
[0320] The PWM circuit PWMC can control the turn-on time of the eleventh transistor T11 according to the PWM data voltage V_PWM. The PWM circuit PWMC can include twelfth to nineteenth transistors T12 to T19, a second capacitor C2, and a third capacitor C3.
[0321] The twelfth transistor T12 may be turned on during the light emitting period based on the PWM data voltage V_PWM and the sweep voltage supplied to the sweep signal line SWPL. The twelfth transistor T12 may be connected between the sixth node N6 and the seventh node N7. The gate electrode of the twelfth transistor T12 may correspond to the fifth node N5.
[0322] The thirteenth transistor T13 may be connected between the data line DL and a sixth node N6 (eg, one electrode of the twelfth transistor T12).
[0323] The gate electrode of the thirteenth transistor T13 may be connected to the write scan line GWL through a contact hole, and the thirteenth transistor T13 may provide a PWM data voltage V_PWM to the sixth node N6 in response to a write scan signal.
[0324] The fourteenth transistor T14 may be connected between the fifth node N5 and the seventh node N7. For example, the twelfth transistor T12 and the fourteenth transistor T14 may be connected to each other through a connection pattern (e.g., a predetermined connection pattern) of the second source metal layer SDL2.
[0325] A gate electrode of the fourteenth transistor T14 may be connected to the write scan line GWL through a contact hole. The fourteenth transistor T14 may diode-couple the twelfth transistor T12 in response to a write scan signal to compensate for a threshold voltage of the twelfth transistor T12. A PWM data voltage V_PWM whose threshold voltage has been compensated may be provided to a fifth node N5.
[0326] In one embodiment, the fourteenth transistor T14 may have a configuration in which a plurality of transistors are connected in series, and may include a gate electrode connected in common. For example, as shown in FIG 22, the gate electrode of the fourteenth transistor T14 may be divided into two branches, each of which overlaps with the active layer ACTL.
[0327] The fifteenth transistor T15 may be connected between the fifth node N5 and the initialization voltage line VIL. A gate electrode of the fifteenth transistor T15 may be connected to the initialization scan line GIL through a contact hole. The fifteenth transistor T15 may supply a voltage of an initialization power supply Vint to the fifth node N5 in response to an initialization scan signal supplied to the initialization scan line GIL.
[0328] In one embodiment, the fifteenth transistor T15 may have a configuration in which a plurality of transistors are connected in series, and may include a gate electrode connected in common. For example, as shown in FIG 22, the gate electrode of the fourteenth transistor T14 may be divided into two branches, each of which overlaps with the active layer ACTL.
[0329] The sixteenth transistor T16 may be connected between the first power supply line VDL1 and a sixth node N6. The gate electrode of the sixteenth transistor T16 may be connected to the PWM light emission control line PWEL through a contact hole.
[0330] The seventeenth transistor T17 may be connected between the seventh node N7 and the ninth node N9. The gate electrode of the seventeenth transistor T17 may be connected to the PWM light emission control line PWEL through a contact hole.
[0331] The sixteenth and seventeenth transistors T16 and T17 may be turned on in response to a PWM light emission control signal, that is, the sixteenth and seventeenth transistors T16 and T17 may provide a conductive path between the first power line VDL1 and the ninth node N9.
[0332] The 18th transistor T18 may be connected between an eighth node N8 to which a sweep signal line SWPL is connected and a gate-off voltage line VGHL for supplying a gate-off voltage VGH (e.g., a high potential voltage). For example, one electrode of the 18th transistor T18 may be connected to the sweep signal line SWPL through a contact hole, and the other electrode may be connected to the gate-off voltage line VGHL through a contact hole.
[0333] The eighteenth transistor T18 may supply the high potential voltage VGH to the eighth node N8 in response to the third scan signal.
[0334] Therefore, when the fifteenth and eighteenth transistors T15 and T18 are both (eg, simultaneously) turned on, a voltage difference between the gate-off voltage VGH and the initialization power supply Vint may be stored across the second capacitor C2.
[0335] The 19th transistor T19 may be connected between the 9th node N9 and the initialization voltage line VIL. One electrode of the 19th transistor T19 may be connected to the gate electrode of the 11th transistor T11 through a contact hole and a connection pattern connected thereto. The other electrode of the 19th transistor T19 may be connected to the initialization voltage line VIL through a contact hole.
[0336] The gate electrode of the 19th transistor T19 may be connected to the control scan line GCL through a contact hole, and the 19th transistor T19 may supply a voltage of an initialization power supply Vint to a ninth node N9 in response to a control scan signal.
[0337] Also, the third capacitor C3 may be connected between the ninth node N9 and the initialization voltage line VIL. For example, a lower electrode of the third capacitor C3 may be integrally formed with the gate electrode of the eleventh transistor T11, and an upper electrode of the third capacitor C3 may be formed in the second gate layer GTL2 overlapping the initialization voltage line VIL. The upper electrode of the third capacitor C3 may be connected to the initialization voltage line VIL through a contact hole.
[0338] As a result, the third capacitor C3 is charged with the voltage of the initialization power supply Vint, and the ninth node N9 can maintain or substantially maintain the voltage of the initialization power supply Vint.
[0339] In one embodiment, the 19th transistor T19 may have a form in which a plurality of transistors are connected in series, and the 19th transistor T19 may include a gate electrode connected in common. For example, as shown in FIG 22, the gate electrode of the 19th transistor T19 may have a bent shape, and two portions may overlap the active layer ACTL.
[0340] When the fifth and sixth transistors T5 and T6 are turned on, a current path through the turned-on eleventh transistor T11 may be formed between the second power line VDL2 and the third power line VSL, and the light emitting element ED may emit light. For example, the light emitting element ED may start emitting light when the twelfth transistor 12 is turned off.
[0341] The PWM circuit PWMC can control the light emitting time of the light emitting element ED based on the voltage set at the fifth node N5. For example, the PWM circuit PWMC can control the supply of the driving current by controlling the operation of the eleventh transistor T11 based on the voltage set at the fifth node N5.
[0342] In one embodiment, the PWM data voltage V_PWM may have a voltage range that turns off the twelfth transistor T12. For example, the PWM data voltage V_PWM may be determined within a voltage range of 10V to 15V. In this case, the voltage of the first power supply VDD1 may be about 10V. Therefore, when the sixteenth and seventeenth transistors T16 and T17 are turned on and the voltage of the first power supply VDD1 is supplied to the sixth node N6, the gate-source voltage of the twelfth transistor T12 is equal to or greater than the threshold voltage, so that the twelfth transistor T12 may be turned off. When the twelfth transistor T12 is turned off, the eleventh transistor T11 may maintain or substantially maintain a turned-on state due to the voltage of the initialization power supply Vint stored in the third capacitor C3, and the light-emitting time of the light-emitting element ED may be maintained or substantially maintained.
[0343] However, if the voltage of the fifth node N5 changes and the gate-source voltage of the twelfth transistor T12 becomes lower than the threshold voltage, the twelfth transistor T12 is turned on, the voltage of the first power supply VDD1 is supplied to the ninth node N9, and the eleventh transistor T11 is turned off, so that the light emission of the light emitting element ED may be interrupted.
[0344] Specifically, the sweep voltage provided to the sweep signal line SWPL can be changed in synchronization with the supply of the PAM light emission control signal and the PWM light emission control signal. For example, the sweep voltage can have a triangular wave shape that decreases during the period in which the PAM light emission control signal and the PWM light emission control signal are supplied. For example, the sweep voltage can be a voltage that decreases linearly from 15V to 10V, but the present disclosure is not limited thereto.
[0345] Since the change in the sweep voltage is coupled to the fifth node N5 via the second capacitor C2, the voltage of the fifth node N5 can change according to the change in the sweep voltage. Therefore, the time when the twelfth transistor T12 is turned on can be determined according to the magnitude of the voltage set to the fifth node N5 by writing the PWM data voltage V_PWM, and the light emitting time of the light emitting element ED can be controlled.
[0346] By controlling the light emitting time of the light emitting element ED in this way, the light emitting brightness can be adjusted.
[0347] However, the structure of the pixel circuit is not limited to that shown in FIG. 21 and FIG. 22, and various known pixel circuit structures are possible.
[0348] FIG. 23 is a cross-sectional view showing an example in which display devices included in the tiled display device of FIG. 4 are connected to each other.
[0349] 4, 12, 14, 15, 16, 17, and 23, a tiled display device TD may include a first display device 10-1 and a second display device 10-2 that are adjacent to and connected to each other.
[0350] The first display device 10-1 may include a first substrate SUB1, a light emitting element ED, a first cover layer COV1, a first side connection line SCL1, and a first overcoating layer OC1. The first substrate SUB1, the light emitting element ED, and the first cover layer COV1 may be sequentially stacked along a third direction DR3. The second display device 10-2 may include a second substrate SUB2, the light emitting element ED, a second cover layer COV2, a second side connection line SCL2, and a second overcoating layer OC2. The second substrate SUB2, the light emitting element ED, and the second cover layer COV2 may be sequentially stacked along the third direction DR3.
[0351] Each of the first cover layer COV1 and the second cover layer COV2 may be substantially the same or of substantially the same construction as the cover layer COV described above with reference to FIG.
[0352] Each of the first substrate SUB1 and the second substrate SUB2 can include the configurations of the substrate SUB and the pixel circuit layer PCL described above with reference to FIGS.
[0353] Each of the first and second display devices 10-1 and 10-2 may include a chamfered surface CHM, which may prevent or substantially prevent the first substrate SUB1 and the second substrate SUB2 from colliding with each other and being damaged when the first and second display devices 10-1 and 10-2 are coupled to each other.
[0354] The first side connection line SCL1 and the first overcoating layer OC1 may be disposed at an edge EDG including the chamfered surface CHM of the first substrate SUB1. The first side connection line SCL1 and the first overcoating layer OC1 may extend to a portion of the top surface and a portion of the back surface of the first substrate SUB1. The first overcoating layer OC1 may cover the entire first side connection line SCL1.
[0355] The second side connection line SCL2 and the second overcoating layer OC2 may be disposed at an edge EDG including the chamfered surface CHM of the second substrate SUB2. The second side connection line SCL2 and the second overcoating layer OC2 may extend to a portion of the top surface and a portion of the back surface of the second substrate SUB2. The second overcoating layer OC2 may cover the entire second side connection line SCL2.
[0356] The first substrate SUB1 and the second substrate SUB2 may each be provided with a light emitting element ED and a bank BNK located between the light emitting elements ED. The bank BNK may be realized by a black anisotropic conductive film BACF.
[0357] The first cover layer COV1 is provided so as to cover the first substrate SUB1 and the light-emitting element ED mounted thereon, and can protect the first substrate SUB1 and the light-emitting element ED from the outside.
[0358] The second cover layer COV2 is provided to cover the second substrate SUB2 and the light-emitting element ELD mounted thereon, and can protect the second substrate SUB2 and the light-emitting element ED from the outside.
[0359] The first cover layer COV1 and the second cover layer COV2 can reduce the visibility of the bonding region SM (e.g., a seam) formed by the gap G formed between the first substrate SUB1 (or the display device 10-1) and the second substrate SUB2 (or the second display device 10-2), and improve the color deviation between the first display device 10-1 and the second display device 10-2.
[0360] The first cover layer COV1 may protrude outward beyond an edge EDG of the first substrate SUB1, and the second cover layer COV2 may protrude outward beyond an edge EDG of the second substrate SUB2. A gap G between the first substrate SUB1 and the second substrate SUB2 may be larger than the gap between the first cover layer COV1 and the second cover layer COV2.
[0361] In one embodiment, in the gap G between the first substrate SUB1 and the second substrate SUB2, the first overcoating layer OC1 and the second overcoating layer OC2 may face each other.
[0362] The first overcoating layer OC1 and the second overcoating layer OC2, which exhibit black, can absorb light incident on the gap G. In addition, the first overcoating layer OC1 and the second overcoating layer OC2 can block light reflection from the first and second side connection lines SCL1, SCL2. The first overcoating layer OC1 and the second overcoating layer OC2 can prevent or substantially prevent foreign matter and / or moisture from entering the spaces between the first substrate SUB1 and the first cover layer COV1 and between the second substrate SUB2 and the second cover layer COV2, respectively.
[0363] FIG. 24 is a block diagram showing an example of the tiled display device of FIG.
[0364] For convenience of explanation, FIG. 24 shows a first display device 10-1 and a host system HOST.
[0365] Referring to Figures 4 and 24, a tiled display device TD according to one embodiment may include a host system HOST, a broadcast tuning unit 210 (e.g., a broadcast tuner), a signal processing unit 220 (e.g., a signal processor), a display unit 230 (e.g., a display or display device), a speaker 240, a user input unit 250 (e.g., a user input device), a memory unit 260 (e.g., a memory device), a network communication unit 270 (e.g., a network communication device), a UI generation unit 280 (e.g., a UI generator), and a control unit 290 (e.g., a controller or controller).
[0366] The host system HOST may be embodied as a television system, a home theater system, a set-top box, a navigation system, a DVD player, a Blu-ray player, a personal computer, a mobile phone system, a tablet, or the like.
[0367] A user's command may be input to the host system HOST in various suitable forms. For example, the host system HOST may receive a command by touch input from the user. As another example, the host system HOST may receive a command by keyboard input or button input from a remote controller.
[0368] The host system HOST can receive an input of original video data corresponding to an original image from the outside. The host system HOST can divide the original video data into the number of display devices. For example, the host system HOST can divide the original video data into first video data corresponding to a first image, second video data corresponding to a second image, third video data corresponding to a third image, and fourth video data corresponding to a fourth image, corresponding to a first display device 10-1, a second display device 10-2, a third display device 10-3, and a fourth display device 10-4 included in a tiled display device.
[0369] The host system HOST can transmit first video data to the first display device 10-1, second video data to the second display device 10-2, third video data to the third display device 10-3, and fourth video data to the fourth display device 10-4.
[0370] The first display device 10-1 can display a first image according to the first video data, the second display device 10-2 can display a second image according to the second video data, the third display device 10-3 can display a third image according to the third video data, and the fourth display device 10-4 can display a fourth image according to the fourth video data, allowing the user to view an original image in which the first to fourth images displayed on the first to fourth display devices 10-1, 10-2, 10-3, and 10-4 are combined with each other.
[0371] The first display device 10-1 may include a broadcast tuning unit 210, a signal processing unit 220, a display unit 230, a speaker 240, a user input unit 250, a memory unit 260, a network communication unit 270, a UI generation unit 280, and a control unit 290.
[0372] The broadcast tuning unit 210 can tune a channel frequency (e.g., a predetermined channel frequency) under the control of the control unit 290 and receive a broadcast signal of the corresponding channel through an antenna. The broadcast tuning unit 210 can include a channel detection module (e.g., a channel detector) and an RF demodulation module (e.g., an RF demodulator).
[0373] The broadcast signal demodulated by the broadcast tuning unit 210 is processed by the signal processing unit 220 and output to the display unit 230 and the speaker 240. Here, the signal processing unit 220 may include a demultiplexer 221, a video decoder 222, a video processing unit 223 (e.g., a video processor), an audio decoder 224, and an additional data processing unit 225 (e.g., an additional data processor).
[0374] The demultiplexer 221 separates the demodulated broadcast signal into a video signal, an audio signal, and additional data. The separated video signal, audio signal, and additional data are restored by a video decoder 222, an audio decoder 224, and an additional data processor 225, respectively. For example, the video decoder 222, the audio decoder 224, and the additional data processor 225 can restore the signals to a decoding format corresponding to the encoding format used when the broadcast signal was transmitted.
[0375] The decoded video signal is converted by the video processor 223 to have a vertical frequency, resolution, screen ratio, etc. that meets the output standard of the display unit 230 , and the decoded audio signal is output to the speaker 240 .
[0376] The display unit 230 can display images.
[0377] The user input unit 250 can receive a signal transmitted by the host system HOST. The user input unit 250 can be provided so that the user can select and input data for commands related to communication with other display devices as well as data related to channel selection, UI (User Interface) menu selection and operation transmitted by the host system HOST.
[0378] The storage unit 260 stores various software programs including an OS program, recorded broadcast programs, videos, photos, and other data, and may be formed of a storage medium such as a hard disk or a non-volatile memory.
[0379] The network communication unit 270 is for short-range communication with the host system HOST and other display devices, and can be embodied as a communication module including an antenna pattern that can embody mobile communication, data communication, Bluetooth, RF, Ethernet, etc.
[0380] The network communication unit 270 can also transmit and receive wireless signals to and from at least one of a base station, an external terminal, and a server on a mobile communication network constructed in accordance with a technical standard or communication method for mobile communication (e.g., Global System for Mobile communication (GSM), Code Division Multi Access (CDMA), Code Division Multi Access 2000 (CDMA2000), Enhanced Voice-Data Optimized or Enhanced Voice-Data Only (EV-DO), Wideband CDMA (WCDMA (registered trademark)), High Speed Downlink Packet Access (HSDPA), High Speed Uplink Packet Access (HSUPA), Long Term Evolution (LTE), Long Term Evolution-Advanced (LTE-A), 5G, etc.) via an antenna pattern described later.
[0381] The network communication unit 270 can also transmit and receive wireless signals over a communication network using wireless Internet technologies via antenna patterns, which will be described in more detail below. Examples of wireless Internet technologies include Wireless LAN (WLAN), Wireless-Fidelity (Wi-Fi), Wireless Fidelity (Wi-Fi) Direct, Digital Living Network Alliance (DLNA), Wireless Broadband (WiBro), World Interoperability for Microwave Access (WiMAX), High Speed Downlink Packet Access (HSDPA), High Speed Uplink Packet Access (HSUPA), Long Term Evolution (LTE), and Long Term Evolution-Advanced (LTE-A). The antenna patterns transmit and receive data using at least one wireless Internet technology, including Internet technologies not listed above.
[0382] The UI generating unit 280 generates a UI menu for communication with the host system HOST and other display devices, and can be embodied by an algorithm code and an OSD IC. The UI menu for communication with the host system HOST and other display devices can be a menu for specifying a partner digital TV with which communication is desired and for selecting a desired function.
[0383] The control unit 290 is responsible for the overall control of the first display device 10-1 and for communication control of the host system HOST and the second, third and fourth display devices 10-2, 10-3 and 10-4. The control unit 290 may be embodied by a microcontroller unit (MCU) that stores algorithm codes for control and executes the stored algorithm codes.
[0384] The control unit 290 controls the transmission of the corresponding control command and data to the host system HOST and the second, third, and fourth display devices 10-2, 10-3, and 10-4 via the network communication unit 270 in response to the input and selection of the user input unit 250. When a control command (e.g., a predetermined control command) and data are input from the host system HOST and the second, third, and fourth display devices 10-2, 10-3, and 10-4, an operation is performed according to the corresponding control command.
[0385] The block diagrams of the second, third, and fourth display devices 10-2, 10-3, and 10-4 are identical or substantially identical to the block diagram of the first display device 10-1 described above with reference to Figure 24, so descriptions thereof can be omitted.
[0386] Although several embodiments have been described above, those skilled in the art will understand that the embodiments can be modified and changed in various ways without departing from the spirit and scope of the present disclosure. It will be understood that the description of features or aspects in each embodiment should generally be considered as applicable to other similar features or aspects of other embodiments, unless otherwise specified. Therefore, as will be apparent to those skilled in the art, features, properties, and / or configurations described in connection with a particular embodiment can be used alone or in combination with features, properties, and / or configurations described in connection with other embodiments, unless otherwise specifically indicated. Therefore, the above contents are illustrative of various exemplary embodiments and should not be construed as being limited to the specific embodiments disclosed herein, and various modifications to the disclosed embodiments and other exemplary embodiments are within the spirit and scope of the present disclosure as defined in the following appended claims and their equivalents.
Claims
1. a substrate including a display area and a non-display area surrounding the display area; a transistor layer on the first surface of the substrate, the transistor layer including transistors of pixel circuits located in the display region; a pad portion electrically connected to the pixel circuit in the non-display region of the transistor layer; a first via layer on the transistor layer and separated from the pad portion; a second via layer on the first via layer, the second via layer having a step with the first via layer so as to expose a part of an upper surface of the first via layer; a third via layer on the second via layer, the third via layer having a step with the second via layer so as to expose a part of an upper surface of the second via layer; a display element layer including a light emitting element electrically connected to the transistor on the third via layer in the display region; lead lines located on a second surface of the substrate; a side connection line disposed on the first surface of the substrate, the second surface of the substrate, and a surface of one side of the substrate between the first surface and the second surface, the side connection line electrically connecting the pad portion and the lead line to each other; an overcoating layer covering the entire side connection line and overlapping the upper surface of the first via layer exposed from the second via layer.
2. The display device of claim 1 , wherein one end of the overcoating layer faces one end of the second via layer.
3. the overcoating layer overlies at least a portion of the exposed top surface of the second via layer; The display device of claim 1 , wherein one end of the overcoating layer faces one end of the third via layer.
4. The display device of claim 1 , wherein the overcoating layer comprises an insulating layer, the insulating layer directly contacting the side connection line, and the insulating layer comprises a black pigment.
5. The transistor layer comprises: an interlayer insulating layer on the transistor in contact with the first via layer; The display device of claim 1 , wherein the interlayer insulating layer includes a portion exposed from the first via layer and the pad portion.
6. The display element layer is a pixel electrode electrically connected to the light emitting element on the third via layer; a protection layer on the pixel electrode and the pad portion, exposing a part of an upper surface of the pixel electrode and a part of an upper surface of the pad portion; The display device according to claim 5 , wherein the protective layer contacts the exposed portion of the interlayer insulating layer, the first via layer, the second via layer, and the third via layer.
7. The display device of claim 6 , wherein the side connection line is located on the protective layer and overlaps the exposed portion of the interlayer insulating layer.
8. The display device according to claim 6 , wherein one end of the overcoating layer faces one end of the second via layer with the protective layer interposed therebetween.
9. The display device according to claim 8 , wherein the one end of the second via layer has a shape that extends linearly in the first direction on a plane.
10. the overcoating layer overlaps at least a portion of the exposed top surface of the second via layer; The display device according to claim 6 , wherein one end of the overcoating layer faces one end of the third via layer with the protective layer interposed therebetween.
11. The display device according to claim 10 , wherein the one end of the second via layer has a shape that extends linearly in a first direction on a plane.
12. a first source metal layer on the transistor layer, the first source metal layer being covered by the first via layer in the display area; a second source metal layer located on the first via layer in the display area and covered by the second via layer; The display device according to claim 6 , further comprising: a third source metal layer located on the second via layer in the display area and covered by the third via layer.
13. The pad portion is a first pad electrode formed together with the first source metal layer; a second pad electrode formed together with the second source metal layer and directly on the first pad electrode; a third pad electrode formed together with the third source metal layer and directly on the second pad electrode; a fourth pad electrode formed together with the pixel electrode and directly on the third pad electrode; The display device of claim 12 , wherein a portion of each of the first to fourth pad electrodes is in contact with the protective layer.
14. The display element layer is In the display area, the display further includes a black anisotropic conductive film located on a portion of the overcoating layer and the protective layer, the black anisotropic conductive film including a black pigment and fine conductive particles; The display device of claim 6 , wherein the light emitting element and the pixel electrode are electrically connected to each other through the fine conductive particles.
15. a second surface electrode disposed on the second surface of the substrate; a flexible film electrically connected to the second surface electrode via a conductive adhesive member, The display device of claim 1 , wherein the side connection line is electrically connected to the second surface electrode via the lead line.
16. The display device according to claim 1 , wherein the light emitting element is a flip-chip type micro light emitting diode element.
17. In the tiled display device, The tile display device includes: A plurality of display devices; and a coupling region between the plurality of display devices that couples the plurality of display devices to each other; At least one of the plurality of display devices is a substrate including a display area and a non-display area surrounding the display area; a transistor layer on the first surface of the substrate, the transistor layer including transistors of pixel circuits located in the display region; a pad portion electrically connected to the pixel circuit in the non-display region of the transistor layer; a first via layer on the transistor layer and separated from the pad portion; a second via layer on the first via layer, the second via layer having a step with the first via layer so as to expose a part of an upper surface of the first via layer; a third via layer on the second via layer, the third via layer having a step with the second via layer so as to expose a part of an upper surface of the second via layer; a display element layer including a light emitting element electrically connected to the transistor on the third via layer in the display region; lead lines disposed on a second surface of the substrate; a side connection line disposed on the first surface of the substrate, the second surface of the substrate, and one side surface of the substrate between the first surface and the second surface, electrically connecting the pad portion and the lead line to each other; an overcoating layer including a black pigment, the overcoating layer covering the entire side connection line and overlapping the upper surface of the first via layer exposed from the second via layer.
18. The tiled display device of claim 17 , wherein one end of the overcoating layer faces one end of the second via layer.
19. the overcoating layer overlaps at least a portion of the exposed top surface of the second via layer; The tiled display device of claim 17 , wherein one end of the overcoating layer faces one end of the third via layer.
20. The display element layer is a pixel electrode electrically connected to the light emitting element on the third via layer; a protection layer on the pixel electrode and the pad portion, exposing a part of an upper surface of the pixel electrode and a part of an upper surface of the pad portion; The tiled display device of claim 17 , wherein the protection layer contacts the first via layer, the second via layer, and the third via layer.
21. The tiled display device of claim 20 , wherein one end of the overcoating layer faces one end of the second via layer with the protective layer interposed therebetween.
22. The tiled display device according to claim 17 , wherein each of the light-emitting elements comprises a flip-chip type micro light-emitting diode element.
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