Display device and manufacturing method thereof

By forming recesses or convex portions on a substrate to match the height of chips with different thicknesses, the display device manufacturing method aligns terminals on the same plane, simplifying the electrical connection and manufacturing process.

JP7680573B2Active Publication Date: 2025-05-20JAPAN DISPLAY INC
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Patent Information

Application Number
JP2023575139
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-01-18
Filing Date
2022-12-19
Publication Date
2025-05-20
Estimated Expiration
2042-12-19

AI Technical Summary

Technical Problem

Existing display devices face challenges in aligning terminals of multiple chips with different thicknesses on the same plane, which complicates the electrical connection and manufacturing process.

Method used

A display device and manufacturing method that involve forming recesses or convex portions on a substrate to match the height of LED and circuit chips, allowing the terminals to be aligned on the same plane and facilitating direct electrical connection.

Benefits of technology

This approach simplifies the manufacturing process by ensuring that all terminals are aligned at the same height, improving the efficiency of electrical connections and reducing manufacturing complexity.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This display device comprises: a substrate that has a first surface and a second surface on the reverse side from the first surface; a first chip that is disposed on the first surface and has a first terminal forming surface on which a first terminal is disposed on the reverse side from a first mounting surface that is in contact with the first surface; and a second chip that is disposed on the first surface, has a second terminal forming surface on which a second terminal is disposed on the reverse side from a second mounting surface that is in contact with the first surface, and has a thickness different from that of the first chip. The upper surface of the first terminal and the upper surface of the second terminal are located on the same plane parallel to the second surface.
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Description

[Technical field]

[0001] An embodiment of the present invention relates to a display device and a manufacturing method for a display device, and more particularly to a manufacturing method for a display device mounted with an LED (Light Emitting Diode) chip. [Background technology]

[0002] In recent years, LED displays, in which tiny LED chips are mounted on each pixel, have been developed as the next generation of display devices. LED displays have a structure in which multiple LED chips and a circuit chip are mounted on a substrate. The circuit chip has a drive circuit for making the LEDs emit light. These drive circuits are electrically connected to each LED chip.

[0003] The circuit chip and the LED chip are electrically connected via the connection electrodes of the wiring layer. Specifically, the terminals of the LED chip and the circuit chip are electrically connected to a plurality of connection electrodes of the wiring layer. For example, Patent Document 1 discloses a configuration in which the LED chips are disposed in recesses of an organic film corresponding to the thickness (or total height) of each LED chip. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] U.S. Pat. No. 1,093,7815 Summary of the Invention [Problem to be solved by the invention]

[0005] One of the objects of the present invention is to align terminals of a plurality of chips having different thicknesses on the same plane. [Means for solving the problem]

[0006] A display device according to one embodiment of the present invention comprises a substrate having a first surface and a second surface opposite to the first surface, a first chip arranged on the first surface and having a first terminal forming surface on which a first terminal is arranged opposite a first mounting surface in contact with the first surface, and a second chip arranged on the first surface and having a second terminal forming surface on which a second terminal is arranged opposite a second mounting surface in contact with the first surface, the second chip having a different thickness from the first chip, and the top surface of the first terminal and the top surface of the second terminal are located in the same plane parallel to the second surface.

[0007] A manufacturing method for a display device according to one embodiment of the present invention includes forming a first recess and a second recess having a depth different from the first recess on a first surface of a substrate, placing a first chip having a first terminal in the first recess, placing a second chip having a second terminal and having a thickness different from the first chip in the second recess, forming an insulating layer on the first chip and the second chip, the insulating layer having a surface parallel to a second surface opposite the first surface and including an upper surface of the first terminal and an upper surface of the second terminal, and forming wiring on the surface connecting the first terminal and the second terminal.

[0008] A manufacturing method for a display device according to another embodiment of the present invention includes forming a first convex portion and a second convex portion having a different height than the first convex portion on a first surface of a substrate, placing a first chip having a first terminal on the first convex portion, placing a second chip having a second terminal on the second convex portion and having a different thickness than the first chip, forming an insulating layer on the first chip and the second chip, the insulating layer having a surface that is parallel to a second surface opposite the first surface and includes an upper surface of the first terminal and an upper surface of the second terminal, and forming wiring on the surface connecting the first terminal and the second terminal. [Brief description of the drawings]

[0009] [Figure 1] 1 is a schematic diagram of a display device according to an embodiment of the present invention; [Diagram 2] FIG. 2 is an enlarged view of a pixel in a display device according to one embodiment of the present invention. [Diagram 3] 1 is a cross-sectional view of a pixel in a display device according to one embodiment of the present invention. [Figure 4] 5A to 5C are cross-sectional views illustrating a method for manufacturing a display device according to one embodiment of the present invention. [Diagram 5] 5A to 5C are cross-sectional views illustrating a method for manufacturing a display device according to one embodiment of the present invention. [Figure 6] 1A to 1C are plan views illustrating a manufacturing method of a display device according to an embodiment of the present invention. [Figure 7] 5A to 5C are cross-sectional views illustrating a method for manufacturing a display device according to one embodiment of the present invention. [Figure 8] 5A to 5C are cross-sectional views illustrating a method for manufacturing a display device according to one embodiment of the present invention. [Figure 9] 5A to 5C are cross-sectional views illustrating a method for manufacturing a display device according to one embodiment of the present invention. [Figure 10] 1 is a cross-sectional view of a pixel in a display device according to one embodiment of the present invention. [Figure 11] 5A to 5C are cross-sectional views illustrating a method for manufacturing a display device according to one embodiment of the present invention. [Figure 12] 5A to 5C are cross-sectional views illustrating a method for manufacturing a display device according to one embodiment of the present invention. [Figure 13] 5A to 5C are cross-sectional views illustrating a method for manufacturing a display device according to one embodiment of the present invention. [Figure 14] FIG. 11 is a cross-sectional view of a pixel in a display device according to a modified example of the present invention. [Figure 15] FIG. 11 is a cross-sectional view of a pixel in a display device according to a modified example of the present invention. [Figure 16] FIG. 13 is an enlarged view of a pixel in a display device according to a modified example of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] Each embodiment of the present invention will be described below with reference to the drawings. Note that each embodiment is merely an example, and those that a person skilled in the art can easily come up with by appropriately modifying the embodiment while maintaining the gist of the invention are naturally included in the scope of the present invention. In addition, in order to make the explanation clearer, the drawings may show the width, thickness, shape, etc. of each part in a schematic manner compared to the actual embodiment. However, the illustrated shapes are merely examples and do not limit the interpretation of the present invention.

[0011] In each embodiment of the present invention, the direction from the substrate toward the LED chip is referred to as "upper", and the opposite direction is referred to as "lower". However, the expressions "upper" and "lower" merely describe the upper-level relationship of each element. For example, the expression that the LED chip is disposed on the substrate includes the case where another member is interposed between the substrate and the LED chip. Furthermore, the expressions "upper" and "lower" include not only the case where each element overlaps in a plan view, but also the case where they do not overlap.

[0012] When describing the embodiments of the present invention, elements having the same functions as elements already described may be given the same reference numerals or the same reference numerals plus a symbol such as an alphabet, and the description may be omitted. In addition, when it is necessary to describe an element by distinguishing between the RGB colors, the element is distinguished by adding the symbol R, G, or B after the reference numeral indicating the element. However, when it is not necessary to describe an element by distinguishing between the RGB colors, the element is described using only the reference numeral indicating the element.

[0013] (First embodiment) In this embodiment, a display device 100 according to one embodiment of the present invention will be described with reference to FIGS.

[0014] <Display device overview> 1 is a schematic diagram of a display device 100 according to an embodiment of the present invention. The display device 100 includes a substrate 101 having a display area 102 and a peripheral area 103 surrounding the display area 102. A plurality of pixels 110 are arranged in an array in the display area 102. Each pixel 110 includes an LED chip and a circuit chip. A controller 104, a row control circuit 105, and a column control circuit 107 are arranged in the peripheral area 103. The row control circuit 105 and the column control circuit 107 are also referred to as drive circuits that drive the pixels 110.

[0015] The column control circuit 107 includes a column driver 108 connected to each column of the pixels 110. The column driver 108 is connected to a data line 136 that supplies a data signal commonly to all the pixels 110 arranged in the column. The row control circuit 105 also includes a row driver 106 connected to each row of the pixels 110. The row driver 106 is connected to a select line 134 that supplies a select signal commonly to all the pixels 110 arranged in the row. The array of pixels 110 is controlled by the controller 104 via the row control circuit 105 and the column control circuit 107.

[0016] 2 is an enlarged view of a pixel 110 in the display device 100. The pixel 110 has a plurality of LED chips 120 and a circuit chip 130. The plurality of LED chips 120 include, for example, red, green, and blue LEDs that emit red, green, and blue light. A full-color pixel 110 can be configured by controlling the LED chips 120R, 120G, and 120B.

[0017] The circuit chip 130 is formed on a substrate separate from the substrate 101. The circuit chip 130 is, for example, a bare chip such as an unpackaged integrated circuit substrate, such as a semiconductor substrate.

[0018] Although not shown in FIG. 2, the LED chip 120 has two terminals. The two terminals of the LED chip 120 are arranged on the upper surface of the LED chip 120 (terminal forming surface 120u opposite to mounting surface 120b on substrate 101). The circuit chip 130 has seven terminals. The seven terminals of the circuit chip 130 are arranged on the upper surface of the circuit chip 130 (terminal forming surface 130u opposite to mounting surface 130b on substrate 101). One terminal of the LED chip 120R is connected to the circuit chip 130 via wiring 118-1. One terminal of the LED chip 120G is connected to the circuit chip 130 via wiring 118-2. One terminal of the LED chip 120B is connected to the circuit chip 130 via wiring 118-3. The wiring 118-4 connects the other terminal of the LED chip 120R, the other terminal of the LED chip 120G, the other terminal of the LED chip 120B, the circuit chip 130, and the circuit chip 130 of the pixel 110 adjacent in the column direction. The wiring 118-5 connects the circuit chip 130 and the circuit chip 130 of the pixel 110 adjacent in the row direction. The wiring 118-6 connects the circuit chip 130 and the circuit chip 130 of the pixel 110 adjacent in the row direction. The wiring 118-7 connects the circuit chip 130 and the LED chips 120R, 120G, and 120B of the pixel 110 adjacent in the column direction and the circuit chip 130. Here, the wirings 118-5 and 118-6 that connect the pixels 110 adjacent in the row direction function as select lines 134. The select line 134 electrically connects the row driver 106 to the circuit chips 130 of the pixels 110 adjacent in the row direction. The wirings 118-4 and 118-7 connecting the pixels 110 adjacent in the column direction function as data lines 136. The data lines 136 electrically connect the column driver 108 to the LED chips 120 and circuit chips 130 of the pixels 110 adjacent in the column direction.

[0019] In the present embodiment, a configuration has been shown in which three LED chips 120 and one circuit chip 130 are arranged in one pixel 110. However, the present invention is not limited to this, and for example, three LED chips 120 and three circuit chips 130 may be arranged in one pixel 110, or one LED chip 120 and one circuit chip 130 may be arranged in one pixel 110.

[0020] <Pixel configuration> Fig. 3 is a schematic cross-sectional view of the LED chips 120R, 120G, and 120B and the circuit chip 130. Fig. 3 corresponds to a cross section of the pixel 110, but for ease of understanding, the schematic cross-sectional view shown in Fig. 3 does not correspond to the plan view of the pixel 110 shown in Fig. 2.

[0021] A plurality of recesses 115 are provided on one surface 101a of the substrate 101. The plurality of recesses 115R, 115G, 115B, and 115C correspond to positions where the LED chips 120R, 120G, and 120B and the circuit chip 130 are disposed, respectively. The LED chip 120R is disposed in the recess 115R, the LED chip 120G is disposed in the recess 115G, the LED chip 120B is disposed in the recess 115B, and the circuit chip 130 is disposed in the recess 115C. For example, a glass substrate or a resin substrate is used as the substrate 101.

[0022] The shape of the recess 115 in plan view is substantially the same as the shape of the corresponding LED chip 120 in plan view. The depth of the recess 115 from the surface 101a to the bottom surface depends on the height (thickness) from the mounting surface 120b, 130b of the corresponding LED chip 120 or circuit chip 130 on the substrate 101 to the tip (upper surface) of the terminal 122, 132. At least one of the multiple LED chips 120R, 120G, 120B and the circuit chip 130 has a different height from the others. Therefore, at least one of the multiple recesses 115 has a different depth from the others. The depth of the recess 115 from the surface 101a to the bottom surface is a value obtained by subtracting the height h from the surface 101a of the substrate 101 to the upper surface of the terminal from the height of the corresponding LED chip 120 or circuit chip 130.

[0023] The depth of the recess 115 is smaller than the height of the corresponding LED chip 120. That is, the terminal 122 of the LED chip 120 and the terminal 132 of the circuit chip 130 protrude from the one surface 101a of the substrate 101. In FIG. 3, not only the terminals 122, 132 but also parts of the main body of the LED chip 120 and the circuit chip 130 protrude from the one surface 101a of the substrate 101. However, this is not limited thereto, and it is sufficient that at least the terminal 122 of the LED chip 120 and parts of the terminal 132 of the circuit chip 130 protrude from the one surface 101a of the substrate 101.

[0024] The multiple recesses 115 are spaced apart from each other. However, this is not limited thereto, and as long as the above conditions are satisfied, the recesses 115 may be continuous, or may be a single recess 115 having an uneven bottom surface.

[0025] The distance (height) from one surface 101a (or surface 101b opposite to surface 101a) of the LED chips 120 and the circuit chip 130 to the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chips 130 is approximately the same. Therefore, the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chips 130 are located on the same plane. The surface on which the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chips 130 are located is approximately parallel to the surface 101b opposite to the surface 101a of the substrate 101 on which the recess 115 is arranged. The lower surface of the recess 115 on which the LED chips 120 and the circuit chips 130 are arranged is approximately parallel to the surface 101b of the substrate 101. Here, approximately parallel includes an error of ±1° from a surface parallel to the surface 101b of the substrate 101. The surface on which the upper surfaces of the terminals 122 of the LED chip 120 and the terminals 132 of the circuit chip 130 are located is located on one surface 101 a of the substrate 101 .

[0026] A micro LED or a mini LED is used as the LED chip 120. A micro LED is an LED with a size of 100 μm or less, and a mini LED is an LED with a size of 100 μm to 200 μm. In the display device 100, LEDs of either size can be used, and may be appropriately used according to the size of the pixel 110. In this embodiment, the LED chip 120 is a micro LED, and has a size of, for example, a vertical width of 7 μm to 150 μm, a horizontal width of 3 μm to 100 μm, and a height of about 3 μm to 15 μm. The LED chip 120 is arranged so that the terminals 122-1 and 122-2 are provided on the upper side. The terminals 122-1 and 122-2 are formed of a conductive material such as, for example, gold (Au), copper (Cu), silver (Ag), tin (Sn), or aluminum (Al). The same applies to the LED chips 120G and 120B and the circuit chip 130. The LED chip 120 emits light toward the substrate 101. Therefore, the substrate 101 side serves as the display surface of the display device 100.

[0027] An adhesive layer 112 is provided between the recess 115 and the LED chip 120, and between the recess 115 and the circuit chip 130. The adhesive layer 112 covers the bottom surface and inner side surface of the recess 115. The adhesive layer 112 fixes the LED chip 120 arranged in the recess 115 of the substrate 101. Therefore, the adhesive layer 112 only needs to be disposed on at least the bottom surface of the recess 115. In this case, an insulating layer 116, which will be described later, may be disposed on the inner side surface of the recess 115. On the other hand, the adhesive layer 112 may also be disposed on one surface 101a of the substrate 101, continuing from the bottom surface and inner side surface of the recess 115.

[0028] The adhesive layer 112 may be an adhesive layer having sufficient light transmissivity in the visible light region, such as a VPA adhesive layer, a polyimide adhesive layer, an acrylic adhesive layer, a silicone adhesive layer, a polyester adhesive layer, or a rubber adhesive layer. The adhesive layer 112 may be a photosensitive resin. The thickness of the adhesive layer 112 is, for example, 1 μm or more and 5 μm or less. If the thickness is too thin, the adhesive strength (bonding strength) will be weak, and if the thickness is too thick, the cost will increase and glue stains will easily occur due to the adhesive layer.

[0029] An insulating layer 116 is provided so as to cover the substrate 101, the LED chips 120R, 120G, 120B, and the circuit chip 130. The insulating layer 116 embeds the LED chips 120R, 120G, 120B, and the circuit chip 130 on the substrate 101. The insulating layer 116 may be made of an organic resin material such as acrylic, polyimide, polyamide, or epoxy. The insulating layer 116 may be made of an inorganic material such as silicon oxide or silicon nitride. The insulating layer 116 may be made of, for example, SOG (Spin on Glass). The insulating layer 116 may be made of a combination of an inorganic material film and an organic resin material film. When an organic resin material is used as the insulating layer 116, it functions as a planarizing film and can reduce the surface unevenness caused by the LED chips 120R, 120G, 120B, and the circuit chip 130. When a transparent inorganic material is used for the insulating layer 116, the transmittance is poor, but it is possible to form a TFT element by increasing the heat resistance temperature. Two terminals 122-1 and 122-2 of the LED chip 120 and terminals 132-1 and 132-2 of the circuit chip 130 are exposed on the upper surface of the insulating layer 116.

[0030] As shown in Fig. 3, a plurality of wirings 118-1 to 118-6 are provided on the insulating layer 116. The plurality of wirings 118-1 to 118-6 are arranged on a surface on which the two terminals 122-1 and 122-2 of the LED chip 120 and the terminals 132-1 and 132-2 of the circuit chip 130 are exposed. As described in Fig. 2, the wirings 118 connect the LED chip 120 and the circuit chip 130. The wirings 118 supply signals for controlling light emission to the LED chips 120R, 120G, and 120B. The wirings 118 are made of a metal such as aluminum or copper.

[0031] In the display device 100 according to one embodiment of the present invention, the substrate 101 has recesses 115 of different depths corresponding to the LED chips 120 and circuit chips 130 of different heights, so that the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chips 130 can be aligned on the same plane. With this configuration, the wiring 118 can be directly connected to the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chips 130, simplifying the manufacturing process.

[0032] <Display Device Manufacturing Method> Next, a method for manufacturing the display device 100 according to one embodiment of the present invention will be described with reference to FIGS.

[0033] FIG. 4 is a diagram for explaining a process of forming a plurality of recesses 115R, 115G, 115B, and 115C on one surface 101a of the substrate 101. The plurality of recesses 115R, 115G, 115B, and 115C are formed by etching according to the shapes of the corresponding LED chips 120R, 120G, and 120B and the circuit chip 130. For example, when the substrate 101 is made of glass, glass etching is performed using hydrofluoric acid. The plurality of recesses 115R, 115G, 115B, and 115C have different depths. It is preferable that the plurality of recesses 115R, 115G, 115B, and 115C are slightly larger than the shapes of the corresponding LED chips 120R, 120G, and 120B and the circuit chip 130. For example, it is preferable that the shape of the recess 115R when viewed in a plane is 1.1 to 1.5 times the shape of the LED chip 120R when viewed in a plane. The etching may be performed in several steps depending on the depth of the recess 115. For example, etching may be performed in the order of shallow recesses 115C and 115B, recess 115R, and deep recess 115G, with a resist formed and removed for each step.

[0034] 5 is a diagram for explaining a process of forming the adhesive layer 112 in the recesses 115R, 115G, 115B, and 115C. The method of applying the adhesive layer 112 is not particularly limited, and the adhesive layer 112 may be formed by dropping an adhesive onto the bottom surfaces of the recesses 115R, 115G, 115B, and 115C by inkjet or the like. When applying the adhesive layer 112 to the entire surface 101a of the substrate 101, a coating method such as spin coating, slit coating, inkjet coating, and roll coating may be used. When applying the adhesive layer 112 to the entire surface 101a of the substrate 101, patterning may be performed by photolithography.

[0035] 6 and 7 are diagrams for explaining the process of placing the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 in the multiple recesses 115R, 115G, 115B, and 115C of the substrate 101. In this embodiment, an adhesive layer 112 is selectively provided on the bottom of the multiple recesses 115. The LED chip 120 and the circuit chip 130 are transferred to a carrier substrate from an LED wafer on which multiple LEDs are formed, or a circuit wafer on which multiple circuit chips are formed. The LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 on the carrier substrate are picked up from the terminals 122 and 132 sides using a transfer substrate 109, and the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 are pressed into the corresponding recesses 115R, 115G, 115B, and 115C to be fixed. By pressing the LED chips 120R, 120G, 120B and the circuit chip 130 into the recesses 115R, 115G, 115B, 115C, the adhesive layer 112 arranged on the bottom surfaces of the recesses 115R, 115G, 115B, 115C moves to the inner surfaces of the recesses 115R, 115G, 115B, 115C.

[0036] As described above, by mounting the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 in the corresponding recesses 115R, 115G, 115B, and 115C of the substrate 101, the difference in height between the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 can be eliminated. Therefore, even if the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 with different heights are mounted at the same time, mutual interference can be suppressed. In addition, the terminals 122 and 132 of the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 can be aligned to the same position (height), simplifying the subsequent manufacturing process. However, this is not limited to this, and when using a carrier substrate to mount the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130, they may be mounted in several batches depending on the height of each of the LED chips 120R, 120G, 120B, and the circuit chip 130.

[0037] 8 is a diagram illustrating a process of forming the insulating layer 116 on the LED chip 120 and the circuit chip 130. The insulating layer 116 is formed on the entire surface 101a of the substrate 101. The insulating layer 116 may have a thickness sufficient to cover the entire surface including the LED chip 120R, the LED chip 120G, the LED chip 120B, and the terminals 122, 132 of the circuit chip 130, and may be, for example, 2 μm to 10 μm.

[0038] 9 is a diagram illustrating a process of patterning the insulating layer 116. The insulating layer 116 is patterned by, for example, photolithography to expose the terminals 122 of the LED chip 120 and the terminals 132 of the circuit chip 130 on the same plane. The method of exposing the terminals 122 of the LED chip 120 and the terminals 132 of the circuit chip 130 on the same plane is not limited to this, and may be, for example, half etching or chemical mechanical polishing.

[0039] Finally, a plurality of wirings 118 are formed on the insulating layer 116. The plurality of wirings 118 are formed on a surface on which the two terminals 122-1 and 122-2 of the LED chip 120 and the terminals 132-1 and 132-2 of the circuit chip 130 are exposed. The plurality of wirings 118 are formed by forming a conductive film on the insulating layer 116 and appropriately patterning it. This allows the LED chip 120 and the circuit chip 130 to be connected.

[0040] Through the above steps, the display device 100 according to one embodiment of the present invention can be manufactured.

[0041] In the manufacturing method of the display device 100 according to the embodiment of the present invention, the recess 115 is formed in the substrate 101 in accordance with the height of the corresponding LED chip 120 and the circuit chip 130, and the corresponding LED chip 120 and the circuit chip 130 are placed on the recess 115, thereby eliminating the difference in height between the LED chip 120 and the circuit chip 130. This allows the terminals 122, 132 of the LED chip 120 and the circuit chip 130 to be aligned to the same position (height), simplifying the manufacturing process. In addition, by directly forming the recess 115 on the substrate 101, such as a hard glass substrate, the recess 115 can also be used as a protective substrate (cover glass) that protects the main light-emitting surfaces (mounting surfaces 120b, 130b) of the LED chip 120 and the circuit chip 130 from external impacts. Therefore, it can contribute to making the display device thinner than when a protective substrate (cover glass) is attached to the display device as in the conventional case.

[0042] Second embodiment In the first embodiment, the difference in height between the LED chips 120 and the circuit chips 130 is eliminated by the recesses 115 of the substrate 101 corresponding to the LED chips 120 and the circuit chips 130, but one embodiment of the present invention is not limited to this. In the second embodiment, the difference in height between the LED chips 120 and the circuit chips 130 is eliminated by the protrusions 140 on the substrate 101 corresponding to the LED chips 120 and the circuit chips 130. The configuration of the display device 100A according to this embodiment is the same as the configuration of the display device 100 according to the first embodiment, except that it has the protrusions 140 corresponding to the LED chips 120 and the circuit chips 130. The description of the same things as in the first embodiment will be omitted, and here, the parts that differ from the configuration of the display device according to the first embodiment will be described.

[0043] <Pixel configuration> Fig. 10 is a cross-sectional view of a pixel 110 in a display device 100A according to one embodiment of the present invention. Fig. 10 corresponds to a cross-section of the pixel 110, but for ease of understanding, the schematic cross-sectional view shown in Fig. 10 does not correspond to the plan view of the pixel 110 shown in Fig. 2.

[0044] A surface 101a of the substrate 101 is provided with a plurality of convex portions 140 protruding from the surface 101a. The plurality of convex portions 140R, 140G, 140B, and 140C correspond to the positions where the LED chips 120R, 120G, and 120B and the circuit chip 130 are arranged, respectively. The LED chip 120R is arranged on the convex portion 140R, the LED chip 120G is arranged on the convex portion 140G, the LED chip 120B is arranged on the convex portion 140B, and the circuit chip 130 is arranged on the convex portion 140C. The convex portion 140 is preferably a photoresist having adhesiveness, and it is preferable to use an adhesive layer having sufficient light transmissivity in the visible light region, such as a VPA adhesive layer, a polyimide adhesive layer, an acrylic adhesive layer, a silicone adhesive layer, a polyester adhesive layer, or a rubber adhesive layer. In this embodiment, the substrate 101 and the plurality of convex portions 140 are configured as separate bodies. However, without being limited thereto, the substrate 101 and the plurality of protruding portions 140 may be integrally configured. In this case, the plurality of protruding portions 140R, 140G, 140B, and 140C may be formed by etching on the one surface 101a of the substrate 101. On the upper surfaces of the plurality of protruding portions 140, for example, the adhesive layer 112 shown in the first embodiment may be disposed.

[0045] The shape of the convex portion 140 when viewed in a plane is substantially the same as the shape of the corresponding LED chip 120 when viewed in a plane. The height of the convex portion 140 from the surface 101a to the upper surface depends on the height (thickness) from the mounting surface 120b, 130b of the corresponding LED chip 120 or circuit chip 130 on the substrate 101 to the upper surface of the terminal 122, 132. At least one of the multiple LED chips 120R, 120G, 120B and the circuit chip 130 has a different height from the others. Therefore, at least one of the multiple convex portions 140 has a different height from the others. The height of the convex portion 140 from the surface 101a to the upper surface is a value obtained by subtracting the height of the corresponding LED chip 120 or circuit chip 130 from the height H from the surface 101a of the substrate 101 to the upper surface of the terminal.

[0046] The multiple protrusions 140 are spaced apart from each other. However, this is not limited thereto, and as long as the above conditions are satisfied, the protrusions 140 may be continuous or may be a single protrusion 140 having an uneven upper surface.

[0047] The distance (height) from one surface 101a (or surface 101b opposite to surface 101a) of the LED chips 120 and the circuit chip 130 to the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chip 130 is approximately the same. Therefore, the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chip 130 are located on the same plane. The surface on which the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chip 130 are located is approximately parallel to the surface 101b opposite to the surface 101a of the substrate 101. Here, approximately parallel includes an error of ±1° from a surface parallel to the surface 101b of the substrate 101. The surface on which the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chip 130 are located is located on the surface 101a of the substrate 101.

[0048] An insulating layer 116 is provided so as to cover the substrate 101, the protruding portion 140, the LED chip 120, and the circuit chip 130. The insulating layer 116 embeds the LED chips 120R, 120G, and 120B, and the circuit chip 130 on the substrate 101. Two terminals 122-1 and 122-2 of the LED chip 120 and terminals 132-1 and 132-2 of the circuit chip 130 are exposed on the upper surface of the insulating layer 116.

[0049] 10, a plurality of wirings 118-1 to 118-6 are provided on the insulating layer 116. The plurality of wirings 118-1 to 118-6 are arranged on a surface where two terminals 122-1 and 122-2 of the LED chip 120 and terminals 132-1 and 132-2 of the circuit chip 130 are exposed. The wirings 118 connect the LED chip 120 and the circuit chip 130.

[0050] In the display device 100 according to one embodiment of the present invention, by having the convex portions 140 of different heights corresponding to the LED chips 120 and the circuit chips 130 of different heights, it is possible to align the upper surfaces of the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chips 130 on the same plane. With this configuration, it is possible to directly connect the wiring 118 to the terminals 122 of the LED chips 120 and the terminals 132 of the circuit chips 130, and it is possible to simplify the manufacturing process.

[0051] <Display Device Manufacturing Method> A method for manufacturing a display device 100A according to one embodiment of the present invention will be described with reference to Figures 11 to 13. Note that detailed descriptions of steps similar to those in the first embodiment will be omitted.

[0052] 11 is a diagram for explaining a process of forming a plurality of convex portions 140R, 140G, 140B, and 140C on one surface 101a of the substrate 101. The plurality of convex portions 140R, 140G, 140B, and 140C are formed by photolithography according to the shapes of the corresponding LED chips 120R, 120G, and 120B and the circuit chip 130. The plurality of convex portions 140R, 140G, 140B, and 140C have different heights. It is preferable that the plurality of convex portions 140R, 140G, 140B, and 140C are slightly larger than the shapes of the corresponding LED chips 120R, 120G, and 120B and the circuit chip 130. For example, it is preferable that the shape of the convex portion 140R when viewed in a plane is 1.1 to 1.5 times the shape of the LED chip 120R when viewed in a plane. Photolithography may be performed in several steps depending on the height of the protrusion 140. For example, the tall protrusions 140C and 140B may be formed by stacking in several steps. The protrusion 140 may also be formed by cutting out. In this case, the short protrusion 140G may be formed by cutting in several steps.

[0053] 12 is a diagram for explaining a process of placing the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 on the plurality of convex parts 140R, 140G, 140B, and 140C. In this embodiment, the plurality of convex parts 140 are adhesive. As in the first embodiment, the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 are picked up from the terminals 122 and 132 using a carrier substrate, and then the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 are pressure-bonded to the corresponding convex parts 140R, 140G, 140B, and 140C.

[0054] As described above, by mounting the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 on the corresponding convex parts 140R, 140G, 140B, and 140C of the substrate 101, the difference in height of the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 can be eliminated. Therefore, even if the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 with different heights are mounted at the same time, mutual interference can be suppressed. In addition, the terminals 122 and 132 of the LED chip 120R, the LED chip 120G, the LED chip 120B, and the circuit chip 130 can be aligned to the same position (height), simplifying the subsequent manufacturing process.

[0055] FIG. 13 is a diagram for explaining a process of forming an insulating layer 116 on the LED chip 120 and the circuit chip 130 and patterning the insulating layer 116. The insulating layer 116 is formed on the entire surface 101a of the substrate 101. The insulating layer 116 may have a thickness sufficient to cover the entire surface including the LED chip 120R, the LED chip 120G, the LED chip 120B, and the terminals 122 and 132 of the circuit chip 130. Furthermore, the insulating layer 116 is patterned by photolithography to expose the terminals 122 of the LED chip 120 and the terminals 132 of the circuit chip 130. The method of exposing the terminals 122 of the LED chip 120 and the terminals 132 of the circuit chip 130 on the same surface is not limited to this, and may be, for example, half etching or chemical mechanical polishing.

[0056] Finally, a plurality of wirings 118 are formed on the insulating layer 116. The plurality of wirings 118 are formed on a surface on which the two terminals 122-1 and 122-2 of the LED chip 120 and the terminals 132-1 and 132-2 of the circuit chip 130 are exposed. The plurality of wirings 118 are formed by forming a conductive film on the insulating layer 116 and appropriately patterning it. This allows the LED chip 120 and the circuit chip 130 to be connected.

[0057] Through the above steps, the display device 100A according to one embodiment of the present invention can be manufactured.

[0058] In the manufacturing method of the display device 100A according to one embodiment of the present invention, the convex portion 140 is formed to match the height of the corresponding LED chip 120 and circuit chip 130, and the corresponding LED chip 120 and circuit chip 130 are placed on the convex portion 140, thereby eliminating the difference in height between the LED chip 120 and the circuit chip 130. This allows the terminals 122, 132 of the LED chip 120 and the circuit chip 130 to be aligned to the same position (height), simplifying the manufacturing process.

[0059] (Variation 1) In the second embodiment, the LED chips 120 and the circuit chip 130 are embedded in the insulating layer 116. In the first modification, a light-shielding layer 114 is provided between the substrate 101 and the insulating layer 116. The configuration of the display device 100B according to this modification is the same as that of the display device 100A according to the second embodiment, except for the light-shielding layer 114. The description of the same things as in the second embodiment will be omitted, and only the parts that differ from the configuration of the display device according to the second embodiment will be described here.

[0060] <Pixel configuration> Fig. 14 is a cross-sectional view of a pixel 110 in a display device 100B according to a modified example of the present invention. Fig. 14 corresponds to a cross-section of the pixel 110, but for ease of understanding, the schematic cross-sectional view shown in Fig. 14 does not correspond to the plan view of the pixel 110 shown in Fig. 2.

[0061] The display device 100B according to the modified example includes a light-shielding layer 114 between one surface 101a of the substrate 101 and a surface on which the terminal 122 of the LED chip 120 and the upper surface of the terminal 132 of the circuit chip 130 are located. The light-shielding layer 114 is disposed between the substrate 101 and the insulating layer 116. The light-shielding layer 114 is provided on the substrate 101 so as to surround the convex portion 140, the LED chip 120, and the circuit chip 130. The light-shielding layer 114 overlaps with a plurality of wirings 118. The light-shielding layer 114 is a black film having insulating properties. The light-shielding layer 114 is also called a black matrix. The film thickness of the light-shielding layer 114 is not particularly limited. For example, a black resin material may be used as the light-shielding layer 114.

[0062] In the display device 100B according to a modified example of the present invention, the light-shielding layer 114 is provided in a region other than the region in which the LED chips 120R, 120G, and 120B and the circuit chip 130 are provided. That is, in the display region 102, the gaps provided by the LED chips 120, 120G, and 120B and the circuit chip 130 are filled with the light-shielding layer 114. In addition, the terminals of the LED chip 120 are provided on the upper side. Therefore, the multiple wirings 118 are routed above the light-shielding layer 114. In the display device 100, the display surface is on the lower side of the substrate 101, so that the light reflected by the multiple wirings 118 can be shielded by the light-shielding layer 114 in the display region 102. This makes it possible to provide a display device 100 in which the light emitted from the LED chips 120R, 120G, and 120B is suppressed from being reflected by the wirings 118 made of metal, and thus the visibility of the image is improved. In addition, it is possible to suppress light emission from the sides of the LED chip 120 toward the light emission surface (101), suppress color mixing between different color lights, and increase the front brightness.

[0063] (Variation 2) In the second embodiment, the LED chips 120 and the circuit chip 130 are embedded in the insulating layer 116. In the second modification, a light-shielding layer 114 and a reflective layer 160 are provided between the substrate 101 and the insulating layer 116. The configuration of the display device 100C according to this modification is the same as the configuration of the display device 100B according to the first modification, except for the inclusion of the reflective layer 160. Explanations of the same points as in the first modification will be omitted, and only the points that differ from the configuration of the display device according to the first modification will be described here.

[0064] <Pixel configuration> Fig. 15 is a cross-sectional view of a pixel 110 in a display device 100C according to a modified example of the present invention. Fig. 15 corresponds to a cross-section of the pixel 110, but for ease of understanding, the schematic cross-sectional view shown in Fig. 15 does not correspond to the plan view of the pixel 110 shown in Fig. 2.

[0065] The display device 100C according to the modified example includes a reflective layer 160 between the substrate 101 and the light-shielding layer 114. The reflective layer 160 is provided on the substrate 101 so as to surround the convex portion 140. In the present embodiment, the reflective layer 160 is disposed on the entire surface 101a of the substrate 101 except for the convex portion 140. However, the present invention is not limited to this, and the reflective layer 160 may be disposed in a cylindrical shape so as to cover the outer periphery of the plurality of convex portions 140 (the side surface connecting the bottom surface in contact with the substrate 101 and the upper surface on which the LED chips 120 and the circuit chip 130 are placed), and may be disposed so as to surround the LED chips 120 and the circuit chip 130. The reflective layer 160 may be a transparent resin having a smaller refractive index than the convex portion 140, a white resin that promotes reflection, or a metal film. The reflective layer 160 may have a thickness that surrounds a part of the convex portion 140, and is preferably, for example, 0.2 μm or more and 2 μm or less. The reflective layer 160 may be, for example, an aluminum film.

[0066] In the display device 100C according to one modification of the present invention, the reflective layer 160 is provided so as to surround the convex portion 140. The reflective layer 160 is also formed so as to surround the periphery of the convex portion 140. This allows the light emitted from the LED chips 120R, 120G, and 120B to be reflected by the reflective layer 160, and the display device 100C can be provided in which the light is more efficiently concentrated on the front side.

[0067] In the display device 100C according to the modified example of the present invention, the reflective layer 160 is provided so as to surround the convex portion 140. The reflective layer 160 has a smaller refractive index than the convex portion 140. This makes it possible to provide the display device 100C that suppresses the light emitted from the LED chips 120R, 120G, and 120B from entering the reflective layer 160 and collects light more efficiently.

[0068] (Variation 3) In the first embodiment, the shape of the recess 115 when viewed in a plan view is substantially the same as the shape of the corresponding LED chip 120 when viewed in a plan view. In this modification, the LED chips 120 of the same type in adjacent pixels 110 share the recess 115. The configuration of the display device 100D according to this modification is the same as the configuration of the display device 100 according to the first embodiment, except that the shape of the recess 115 is different. Descriptions of the same things as in the first embodiment will be omitted, and here, the parts that differ from the configuration of the display device according to the first embodiment will be described.

[0069] <Display device overview> 16 is an enlarged view of a pixel 110 in the display device 100D. The pixel 110 has a plurality of LED chips 120 and a circuit chip 130. The plurality of LED chips 120 and the circuit chip 130 are disposed in corresponding recesses 115.

[0070] The recess 115 has a striped shape when viewed from above. In this modification, the LED chips 120 of the same type in adjacent pixels 110 share the recess 115. The LED chips 120 of the same type have the same height. The LED chips 120 of the same type in the pixels 110 arranged vertically in FIG. 16 are arranged in the same recess 115. In the recess 115, the space between the LED chips 120 of adjacent pixels is filled with an insulating layer 116.

[0071] In a display device 100D according to a modified example of the present invention, the LED chips 120 of the same type in adjacent pixels 110 share the recesses 115. This can further simplify the manufacturing process of the display device 100D.

[0072] The above-described embodiments of the present invention may be combined as appropriate as long as they are not mutually inconsistent. In addition, a display device according to any of the embodiments may be combined as appropriate by a person skilled in the art to add or remove components or modify the design, or to add or omit steps or modify conditions, and the combination is included in the scope of the present invention as long as it includes the gist of the present invention.

[0073] Even if there are other effects and advantages different from those brought about by the aspects of each of the above-mentioned embodiments, those that are clear from the description in this specification or that can be easily predicted by a person skilled in the art are naturally understood to be brought about by the present invention. [Explanation of symbols]

[0074] 100: display device, 101: substrate, 102: display region, 103: peripheral region, 104: controller, 105: row control circuit, 106: row driver, 107: column control circuit, 108: column driver, 110: pixel, 112: adhesive layer, 114: light shielding layer, 115, 115R, 115G, 115B, 115C: recess, 116: insulating layer, 118: wiring, 120, 120R, 120G, 120B: LED chip, 122R-1, 122R-2, 122G-1, 122G-2, 122B-1, 122B-2: terminal, 130: circuit chip, 140, 140R, 140G, 140B, 140C: protrusion, 160: reflective layer

Claims

1. a substrate having a first surface and a second surface opposite to the first surface; a first chip disposed on the first surface and having a first terminal forming surface on which a first terminal is disposed on an opposite side to a first mounting surface in contact with the first surface; a second chip that is disposed on the first surface, has a second terminal forming surface on which a second terminal is disposed on an opposite side to a second mounting surface that is in contact with the first surface, and has a thickness different from that of the first chip; a first protrusion on which the first chip is disposed and which protrudes from the substrate; a second protrusion on which the second chip is disposed, the second protrusion having a different height from the first protrusion and spaced apart from the first protrusion, and protruding from the substrate; a reflective layer disposed so as to surround the first convex portion and the second convex portion, the refractive index of the first convex portion and the second convex portion is greater than the refractive index of the reflective layer, A display device, wherein an upper surface of the first terminal and an upper surface of the second terminal are located in the same plane parallel to the second plane.

2. The display device according to claim 1 , further comprising a wiring that connects the first terminal and the second terminal and is located on the same surface.

3. The display device of claim 1 , wherein the substrate comprises glass.

4. The display device according to claim 1 , further comprising a light-shielding layer disposed between the first surface and the same surface.

5. a wiring that connects the first terminal and the second terminal and is located on the same surface; The display device according to claim 4 , wherein the wiring overlaps with the light-shielding layer.

6. 2. The display device of claim 1, wherein the first chip is selected from the group including an LED chip including an LED emitting red light, an LED chip including an LED emitting green light, an LED chip including an LED emitting blue light, and a circuit chip.

7. The display device of claim 6 , wherein the second chip is selected from the group and is different from the first chip.

8. A first recess and a second recess having a different depth from the first recess are formed on a first surface of a substrate; A first chip having a first terminal is placed in the first recess; a second chip having a second terminal and a thickness different from that of the first chip is placed in the second recess; forming an insulating layer on the first chip and the second chip, the insulating layer having a surface parallel to a second surface opposite to the first surface and including an upper surface of the first terminal and an upper surface of the second terminal; forming wiring on the surface to connect the first terminal and the second terminal.

9. the substrate comprises glass; The method for manufacturing a display device according to claim 8 , wherein the first recess and the second recess are formed by etching using hydrofluoric acid.

10. A first convex portion and a second convex portion having a different height from the first convex portion and spaced apart from the first convex portion are formed on a first surface of a substrate; forming a reflective layer that is disposed so as to surround the first convex portion and the second convex portion and has a refractive index greater than the refractive indexes of the first convex portion and the second convex portion; A first chip having a first terminal is placed on the first protrusion; a second chip having a second terminal on the second protrusion and having a thickness different from that of the first chip is placed on the second protrusion; forming an insulating layer on the first chip and the second chip, the insulating layer having a surface parallel to a second surface opposite to the first surface and including an upper surface of the first terminal and an upper surface of the second terminal; forming wiring on the surface to connect the first terminal and the second terminal.

11. The method for manufacturing a display device according to claim 10 , further comprising forming a light-shielding layer between the substrate and the insulating layer.

12. 12. The method for manufacturing a display device according to claim 10 or 11, wherein the first chip and the second chip are different from each other and are selected from the group including an LED chip including an LED emitting red light, an LED chip including an LED emitting green light, an LED chip including an LED emitting blue light, and a circuit chip.

Citation Information

Patent Citations

  • Disclosed are light emitting diode packaging device and display device

    CN210778585U

  • Light emitting diode display and image picture display using the same

    JP1998229221A

  • Electronic part module and piezoelectric oscillator

    JP2001177044A

  • Mounting structure of electronic component and manufacturing method thereof

    JP2004047617A

  • Multilayer substrate with built-in electronic part

    JP2004200201A