Display device and electronic appliance

The overlapping structure of transistors, reflective layers, and light-emitting diodes in display devices allows for simultaneous attachment of LED chips, addressing manufacturing complexities and costs, and enhancing display quality and efficiency.

JP2025075042AInactive Publication Date: 2025-05-14SEMICON ENERGY LAB CO LTD
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Patent Information

Application Number
JP2025022227
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-02-14
Filing Date
2025-02-14
Publication Date
2025-05-14
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Manufacturing LED chips with different luminescent colors on the same semiconductor substrate is complex and time-consuming, leading to high manufacturing costs and inefficiencies in producing display devices using micro LEDs.

Method used

A display device configuration with a transistor, reflective layer, and light-emitting diode structure that allows for the overlapping of these components, enabling multiple LED chips to be attached simultaneously, and optionally incorporating a color conversion layer for color adjustment.

Benefits of technology

This approach reduces manufacturing time and costs while achieving high display quality, low power consumption, and miniaturization of display devices by simplifying the process and eliminating the need for individual chip placement.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an inexpensive display device with high reliability.SOLUTION: A display device includes a light-emitting diode included in a pixel circuit, a transistor included in the pixel circuit, and a transistor included in a driving circuit of the pixel circuit, and has a structure in which they are stacked so as to include a region where they overlap with each other. With this structure, a display device can be reduced in size. The display device can be manufactured by attaching a plurality of light-emitting diodes to a circuit board where the transistor and the like are formed in one step. Thus, the manufacturing cost of the display device can be reduced.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] One embodiment of the present invention relates to a display device.

[0002] Note that one embodiment of the present invention is not limited to the above technical field. Examples of the technical field of one embodiment of the present invention include a semiconductor device, a display device, a light-emitting device, a power storage device, a memory device, an electronic device, a lighting device, an input device (e.g., a touch sensor), an input / output device (e.g., a touch panel), a driving method thereof, or a manufacturing method thereof. [Background technology]

[0003] Display devices using highly reliable light emitting diodes (LEDs) as display devices (also called display elements) have been proposed (for example, Patent Document 1 and Patent Document 2). In particular, display devices using micro LEDs have advantages such as high brightness, high contrast, and long life, and are being actively researched and developed as next-generation display devices. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] JP 2008-58535 A [Patent Document 2] US Patent Application Publication No. 2014 / 0367705 Summary of the Invention [Problem to be solved by the invention]

[0005] To create an LED that emits light of red (R), green (G), or blue (B), compound semiconductors with a band gap appropriate for each emitted color are required. However, even in compound semiconductors that have the same combination of elements, the band gap can be changed by adjusting the atomic ratio of the elements or by introducing impurities. If it were possible to form LEDs that emit R, LEDs that emit G, and LEDs that emit B individually on the same substrate, the manufacturing process for display devices could be simplified.

[0006] However, manufacturing LED chips with different luminescent colors on the same semiconductor substrate requires many processes, and currently it is difficult to manufacture. Therefore, attempts are being made to manufacture LED chips using different semiconductor substrates for each luminescent color, and then pick and place them one by one to create a display device.

[0007] However, the pick-and-place process of the LED chips takes a lot of time, which means that manufacturing costs cannot be reduced. To solve this problem, it is preferable to have a configuration that allows multiple LED chips to be picked and placed at the same time. In addition, if a technology for color conversion using single-color LED chips is used, manufacturing costs can be reduced by mass-producing LED chips.

[0008] Therefore, an object of one embodiment of the present invention is to provide an inexpensive and highly reliable display device. Another object is to provide a small-sized display device. Another object is to provide a display device with high display quality. Another object is to provide a display device with low power consumption. Another object is to reduce the manufacturing cost of a display device using a micro LED. Another object is to provide a novel display device. Another object is to provide a manufacturing method of the display device.

[0009] Note that the description of these problems does not preclude the existence of other problems. One embodiment of the present invention does not necessarily have to solve all of these problems. Problems other than these can be extracted from the description of the specification, drawings, and claims. [Means for solving the problem]

[0010] One embodiment of the present invention is a display device having a transistor, a reflective layer, a light-emitting diode, a first insulating layer, and a second insulating layer, where the transistor, the reflective layer, and the light-emitting diode each have an overlapping area, the reflective layer is provided over the transistor with the first insulating layer interposed therebetween, the light-emitting diode is provided over the reflective layer with the second insulating layer interposed therebetween, the light-emitting diode has a semiconductor layer, and the semiconductor layer has a area in contact with the second insulating layer.

[0011] The light-emitting diode may further include a color conversion layer, a colored layer, or both of the color conversion layer and the colored layer, and a third insulating layer, and the color conversion layer and the colored layer or both of the color conversion layer and the colored layer may be provided on the light-emitting diode via the third insulating layer. The color conversion layer preferably includes a phosphor or a quantum dot.

[0012] The transistor preferably has a metal oxide in a channel formation region, and the metal oxide preferably contains In, Zn, and M (M is one or more of Al, Ti, Ga, Ge, Sn, Y, Zr, La, Ce, Nd, and Hf).

[0013] Another embodiment of the present invention is a display device having a first layer, a second layer, a third layer, and a fourth layer, the second layer and the third layer being provided between the first layer and the fourth layer, the second layer being provided between the first layer and the third layer, the first layer having a first transistor, the second layer having a second transistor, the third layer having a reflective layer, and the fourth layer having a light-emitting diode, the first transistor, the second transistor, the reflective layer, and the light-emitting diode each have an overlapping region, a first insulating layer is provided between the first transistor and the second transistor, a second insulating layer is provided between the second transistor and the reflective layer, and a third insulating layer is provided between the reflective layer and the light-emitting diode, the light-emitting diode has a semiconductor layer, and the semiconductor layer has a region in contact with the third insulating layer.

[0014] The fifth layer may further include a fifth layer, the fifth layer being disposed so as to sandwich the fourth layer between the fifth layer and the third layer, the fifth layer having one or both of a color conversion layer and a coloring layer, the one or both of the color conversion layer and the coloring layer, the first transistor, the second transistor, the reflective layer, and the light-emitting diode each having an overlapping region with one another, and a fourth insulating layer may be provided between the light-emitting diode and one or both of the color conversion layer and the coloring layer.

[0015] The color conversion layer preferably contains phosphors or quantum dots.

[0016] The first transistor preferably has silicon in a channel formation region, and the second transistor preferably has a metal oxide in a channel formation region, the metal oxide preferably having In, Zn, and M (M is one or more of Al, Ti, Ga, Ge, Sn, Y, Zr, La, Ce, Nd, and Hf).

[0017] The first transistor may be a component of a circuit that drives a pixel circuit, and the second transistor may be a component of the pixel circuit.

[0018] In the above two aspects of the present invention, the semiconductor layer is preferably a compound semiconductor containing an element of Group 13 and an element of Group 15. Also, the light-emitting diode preferably emits blue, blue-violet, purple or ultraviolet light. Effect of the Invention

[0019] According to one embodiment of the present invention, an inexpensive and highly reliable display device can be provided. Alternatively, a small-sized display device can be provided. Alternatively, a display device with high display quality can be provided. Alternatively, a display device with low power consumption can be provided. Alternatively, the manufacturing cost of a display device using a micro LED can be reduced. Alternatively, a novel display device can be provided. Alternatively, a manufacturing method of the display device can be provided.

[0020] Note that the description of these effects does not preclude the existence of other effects. One embodiment of the present invention does not necessarily have all of these effects. Effects other than these can be extracted from the description in the specification, drawings, and claims. [Brief description of the drawings]

[0021] [Figure 1] FIG. 1 is a diagram illustrating a display device. [Diagram 2] 2A and 2B are diagrams illustrating a display device. [Diagram 3] 3A to 3D are diagrams illustrating a method for producing a light-emitting diode. [Figure 4] 4A to 4D are diagrams illustrating a method for producing a light-emitting diode. [Diagram 5] 5A to 5D are diagrams illustrating a method for producing a light-emitting diode. [Figure 6] 6A and 6B are diagrams illustrating a display device, and FIGS. 6C to 6E are diagrams illustrating a transistor. [Figure 7] 7A and 7B are diagrams illustrating a display device. [Figure 8]8A and 8B are diagrams illustrating a display device. [Figure 9] FIG. 9 is a diagram illustrating a display device. [Figure 10] FIG. 10 is a diagram illustrating a display device. [Figure 11] FIG. 11 is a diagram illustrating a display device. [Figure 12] 12A is a top view illustrating an example of a transistor, and FIGS. 12B to 12D are cross-sectional views illustrating an example of a transistor. [Figure 13] FIG. 13 is a circuit diagram illustrating an example of a pixel circuit. [Figure 14] 14A and 14B are diagrams illustrating an example of an electronic device. [Figure 15] 15A and 15B are diagrams illustrating an example of an electronic device. [Figure 16] 16A and 16B are diagrams illustrating an example of an electronic device. [Figure 17] 17A and 17B are diagrams illustrating an example of an electronic device. [Figure 18] 18A to 18D are diagrams illustrating an example of an electronic device. [Figure 19] 19A to 19F are diagrams illustrating an example of an electronic device. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0022] The embodiments will be described in detail with reference to the drawings. However, the present invention is not limited to the following description, and it will be easily understood by those skilled in the art that the modes and details of the present invention can be modified in various ways without departing from the spirit and scope of the present invention. Therefore, the present invention should not be interpreted as being limited to the description of the embodiments shown below.

[0023] In the configuration of the invention described below, the same parts or parts having similar functions are denoted by the same reference numerals in different drawings, and the repeated explanations are omitted. In addition, when referring to similar functions, the same hatch pattern may be used and no particular reference numeral may be used.

[0024] In addition, for ease of understanding, the position, size, range, etc. of each component shown in the drawings may not represent the actual position, size, range, etc. Therefore, the disclosed invention is not necessarily limited to the position, size, range, etc. disclosed in the drawings.

[0025] In addition, the words "film" and "layer" can be interchanged depending on the case or situation. For example, the term "conductive layer" can be changed to the term "conductive film". Or, for example, the term "insulating film" can be changed to the term "insulating layer".

[0026] (Embodiment 1) In this embodiment, a display device according to one embodiment of the present invention will be described with reference to drawings.

[0027] The display device of this embodiment mode has a structure in which a light-emitting diode included in a pixel circuit, a transistor included in the pixel circuit, and a transistor included in a driver circuit of the pixel circuit are stacked so as to have an overlapping region. With this structure, the display device can be miniaturized.

[0028] Furthermore, in the method for manufacturing a display device according to the present embodiment, a plurality of light-emitting diodes can be attached to a circuit board on which transistors and the like are formed in a single process. Therefore, even when manufacturing a display device with a large number of pixels or a high-definition display device, the manufacturing time of the display device can be shortened compared to a method in which light-emitting diodes are mounted one by one on a circuit board. Also, the difficulty of manufacturing the display device can be reduced.

[0029] 1 shows a cross-sectional view of a display device 100A according to one embodiment of the present invention. The display device 100A has a structure in which a layer 11 provided with transistors included in a driver circuit or the like of a pixel circuit, a layer 12 provided with transistors included in the pixel circuit, a layer 13 provided with a reflective layer, and a layer 14 provided with a light-emitting device (also referred to as a light-emitting element) such as a light-emitting diode included in the pixel circuit are stacked in this order.

[0030] In this embodiment, the display device is described as being divided into a plurality of layers for convenience, but the boundaries between the layers are not strictly defined. For example, even if an element is described as an element of layer 11 in the embodiment, if the element is located near the boundary between layer 11 and layer 12, the element can be said to be an element of layer 12. Furthermore, the element may be located in a layer other than layer 11 as long as the function of the element is not impaired. In addition, in one embodiment of the present invention, other insulating layers and other conductive layers may be provided as necessary in addition to the insulating layers and conductive layers of each layer. Furthermore, a part of the insulating layers and conductive layers of each layer may be omitted as necessary.

[0031] The layer 11 includes, for example, a transistor 130 that is a component of a driving circuit (one or both of a gate driver and a source driver) of a pixel circuit. Since the transistor 130 is required to operate at high speed, it is preferable to use a transistor having silicon (single crystal silicon, polycrystalline silicon, amorphous silicon, or the like) in a channel formation region (hereinafter, a Si transistor). FIG. 1 shows an example in which single crystal silicon is used for the substrate 151, and the transistor 130 has a channel formation region in the substrate 151.

[0032] Note that a part of the driver circuit of the pixel circuit may be provided in an external IC chip connected to the pixel circuit.

[0033] The transistor 130 has a conductive layer 135, an insulating layer 134, an insulating layer 136, and a pair of low-resistance regions 133. The conductive layer 135 functions as a gate. The insulating layer 134 is located between the conductive layer 135 and a substrate 151 and functions as a gate insulating layer. The insulating layer 136 is provided to cover the side surface of the conductive layer 135 and functions as a sidewall. The pair of low-resistance regions 133 are regions in the substrate 151 doped with impurities, one of which functions as the source of the transistor 130 and the other functions as the drain of the transistor 130. In addition, an element isolation layer 132 is provided around the transistor 130.

[0034] An insulating layer 139 is provided to cover the transistor 130, and a conductive layer 138 is provided over the insulating layer 139. A conductive layer 137 is embedded in an opening provided in the insulating layer 139. The conductive layer 138 is electrically connected to one of the pair of low-resistance regions 133 through the conductive layer 137. An insulating layer 141 is provided to cover the conductive layer 138. The conductive layer 138 functions as a wiring. The wiring can electrically connect to another transistor, a pixel circuit, another circuit, or the like in a circuit including the transistor 130 as an element.

[0035] Layer 12 includes transistor 120, insulating layer 142, insulating layer 162, insulating layer 181, insulating layer 182, insulating layer 183, conductive layer 184a, conductive layer 184b, insulating layer 185, insulating layer 186, conductive layer 194, and conductive layer 195, which are components of a pixel circuit. One or more of these elements may be considered as components of a transistor, but in this embodiment, they will not be included in the components of a transistor. Each conductive layer and each insulating layer of layer 12 may have a single layer structure or a multilayer structure.

[0036] The insulating layer 142 is provided over the layer 11. The insulating layer 142 functions as a barrier layer that prevents impurities such as water or hydrogen from diffusing from the layer 11 to the transistor 120 and prevents oxygen from being released from the metal oxide layer 165 toward the insulating layer 142. For example, the insulating layer 142 can be a film through which hydrogen and oxygen are less likely to diffuse than a silicon oxide film, such as an aluminum oxide film, a hafnium oxide film, or a silicon nitride film.

[0037] The transistor 120 includes a conductive layer 161, an insulating layer 163, an insulating layer 164, a metal oxide layer 165, a pair of conductive layers 166, an insulating layer 167, a conductive layer 168, and the like. A specific example of a transistor that can be used in the display device of one embodiment of the present invention will be described in detail in Embodiment 3.

[0038] The transistor 120 is preferably a transistor including a metal oxide layer 165 in a channel formation region (hereinafter, referred to as an OS transistor). The metal oxide layer 165 has a first region overlapping with one of a pair of conductive layers 166, a second region overlapping with the other of the pair of conductive layers 166, and a third region between the first region and the second region.

[0039] The OS transistor does not require a bonding process or the like and can be formed in a region overlapping with a Si transistor via an insulating layer, etc. Therefore, a stacked device can be fabricated through a simple process, and the manufacturing cost can be reduced.

[0040] In addition, compared to transistors using amorphous silicon, OS transistors have features such as high mobility, high-speed operation, and high reliability. Furthermore, metal oxide used in OS transistors can be formed in a film formation process, making it possible to eliminate the need for a laser device or the like that is required in a polycrystalline silicon crystallization process. Therefore, by using OS transistors, a display device that is inexpensive and highly reliable can be manufactured.

[0041] A conductive layer 161 and an insulating layer 162 are provided over the insulating layer 142, and an insulating layer 163 is provided to cover the conductive layer 161 and the insulating layer 162. An insulating layer 164 is provided over the insulating layer 163, and a metal oxide layer 165 is provided over the insulating layer 164.

[0042] The conductive layer 161 functions as a gate electrode, and the insulating layers 163 and 164 function as gate insulating layers. The conductive layer 161 has a region overlapping with the metal oxide layer 165 with the insulating layers 163 and 164 interposed therebetween. The insulating layer 163 is preferably formed of a material that functions as a barrier layer, similar to the insulating layer 142. The insulating layer 164 in contact with the metal oxide layer 165 is preferably formed using an oxide insulating film such as a silicon oxide film.

[0043] A pair of conductive layers 166 are provided to be spaced apart from each other over the metal oxide layer 165. One of the pair of conductive layers 166 functions as a source of the transistor, and the other functions as a drain. An insulating layer 181 is provided to cover the metal oxide layer 165 and the pair of conductive layers 166, and an insulating layer 182 is provided over the insulating layer 181.

[0044] Insulating layer 181 and insulating layer 182 have openings that reach metal oxide layer 165, and insulating layer 167 and conductive layer 168 are embedded inside the openings. The openings are provided at positions that overlap with a third region of metal oxide layer 165. Insulating layer 167 has regions that overlap with side surfaces of insulating layer 181 and insulating layer 182. Conductive layer 168 has regions that overlap with side surfaces of insulating layer 181 and insulating layer 182 via insulating layer 167.

[0045] The conductive layer 168 functions as a gate electrode, and the insulating layer 167 functions as a gate insulating layer. The conductive layer 168 has a region overlapping with the metal oxide layer 165 with the insulating layer 167 interposed therebetween.

[0046] Then, insulating layers 183 and 185 are provided to cover the upper surfaces of insulating layer 182 , insulating layer 167 and conductive layer 168 .

[0047] The insulating layers 181 and 183 are preferably formed of a material that functions as a barrier layer, similar to the insulating layer 142. Covering the pair of conductive layers 166 with the insulating layer 181 can prevent the pair of conductive layers 166 from being oxidized by oxygen contained in the insulating layer 182.

[0048] A plug electrically connected to one of the pair of conductive layers 166 and conductive layer 195 is embedded in an opening provided in insulating layers 181, 182, 183, and 185. The plug can have conductive layer 184b in contact with the side surface of the opening and the top surface of one of the pair of conductive layers 166, and conductive layer 184a embedded inwardly of conductive layer 184b. Conductive layer 184b is preferably formed from a conductive material in which hydrogen and oxygen are less likely to diffuse.

[0049] A conductive layer 195, a conductive layer 194, and an insulating layer 186 are provided over the insulating layer 185. The conductive layer 195 functions as a wiring that electrically connects the transistor 120 and the light-emitting diode 110 provided in the layer 14. The conductive layer 194 functions as a plug that electrically connects the transistor 120 and the light-emitting diode 110.

[0050] Examples of materials that can be used for the conductive layers 194 and 195 include metals such as aluminum, titanium, chromium, nickel, copper, yttrium, zirconium, tin, zinc, silver, platinum, gold, molybdenum, tantalum, and tungsten, and alloys containing these as main components (such as an alloy of silver, palladium, and copper (Ag-Pd-Cu(APC))). Oxides such as tin oxide and zinc oxide may also be used. The conductive layers 194 and 195 may also be stacked layers of two or more of the above materials.

[0051] The insulating layer 186 can have a planarization function. The insulating layer 186 is preferably formed using a single layer or a stacked layer including one or more inorganic insulating materials such as silicon oxide, silicon oxynitride, silicon nitride oxide, silicon nitride, aluminum oxide, hafnium oxide, or titanium nitride.

[0052] In layer 13, conductive layer 189, conductive layer 192, reflective layer 193, and insulating layer 187 covering them are provided. Conductive layer 189 and conductive layer 192 function as wiring electrically connecting to light-emitting diode 110. Reflective layer 193 is provided at a position overlapping with light-emitting diode 110 provided in layer 14, and has a function of reflecting light emitted from light-emitting diode 110 to layer 12. By providing reflective layer 193, the direction of light emitted by light-emitting diode 110 can be adjusted to the outside of layer 14 (the side opposite to the surface of layer 14 that contacts layer 13).

[0053] It is preferable that the reflective layer 193 has an area overlapping with the transistor 120 in the layer 12. The reflective layer 193 can block light emitted from the light emitting diode 110 toward the layer 12, and can suppress characteristic fluctuations when the transistor 120 is irradiated with light. For the same reason, it is preferable that the reflective layer 193 has an area overlapping with the transistor 130 in the layer 11.

[0054] The transistor having an area overlapping with the reflective layer 193 may be a part of the transistor in the layer 12 and the layer 11. If the characteristic fluctuation of the transistor caused by light irradiation is within an acceptable range, light shielding is not necessary. In addition, wiring or electrodes provided in the layer 12, the layer 13, etc. may function as a light shielding layer.

[0055] The reflective layer 193 is preferably formed of a material that has a high reflectance of light emitted by the light-emitting diode 110 of the layer 14. Examples of the material include metals such as aluminum, titanium, chromium, nickel, copper, yttrium, zirconium, tin, zinc, silver, platinum, gold, molybdenum, tantalum, and tungsten, and alloys containing these as main components (such as an alloy of silver, palladium, and copper (Ag-Pd-Cu(APC))). The reflective layer 193 may also be a laminate of two or more of the above materials.

[0056] An insulating layer 187 is provided on the conductive layer 189, the conductive layer 192, and the reflective layer 193. An insulating layer 188 is provided on the insulating layer 187. In addition, an insulating layer 102 is provided on the insulating layer 188.

[0057] One of the pair of conductive layers 166 of the transistor 120 is electrically connected to a conductive layer 189 through a conductive layer 184a and a conductive layer 184b.

[0058] The insulating layer 186 and the insulating layer 187 can have a planarization function. The insulating layer 186 and the insulating layer 187 are preferably formed using a single layer or a stacked layer including one or more inorganic insulating materials such as silicon oxide, silicon oxynitride, silicon nitride oxide, silicon nitride, aluminum oxide, hafnium oxide, or titanium nitride.

[0059] In this specification and the like, silicon oxynitride refers to a material that contains silicon, oxygen, and nitrogen and has a higher oxygen content than nitrogen, and silicon nitride oxide refers to a material that contains silicon, oxygen, and nitrogen and has a higher nitrogen content than oxygen.

[0060] The insulating layer 188 can function as a barrier layer that prevents impurities (such as hydrogen and water) from diffusing from the layer 14 to the transistor 120. For the insulating layer 188, for example, a film through which hydrogen and oxygen are less likely to diffuse than a silicon oxide film, such as an aluminum oxide film, a hafnium oxide film, or a silicon nitride film, can be used.

[0061] The insulating layer 102 is preferably formed using a single layer or a stacked layer including one or more inorganic insulating materials such as silicon oxide, silicon oxynitride, silicon nitride oxide, silicon nitride, aluminum oxide, hafnium oxide, or titanium nitride.

[0062] The transistor 120 can be used as a transistor that constitutes a pixel circuit. The transistor 130 can be used as a transistor that constitutes a driver circuit (such as one or both of a gate driver and a source driver) for driving the pixel circuit. Note that the transistor 130 may be a transistor that constitutes a pixel circuit. The transistors 120 and 130 can also be used as transistors that constitute various circuits such as an arithmetic circuit or a memory circuit.

[0063] With this configuration, not only elements such as transistors of the pixel circuit but also elements such as transistors of the driver circuit can be formed directly under the light-emitting diode, so the display device can be made smaller than when the driver circuit is provided outside the display section. Also, a display device with a narrow frame (narrow non-display area) can be realized.

[0064] The layer 14 includes a light-emitting diode 110, an insulating layer 103, and an insulating layer 104. The insulating layers 102, 103, and 104 may each have a single-layer structure or a multilayer structure.

[0065] The light emitting diode 110 includes a semiconductor layer 113, a light emitting layer 114, and a semiconductor layer 115, which are provided in this order on the layer 13. The light emitting diode 110 may further include a plurality of layers.

[0066] The insulating layer 103 is provided to cover the insulating layer 102, the semiconductor layer 113, the light-emitting layer 114, and the semiconductor layer 115. The insulating layer 103 preferably has a planarization function. An insulating layer 104 is provided over the insulating layer 103.

[0067] Conductive layers 190a and 191a are provided in openings provided in insulating layer 103. Conductive layers 190c and 191c are provided in openings provided in insulating layers 103, 102, 188, and 187. Conductive layers 190a, 190c, 191a, and 191c function as plugs that electrically connect the respective elements.

[0068] The semiconductor layer 113 is electrically connected to the conductive layer 189 via the conductive layers 190a, 190b, and 190c. The semiconductor layer 115 is electrically connected to the conductive layer 192 via the conductive layers 191a, 191b, and 191c. Here, the conductive layers 190b and 191b function as connection wirings.

[0069] Insulating layer 103, insulating layer 104, insulating layer 139, insulating layer 141, insulating layer 162, insulating layer 182, and insulating layer 185 are preferably formed using a single layer or a stacked layer containing one or more inorganic insulating materials such as silicon oxide, silicon oxynitride, silicon nitride oxide, silicon nitride, aluminum oxide, hafnium oxide, or titanium nitride.

[0070] Examples of materials that can be used for the conductive layers 190a to 190c and the conductive layers 191a to 191c include metals such as aluminum, titanium, chromium, nickel, copper, yttrium, zirconium, tin, zinc, silver, platinum, gold, molybdenum, tantalum, and tungsten, and alloys containing these as main components (such as an alloy of silver, palladium, and copper (Ag-Pd-Cu(APC))). Alternatively, oxides such as tin oxide or zinc oxide may be used. Alternatively, the conductive layers 190a to 190c and the conductive layers 191a to 191c may be stacked layers of two or more of the above materials.

[0071] The light emitting layer 114 is sandwiched between the semiconductor layer 113 and the semiconductor layer 115. In the light emitting layer 114, electrons and holes combine to emit light. One of the semiconductor layer 113 and the semiconductor layer 115 can be an n-type semiconductor layer, and the other can be a p-type semiconductor layer. The light emitting layer 114 can be an n-type, i-type, or p-type semiconductor layer.

[0072] The stacked structure including the semiconductor layer 113, the light emitting layer 114, and the semiconductor layer 115 is formed to emit light of red, green, blue, blue-violet, purple, ultraviolet, or the like. For example, a compound including a Group 13 element and a Group 15 element (also called a Group 3-5 compound) can be used for the stacked structure. Examples of Group 13 elements include aluminum, gallium, and indium. Examples of Group 15 elements include nitrogen, phosphorus, arsenic, and antimony.

[0073] For example, a light-emitting diode that emits the desired light can be fabricated by forming a pn junction or a pin junction using a gallium phosphide compound, a gallium arsenide compound, a gallium aluminum arsenide compound, an aluminum gallium indium phosphide compound, gallium nitride, an indium gallium nitride compound, a selenium zinc compound, etc. Compounds other than the above may also be used.

[0074] Furthermore, the pn junction or pin junction may be not only a homojunction but also a heterojunction or a double heterojunction. Additionally, an LED having a quantum well junction, an LED using nanocolumns, or the like may be used.

[0075] For example, light emitting diodes that emit light in the ultraviolet to blue wavelength range can use materials such as gallium nitride. Light emitting diodes that emit light in the ultraviolet to green wavelength range can use materials such as indium gallium nitride compounds. Light emitting diodes that emit light in the green to red wavelength range can use materials such as aluminum gallium indium phosphide compounds or gallium arsenide compounds. Light emitting diodes that emit light in the infrared wavelength range can use materials such as gallium arsenide compounds.

[0076] If the multiple light emitting diodes 110 arranged on the same surface are configured to emit light of different colors, such as R (red), G (green), and B (blue), it is possible to display a color image without using a color conversion layer. Therefore, the process of forming a color conversion layer is unnecessary, and the manufacturing cost of the display device can be reduced.

[0077] Alternatively, all the light emitting diodes 110 provided on the same surface may emit light of the same color. In this case, the light emitted from the light emitting layer 114 is extracted to the outside of the display device via one or both of the color conversion layer and the colored layer. This configuration will be described in detail in the second embodiment of the display device.

[0078] The display device of this embodiment mode may include a light emitting diode that emits infrared light. The light emitting diode that emits infrared light can be used as a light source for an infrared light sensor, for example.

[0079] 1 shows a form in which the reflective layer 193 can be formed of the same material and in the same process as the conductive layer 189 and the conductive layer 192, but the reflective layer 193 may be provided in a layer different from the layer in which the conductive layer 189 and the conductive layer 192 are provided. For example, as shown in FIG. 2A, the reflective layer 193 may be provided on the insulating layer 188 and covered with the insulating layer 102. Alternatively, as shown in FIG. 2B, the reflective layer 193 may be provided between the insulating layer 102 and the light-emitting diode 110. In this case, the reflective layer 193 may be configured to be in contact with the semiconductor layer 113 and act as one of the electrode layers of the light-emitting diode 110.

[0080] The light emitting diode 110 is fabricated into a structure as shown in Fig. 1 after a separately formed laminated structure of compound semiconductors or the like is fixed to the insulating layer 102. A method for forming the light emitting diode 110 will be described with reference to Figs. 3A to 3D, 4A to 4D, and 5A to 5D.

[0081] First, a release layer 310, a semiconductor layer 113a, a light emitting layer 114a, and a semiconductor layer 115a are provided on a substrate 300 (see FIG. 3A).

[0082] The substrate 300 may be a single crystal substrate such as a sapphire (Al2O3) substrate, a silicon carbide (SiC) substrate, a silicon (Si) substrate, or a compound semiconductor. The compound semiconductor may be a compound containing the above-mentioned Group 13 element and Group 15 element. When epitaxially growing the light emitting layer 114a, etc., the substrate 300 is preferably made of a material having a lattice constant that is the same as or slightly different from that of the light emitting layer 114a, etc.

[0083] For example, when forming a light emitting diode that emits red light, aluminum gallium arsenide (AlGaAs) or the like can be used for the light emitting layer 114a etc. In this case, a gallium arsenide (GaAs) substrate or the like can be used for the substrate 300.

[0084] A release layer 310 is provided on the substrate 300. The release layer 310 is provided in order to lift off a stacked body having the semiconductor layer 113a, the light emitting layer 114a, the semiconductor layer 115a, and the like from the substrate 300. The release layer 310 is preferably formed of a material that can be easily removed later by wet etching or the like. For example, aluminum arsenide (AlAs) or the like can be used.

[0085] On the peeling layer 310, a semiconductor layer 113a, a light emitting layer 114a, and a semiconductor layer 115a are provided. The semiconductor layer 113a and the semiconductor layer 115a function as cladding layers, and for example, one of them can have p-type conductivity and the other can have n-type conductivity. Here, the basic structure of the light emitting diode is described as three layers, but more layers may be included. Alternatively, a pn junction may be formed by adding impurities to a part of the light emitting layer 114a. The semiconductor layer 113a, the light emitting layer 114a, and the semiconductor layer 115a can be formed by epitaxial growth using, for example, an MOCVD method (metal organic chemical vapor deposition method) or the like.

[0086] Next, an adhesive layer 320 and a substrate 330 are provided on the semiconductor layer 115a (see FIG. 3B). The substrate 330 can function as a support substrate when lifting off a laminated body having the semiconductor layer 113a, the light emitting layer 114a, the semiconductor layer 115a, etc. The adhesive layer 320 functions to bond the laminated body and the substrate 330.

[0087] Before providing the adhesive layer 320 and the substrate 330 on the semiconductor layer 115a, the laminate may be processed into an island or stripe shape.

[0088] It is preferable to use a substrate having a flat surface as the substrate 330. For example, a semiconductor substrate such as silicon, a glass substrate, a ceramic substrate, a metal substrate, a resin substrate, or the like can be used.

[0089] A material that can be peeled off after adhesion can be used for the adhesive layer 320. For example, a pressure sensitive adhesive, an ultraviolet curable resin, a thermosetting resin, or a material that is soluble in water or an organic solvent can be used.

[0090] Next, the release layer 310 is etched by wet etching using an acid or the like (see FIG. 3C), and the substrate 300 is separated (see FIG. 3D).

[0091] Next, a laminate including semiconductor layer 113a, light emitting layer 114a, semiconductor layer 115a, adhesive layer 320, and substrate 330 is bonded to a laminate including layers 11, 12, and 13 that have been separately formed (see FIGS. 4A and 4B). Note that FIGS. 4A and 4B show elements of layer 13, and illustrate how the surface of semiconductor layer 113a exposed in FIG. 3D is bonded to the surface of insulating layer 102.

[0092] Next, the adhesive layer 320 and the substrate 330 are removed from the laminate of Fig. 4B (see Fig. 4C). The adhesive layer 320 can be cured or altered to weaken its adhesive force with the semiconductor layer 115a. Alternatively, the adhesive layer 320 may be dissolved to remove the substrate 330.

[0093] Next, the semiconductor layer 113a, the light emitting layer 114a, and the semiconductor layer 115a are processed into an island shape to form the semiconductor layer 113, the light emitting layer 114b, and the semiconductor layer 115b (see FIG. 4D).

[0094] Next, in order to form a region that electrically connects the semiconductor layer 113 and the conductive layer 190a, the light emitting layer 114a and the semiconductor layer 115a are processed to expose a part of the surface of the semiconductor layer 113 (see FIG. 5A). At this time, a stack of the semiconductor layer 113, the light emitting layer 114, and the semiconductor layer 115 is formed.

[0095] Next, the insulating layer 103 is formed to cover the stack of the semiconductor layer 113, the light emitting layer 114, and the semiconductor layer 115 (see FIG. 5B).

[0096] Next, an opening reaching the semiconductor layer 113 and an opening reaching the semiconductor layer 115 are formed in the insulating layer 103. Furthermore, an opening reaching the conductive layer 189 and an opening reaching the conductive layer 192 are formed in the insulating layer 103, the insulating layer 102, the insulating layer 187, and the insulating layer 186.

[0097] Next, conductive layers (conductive layer 190a, conductive layer 190c, conductive layer 191a, conductive layer 191c) are embedded in each of the openings. Here, conductive layer 190a and conductive layer 191a can function as a pair of electrodes of light-emitting diode 110. Note that conductive layers that become a pair of electrodes of light-emitting diode 110 may be provided in contact with semiconductor layer 113 and semiconductor layer 115, respectively, and one of the conductive layers may be electrically connected to conductive layer 190a, and the other conductive layer may be electrically connected to conductive layer 191a.

[0098] Then, conductive layers 190b and 191b are formed on insulating layer 103. Conductive layers 190a and 190c are electrically connected by conductive layer 190b, and conductive layers 191a and 191c are electrically connected by conductive layer 191b (see FIG. 5C).

[0099] In the above, an example has been described in which the semiconductor layer 113 of the light-emitting diode 110 is in contact with and fixed onto the insulating layer 102, but an adhesive layer 500 may be provided between the insulating layer 102 and the semiconductor layer 113 (see FIG. 5D). The adhesive layer 500 may be made of an insulating resin, a conductive resin (including a resin containing a conductive filler), or the like. When a conductive resin is used for the adhesive layer 500, the adhesive layer 500 may also function as one of the electrode layers of the light-emitting diode 110.

[0100] Through the above steps, a light-emitting diode can be formed in which one of a pair of electrodes is electrically connected to the conductive layer 189 and the other of the pair of electrodes is electrically connected to the conductive layer 192. Note that, although one light-emitting diode is illustrated in the figures used to explain the above steps, a plurality of light-emitting diodes can be formed at the same time in the above steps. Also, the above steps are merely an example, and light-emitting diodes may be formed in other steps.

[0101] Although display device 100A shown in FIGS. 1, 2A, and 2B has a laminated structure of layers 11, 12, 13, and 14, it may have a laminated structure shown in FIGS. 6A and 6B.

[0102] 6A shows an example of a display device 100B having a stacked configuration of layers 15, 12, 13, and 14, which differs from display device 100A in that layer 15 is provided instead of layer 11. The same reference numerals are used for elements common to layers 14 and 11.

[0103] Here, the layer 15 has a substrate 152. The substrate 152 functions as a support substrate. For example, a semiconductor substrate such as silicon, a glass substrate, a ceramic substrate, a metal substrate, or a resin substrate can be used as the substrate 152. In this configuration, a driver circuit of the pixel circuit can be formed using an OS transistor provided in the layer 12. For example, as shown in FIG. 7A, a transistor 120e included in a driver circuit of the pixel circuit can be provided in a region 402 provided outside a pixel portion 401.

[0104] Note that the structure of the transistor 120 included in the layer 12 is just an example, and may be a self-aligned transistor 120c shown in Fig. 6C. Alternatively, the layer 12 may have a transistor with a staggered type, an inverted staggered type, a coplanar type, an inverted coplanar type, or the like. These transistor structures can also be applied to other display devices described in this embodiment.

[0105] In addition, when the substrate 152 is transparent to the light emitted by the light emitting diode 110, as shown in Fig. 8A, by providing a reflective layer 193 on the semiconductor layer 115, it is possible to emit the light to the outside through the substrate 152. Alternatively, as shown in Fig. 8B, the reflective layer 193 may be omitted, and a configuration in which the light is emitted to both sides may be adopted.

[0106] 6B shows an example of a display device 100C having a stacked configuration of layers 16, 12, 13, and 14, which differs from the display device 100A in that layer 16 is provided instead of layer 11 and that no OS transistor is provided in layer 12. The same reference symbols are used for common elements shared by layers 16 and 11.

[0107] Here, a pixel circuit (excluding a display device) formed of a Si transistor is provided in the layer 16. Therefore, a semiconductor substrate such as silicon can be used for the layer 16. FIG. 6B shows an example in which a transistor 130d is provided on a silicon substrate 153.

[0108] As shown in FIG. 6D, the layer 16 may have a structure in which a silicon layer is provided over a substrate 154 with an insulating layer 143 interposed therebetween, and a self-aligned transistor 130f having a channel formation region in the silicon layer is included. As the silicon layer, single crystal silicon, polycrystalline silicon, microcrystalline silicon, amorphous silicon, or the like can be used. Alternatively, the layer 16 may have an inverted staggered transistor 130g shown in FIG. 6E. Alternatively, the layer 16 may have a transistor having a structure such as a staggered type, a coplanar type, or an inverted coplanar type. The structures of these transistors can also be applied to the layer 11 included in the other display devices shown in this embodiment.

[0109] A silicon substrate, a glass substrate, a ceramic substrate, a metal substrate, a resin substrate, or the like can be used as the substrate 154. The insulating layer 143 is preferably formed using a single layer or a stacked layer including one or more inorganic insulating materials such as silicon oxide, silicon oxynitride, silicon nitride oxide, silicon nitride, aluminum oxide, hafnium oxide, or titanium nitride.

[0110] In the display device 100C, a driver circuit for the pixel circuit and the like can be provided in the layer 16. For example, as shown in FIG. 7B, a transistor 130e included in the driver circuit for the pixel circuit can be provided in a region 402 provided outside a pixel portion 401.

[0111] In the display device 100B and the display device 100C, a part or all of the driving circuits for the pixel circuits may be provided in an external IC chip connected to the pixel circuits.

[0112] Fig. 9 shows a cross-sectional view of a display device 100D (also called a touch panel) in which a display device and a touch sensor are combined. Note that, although Fig. 9 illustrates the configuration of the display device 100A, the display device 100B or the display device 100C may also be combined with a touch sensor.

[0113] There is no limitation on a sensing device (also referred to as a sensor device, a sensing element, or a sensor element) included in the touch panel of one embodiment of the present invention. Various sensors capable of detecting the proximity or contact of a sensing object such as a finger or a stylus can be used as the sensing device.

[0114] As the sensor type, various types can be used, such as a capacitance type, a resistive film type, a surface acoustic wave type, an infrared type, an optical type, and a pressure sensitive type.

[0115] In this embodiment, a touch panel having a capacitance type detection device will be described as an example.

[0116] The capacitance type includes a surface capacitance type, a projected capacitance type, etc. The projected capacitance type includes a self-capacitance type, a mutual capacitance type, etc. The mutual capacitance type is preferable because it enables simultaneous multi-point detection.

[0117] A touch panel of one embodiment of the present invention can have various configurations, such as a configuration in which a display device and a detection device that are separately manufactured are bonded to each other, or a configuration in which electrodes that constitute a detection device are provided on one or both of a substrate supporting a display device and an opposing substrate.

[0118] A conductive layer 194 is formed on the insulating layer 185. The conductive layer 194 functions as an electrode or wiring for supplying power or a drive signal to the display device 100A. The conductive layer 194 can be formed of the same material and in the same process as the conductive layer 189, the conductive layer 192, the reflective layer 193, and the like.

[0119] The conductive layer 194 is electrically connected to an FPC (Flexible Printed Circuits) 501 via a conductive layer 195, a conductive layer 196, and a conductor 197. Power and a drive signal can be supplied to the display device 100D via the FPC 501.

[0120] As the conductor 197, for example, an anisotropic conductive film (ACF) or an anisotropic conductive paste (ACP) can be used.

[0121] The touch sensor is provided on a first surface of a substrate 171. An adhesive layer 179 is provided so as to cover elements of the touch sensor, and the adhesive layer 179 and the insulating layer 104 are attached to each other.

[0122] A conductive layer 177 and a conductive layer 178 are provided on a first surface of the substrate 171. The conductive layer 177 and the conductive layer 178 are formed on the same plane. A material that transmits visible light can be used for the conductive layer 177 and the conductive layer 178. The insulating layer 173 is provided so as to cover the conductive layer 177 and the conductive layer 178. The conductive layer 174 is electrically connected to the two conductive layers 178 provided so as to sandwich the conductive layer 177 through an opening provided in the insulating layer 173.

[0123] The conductive layer 178 is connected to the conductive layer 175. The conductive layer 175 can be formed using the same material and in the same process as the conductive layer 174. The conductive layer 175 is electrically connected to the FPC 502 via a conductor 176. As with the conductor 197, an anisotropic conductive film or an anisotropic conductive paste can be used for the conductor 176.

[0124] As described above, in the display device of this embodiment, a plurality of light-emitting diodes are formed in the same process, and the plurality of light-emitting diodes and a plurality of transistors can be electrically connected in the same process. Therefore, it is possible to reduce the manufacturing cost of the display device and improve the yield. In addition, the display device can be miniaturized by configuring the light-emitting diodes of the pixel circuit, the elements such as the transistors of the pixel circuit, and the elements such as the transistors of the driver circuit of the pixel circuit to have overlapping regions.

[0125] This embodiment mode can be combined with other embodiment modes as appropriate. In addition, in the case where a plurality of configuration examples are shown in one embodiment mode in this specification, the configuration examples can be combined as appropriate.

[0126] (Embodiment 2) In this embodiment, a configuration will be described in which a color conversion layer is provided on the light emission side of a light emitting diode in the display device described in embodiment 1. Note that detailed description of components common to embodiment 1 will be omitted.

[0127] 10 shows a cross-sectional view of a display device 100E. The display device 100E has a pixel 20R that emits red light, a pixel 20G that emits green light, and a pixel 20B that emits blue light. A layer 17 is provided on the layer 14 on which the light-emitting diodes are provided. A color conversion layer, a colored layer, a light-shielding layer, and the like are provided on the layer 17.

[0128] The pixel 20R has a light emitting diode 110R. The pixel 20G has a light emitting diode 110G. The pixel 20B has a light emitting diode 110B. The light emitting diode 110R, the light emitting diode 110G, and the light emitting diode 110B each emit light of the same color. That is, the light emitting diode 110R, the light emitting diode 110G, and the light emitting diode 110B can each have the same configuration.

[0129] Specifically, it is preferable that each of the light emitting diodes 110R, 110G, and 110B emits blue light. To form a color image, pixels emitting the three primary colors of light, red (R), green (G), and blue (B), can be used. In the display device described in this embodiment, a color conversion layer is used in the pixel, and the light emitted by the light emitting diode is converted into light of a required color and emitted to the outside. Here, if a light emitting diode that emits blue light is used, it is not necessary to use a color conversion layer in the pixel that emits blue light, and therefore the manufacturing cost can be reduced.

[0130] In the red pixel 20R, a color conversion layer 360R and a coloring layer 361R are provided in a region overlapping with the light emitting diode 110R. The light emitted by the light emitting diode 110R is converted from blue to red by the color conversion layer 360R, and the purity of the red light is increased by the coloring layer 361R, and the light is emitted to the outside of the display device 100E. Note that the coloring layer 361R may be omitted.

[0131] In the green pixel 20G, a color conversion layer 360G and a coloring layer 361G are provided in a region overlapping with the light emitting diode 110G. The light emitted from the light emitting diode 110G is converted from blue to green by the color conversion layer 360G, and the purity of the green light is increased by the coloring layer 361G, and the light is emitted to the outside of the display device 100E. Note that the coloring layer 361G may be omitted.

[0132] A colored layer 361B is provided in the blue pixel 20B in a region overlapping with the light emitting diode 110B. The purity of the blue light emitted by the light emitting diode 110B is increased by the colored layer 361B, and the light is emitted to the outside of the display device 100E. Note that the colored layer 361B may be omitted. As described above, the color conversion layer can be omitted in the blue pixel 20B.

[0133] In the display device 100E, it is sufficient to fabricate only one type of light-emitting diode on a substrate, and therefore the manufacturing equipment and process can be simplified compared to the case where a plurality of types of light-emitting diodes are fabricated.

[0134] A light-shielding layer 350 is provided between the pixels of each color. The light-shielding layer 350 is provided at a position where it blocks at least the light emitted in the horizontal direction by the light-emitting diode 110. If necessary, it may also be provided at a position where it blocks the light emitted in an oblique direction by the light-emitting diode 110. In addition, a light-shielding layer 351 is provided on the insulating layer 104 to cover the periphery of the pixels.

[0135] By providing the light-shielding layer 350 and the light-shielding layer 351, it is possible to prevent the light emitted by the light-emitting diode from entering the pixel region of the adjacent color, and to prevent color mixing. Therefore, it is possible to improve the display quality of the display device. Note that a configuration in which either the light-shielding layer 350 or the light-shielding layer 351 is provided may be used.

[0136] The material constituting the light-shielding layer 350 and the light-shielding layer 351 is not particularly limited, and for example, an inorganic material such as a metal material, or an organic material such as a resin material containing a pigment (carbon black, etc.) or a dye can be used. The light-shielding layer 351 may be formed by laminating colored layers of each color. For example, it can be formed by laminating colored layers of three colors, red, green, and blue.

[0137] Also, each of the light emitting diodes 110R, 110G, and 110B may be configured to emit light with a wavelength having a higher photon energy than blue light. For example, light emitting diodes capable of emitting blue-violet, purple, or ultraviolet light may be used. By using light with high photon energy, efficient color conversion can be achieved in the color conversion layer.

[0138] In this case, as in the display device 100F shown in Fig. 11, a color conversion layer 360B and a coloring layer 361B are provided in the blue pixel 20B in a region overlapping with the light emitting diode 110B. The light emitted by the light emitting diode 110B is converted from blue-violet, purple, or ultraviolet to blue by the color conversion layer 360B, and the purity of the blue light is increased by the coloring layer 361B, and the light is emitted to the outside of the display device 100E. Note that the coloring layer 361B may be omitted.

[0139] It is preferable to use phosphors or quantum dots (QDs) as the color conversion layer. In particular, quantum dots have a narrow peak width of the emission spectrum, and can emit light with good color purity. This can improve the display quality of the display device.

[0140] The color conversion layer can be formed by using a droplet discharge method (for example, an inkjet method), a coating method, an imprint method, various printing methods (screen printing, offset printing), etc. A color conversion film such as a quantum dot film may also be used.

[0141] Lithography can be used to process the film that will become the color conversion layer. For example, a method can be used in which a resist mask is formed on the thin film to be processed, the thin film is processed by etching or the like, and the resist mask is removed. Alternatively, a method can be used in which a photosensitive thin film is formed, and then the thin film is processed into a desired shape by exposure and development. For example, a thin film can be formed using a photosensitive material mixed with quantum dots, and the thin film can be processed using lithography to form an island-shaped color conversion layer.

[0142] The material constituting the quantum dots is not particularly limited, and examples thereof include Group 14 elements, Group 15 elements, Group 16 elements, compounds consisting of multiple Group 14 elements, compounds of elements belonging to Groups 4 to 14 and Group 16 elements, compounds of Group 2 elements and Group 16 elements, compounds of Group 13 elements and Group 15 elements, compounds of Group 13 elements and Group 17 elements, compounds of Group 14 elements and Group 15 elements, compounds of Group 11 elements and Group 17 elements, iron oxides, titanium oxides, chalcogenide spinels, and various semiconductor clusters.

[0143] Specifically, cadmium selenide, cadmium sulfide, cadmium telluride, zinc selenide, zinc oxide, zinc sulfide, zinc telluride, mercury sulfide, mercury selenide, mercury telluride, indium arsenide, indium phosphide, gallium arsenide, gallium phosphide, indium nitride, gallium nitride, indium antimonide, gallium antimonide, aluminum phosphide, aluminum arsenide, aluminum antimonide, lead selenide, lead telluride, lead sulfide, indium selenide, tellurium Indium sulfide, indium sulfide, gallium selenide, arsenic sulfide, arsenic selenide, arsenic telluride, antimony sulfide, antimony selenide, antimony telluride, bismuth sulfide, bismuth selenide, bismuth telluride, silicon, silicon carbide, germanium, tin, selenium, tellurium, boron, carbon, phosphorus, boron nitride, boron phosphide, boron arsenide, aluminum nitride, aluminum sulfide, barium sulfide, barium selenide, barium telluride, calcium sulfide, calcium selenide Calcium, calcium telluride, beryllium sulfide, beryllium selenide, beryllium telluride, magnesium sulfide, magnesium selenide, germanium sulfide, germanium selenide, germanium telluride, tin sulfide, tin selenide, tin telluride, lead oxide, copper fluoride, copper chloride, copper bromide, copper iodide, copper oxide, copper selenide, nickel oxide, cobalt oxide, cobalt sulfide, iron oxide, iron sulfide, manganese oxide, molybdenum sulfide, vanadium oxide, tungsten oxide, tantalum oxide Examples of the quantum dots include ruthenium, titanium oxide, zirconium oxide, silicon nitride, germanium nitride, aluminum oxide, barium titanate, a compound of selenium, zinc, and cadmium, a compound of indium, arsenic, and phosphorus, a compound of cadmium, selenium, and sulfur, a compound of cadmium, selenium, and tellurium, a compound of indium, gallium, and arsenic, a compound of indium, gallium, and selenium, a compound of indium, selenium, and sulfur, a compound of copper, indium, and sulfur, and combinations thereof. In addition, so-called alloy-type quantum dots, whose composition is expressed in any ratio, may be used.

[0144] The structure of the quantum dots includes a core type, a core-shell type, and a core-multishell type. In addition, since the proportion of surface atoms in the quantum dots is high, the quantum dots are highly reactive and prone to aggregation. Therefore, it is preferable that a protective agent is attached to the surface of the quantum dots or a protective group is provided. By attaching the protective agent or providing the protective group, aggregation can be prevented and solubility in a solvent can be increased. In addition, it is also possible to reduce reactivity and improve electrical stability.

[0145] The smaller the size of the quantum dot, the larger the band gap becomes, so the size is adjusted appropriately to obtain light of the desired wavelength. As the size of the crystal becomes smaller, the emission of the quantum dot shifts to the blue side, that is, to the high energy side, so that the emission wavelength can be adjusted over the wavelength range of the spectrum of the ultraviolet region, the visible region, and the infrared region by changing the size of the quantum dot. The size (diameter) of the quantum dot is, for example, 0.5 nm or more and 20 nm or less, preferably 1 nm or more and 10 nm or less. The narrower the size distribution of the quantum dot, the narrower the emission spectrum becomes, and light emission with good color purity can be obtained. In addition, the shape of the quantum dot is not particularly limited, and may be spherical, rod-shaped, disk-shaped, or other shapes. A quantum rod, which is a rod-shaped quantum dot, has the function of exhibiting light with directionality.

[0146] The colored layer is a colored layer that transmits light in a specific wavelength range. For example, a color filter that transmits light in a red, green, blue, or yellow wavelength range can be used. Examples of materials that can be used for the colored layer include metal materials, resin materials, and resin materials containing pigments or dyes.

[0147] Although the configurations of the display device 100E and the display device 100D have been illustrated using the configuration of the display device 100A, they can also be applied to the other display devices shown in the first embodiment.

[0148] This embodiment mode can be combined with other embodiment modes as appropriate. In addition, in the case where a plurality of configuration examples are shown in one embodiment mode in this specification, the configuration examples can be combined as appropriate.

[0149] (Embodiment 3) In this embodiment, a transistor that can be used in a display device of one embodiment of the present invention will be described.

[0150] The structure of the transistor included in the display device is not particularly limited. For example, the transistor may be a planar type transistor, a staggered type transistor, or an inverted staggered type transistor. In addition, the transistor may have either a top gate structure or a bottom gate structure. Alternatively, gate electrodes may be provided above and below a channel.

[0151] For example, a transistor including a metal oxide in a channel formation region can be used as a transistor included in a display device, which can have an extremely small off-state current.

[0152] A transistor having silicon in a channel formation region may be used as a transistor included in a display device. Examples of such a transistor include a transistor having amorphous silicon, a transistor having crystalline silicon (typically, low-temperature polysilicon), a transistor having single crystal silicon, etc. For example, a transistor using a metal oxide in a channel formation region and a transistor having silicon in a channel formation region may be used in combination.

[0153] The following insulators, conductors, oxides, and semiconductors can be formed by sputtering, chemical vapor deposition (CVD), molecular beam epitaxy (MBE), pulsed laser deposition (PLD), atomic layer deposition (ALD), or the like. In this specification and the like, the term "insulator" can be replaced with an insulating film or an insulating layer. The term "conductor" can be replaced with a conductive film or a conductive layer. The term "oxide" can be replaced with an oxide film or an oxide layer. The term "semiconductor" can be replaced with a semiconductor film or a semiconductor layer.

[0154] FIG. 12A shows a top view of the transistor 200. Note that in FIG. 12A, some elements are omitted for clarity. FIG. 12B shows a cross-sectional view taken along dashed lines A1-A2 in FIG. 12A. FIG. 12B can be considered a cross-sectional view of the transistor 200 in the channel length direction. FIG. 12C shows a cross-sectional view taken along dashed lines A3-A4 in FIG. 12A. FIG. 12C can be considered a cross-sectional view of the transistor 200 in the channel width direction. FIG. 12D shows a cross-sectional view taken along dashed lines A5-A6 in FIG. 12A.

[0155] The semiconductor device shown in FIG. 12A to FIG. 12D includes an insulator 212 on a substrate (not shown), an insulator 214 on the insulator 212, a transistor 200 on the insulator 214, an insulator 280 on the transistor 200, an insulator 282 on the insulator 280, an insulator 283 on the insulator 282, and an insulator 285 on the insulator 283. The insulators 212, 214, 280, 282, 283, and 285 function as interlayer insulating films. The semiconductor device also includes a conductor 240 (conductor 240a and conductor 240b) that is electrically connected to the transistor 200 and functions as a plug. An insulator 241 (insulator 241a and insulator 241b) is provided in contact with a side surface of the conductor 240 that functions as a plug. In addition, on the insulator 285 and the conductor 240, a conductor 246 (conductor 246a and conductor 246b) that is electrically connected to the conductor 240 and functions as wiring is provided.

[0156] The insulator 241a is provided in contact with the inner wall of the opening of the insulator 280, the insulator 282, the insulator 283, and the insulator 285, the first conductor of the conductor 240a is provided in contact with the side surface of the insulator 241a, and the second conductor of the conductor 240a is provided further inside. The insulator 241b is provided in contact with the inner wall of the opening of the insulator 280, the insulator 282, the insulator 283, and the insulator 285, the first conductor of the conductor 240b is provided in contact with the side surface of the insulator 241b, and the second conductor of the conductor 240b is provided further inside. Here, the height of the top surface of the conductor 240 and the height of the top surface of the insulator 285 in the region overlapping with the conductor 246 can be made approximately the same. Note that, in the transistor 200, a configuration in which a first conductor and a second conductor are stacked as the conductor 240 is shown, but the present invention is not limited to this. For example, the conductor 240 may be provided as a single layer or a laminated structure of three or more layers. When the structure has a laminated structure, the layers may be distinguished by giving ordinal numbers in the order of formation.

[0157] [Transistor 200] As shown in FIGS. 12A to 12D , the transistor 200 includes an insulator 216 on an insulator 214, a conductor 205 (conductor 205a and conductor 205b) disposed so as to be embedded in the insulator 216, an insulator 222 on the insulator 216 and on the conductor 205, an insulator 224 on the insulator 222, an oxide 230a on the insulator 224, an oxide 230b on the oxide 230a, an oxide 243 (oxide 243a and oxide 243b) on the oxide 230b, a conductor 242a on the oxide 243a, and an insulator 222 on the conductor 242a. The semiconductor device has an edge 271a, a conductor 242b on oxide 243b, an insulator 271b on conductor 242b, an insulator 250 (insulator 250a and insulator 250b) on oxide 230b, a conductor 260 (conductor 260a and conductor 260b) located on insulator 250 and overlapping with part of oxide 230b, and an insulator 275 arranged to cover insulator 222, insulator 224, oxide 230a, oxide 230b, oxide 243a, oxide 243b, conductor 242a, conductor 242b, insulator 271a, and insulator 271b.

[0158] In the following, the oxide 230a and the oxide 230b may be collectively referred to as the oxide 230. Furthermore, the conductor 242a and the conductor 242b may be collectively referred to as the conductor 242. Furthermore, the insulator 271a and the insulator 271b may be collectively referred to as the insulator 271.

[0159] The insulator 280 and the insulator 275 have openings that reach the oxide 230b. The insulator 250 and the conductor 260 are disposed in the openings. In addition, in the channel length direction of the transistor 200, the conductor 260 and the insulator 250 are provided between the insulator 271a, the conductor 242a, and the oxide 243a and the insulator 271b, the conductor 242b, and the oxide 243b. The insulator 250 has a region in contact with a side surface of the conductor 260 and a region in contact with a bottom surface of the conductor 260.

[0160] The oxide 230 preferably has an oxide 230a disposed on the insulator 224 and an oxide 230b disposed on the oxide 230a. By having the oxide 230a below the oxide 230b, it is possible to suppress the diffusion of impurities from a structure formed below the oxide 230a to the oxide 230b.

[0161] Note that, in the transistor 200, the oxide 230 has a structure in which two layers of the oxide 230a and the oxide 230b are stacked, but the present invention is not limited to this. For example, the oxide 230b may have a single layer or a stacked structure of three or more layers, or each of the oxide 230a and the oxide 230b may have a stacked structure.

[0162] The conductor 260 functions as a first gate (also referred to as a top gate) electrode, and the conductor 205 functions as a second gate (also referred to as a back gate) electrode. The insulator 250 functions as a first gate insulating film, and the insulators 224 and 222 function as second gate insulating films. The conductor 242a functions as one of a source electrode or a drain electrode, and the conductor 242b functions as the other of the source electrode or the drain electrode. At least a part of a region of the oxide 230 overlapping with the conductor 260 functions as a channel formation region.

[0163] The oxide 230b has one of a source region and a drain region in a region overlapping with the conductor 242a, and has the other of the source region and the drain region in a region overlapping with the conductor 242b. The oxide 230b also has a channel formation region (the region indicated by the shaded area in FIG. 12B) between the source region and the drain region.

[0164] The channel formation region is a high-resistance region having a low carrier concentration because it has fewer oxygen vacancies or a lower impurity concentration than the source and drain regions. 18 cm -3 It is preferable that the value is less than 1×1017 cm -3 More preferably, it is less than 1×10 16 cm -3 More preferably, it is less than 1×10 13 cm -3 More preferably, it is less than 1×10 12 cm -3 The lower limit of the carrier concentration in the channel formation region is not particularly limited, but is preferably, for example, 1×10 -9 cm -3 It can be said that:

[0165] In the above, the channel formation region, the source region, and the drain region are formed in the oxide 230b, but the present invention is not limited to this. For example, the channel formation region, the source region, and the drain region may be formed in the oxide 230a in the same manner.

[0166] In the transistor 200, a metal oxide that functions as a semiconductor (also referred to as an oxide semiconductor) is preferably used for the oxide 230 (the oxide 230a and the oxide 230b) including a channel formation region.

[0167] The metal oxide functioning as a semiconductor preferably has a band gap of 2 eV or more, more preferably 2.5 eV or more. By using a metal oxide having such a large band gap, the off-state current of a transistor can be reduced.

[0168] As the oxide 230, for example, a metal oxide such as an In-M-Zn oxide having indium, an element M, and zinc (the element M is one or more selected from aluminum, gallium, yttrium, tin, copper, vanadium, beryllium, boron, titanium, iron, nickel, germanium, zirconium, molybdenum, lanthanum, cerium, neodymium, hafnium, tantalum, tungsten, magnesium, etc.) may be used. Alternatively, as the oxide 230, an In-Ga oxide, an In-Zn oxide, or an indium oxide may be used.

[0169] Here, it is preferable that the atomic ratio of In to element M in the metal oxide used for oxide 230b is greater than the atomic ratio of In to element M in the metal oxide used for oxide 230a.

[0170] Specifically, the oxide 230a may be a metal oxide having a composition of In:M:Zn=1:3:4 [atomic ratio] or a composition close thereto, or In:M:Zn=1:1:0.5 [atomic ratio] or a composition close thereto. The oxide 230b may be a metal oxide having a composition of In:M:Zn=1:1:1 [atomic ratio] or a composition close thereto, or In:M:Zn=4:2:3 [atomic ratio] or a composition close thereto. The composition close thereto includes a range of ±30% of the desired atomic ratio. The element M is preferably gallium.

[0171] In addition, when a metal oxide film is formed by a sputtering method, the above atomic ratio is not limited to the atomic ratio of the formed metal oxide film, but may be the atomic ratio of a sputtering target used to form the metal oxide film.

[0172] In this manner, by disposing the oxide 230a below the oxide 230b, it is possible to suppress the diffusion of impurities and oxygen from structures formed below the oxide 230a into the oxide 230b.

[0173] In addition, since the oxide 230a and the oxide 230b have a common element other than oxygen (as a main component), the defect state density at the interface between the oxide 230a and the oxide 230b can be reduced. Since the defect state density at the interface between the oxide 230a and the oxide 230b can be reduced, the effect of interface scattering on carrier conduction is small, and a high on-current can be obtained.

[0174] It is preferable that the oxide 230b has crystallinity, and it is particularly preferable to use c-axis aligned crystalline oxide semiconductor (CAAC-OS) as the oxide 230b.

[0175] CAAC-OS has a highly crystalline and dense structure and is free of impurities and defects (e.g., oxygen vacancies (V O In particular, by subjecting the metal oxide to heat treatment at a temperature at which the metal oxide does not polycrystallize (for example, 400° C. or higher and 600° C. or lower) after formation of the metal oxide, the CAAC-OS can have a dense structure with higher crystallinity. In this way, the density of the CAAC-OS can be increased, thereby further reducing the diffusion of impurities or oxygen in the CAAC-OS.

[0176] On the other hand, it is difficult to identify clear grain boundaries in CAAC-OS, so it is said that the decrease in electron mobility caused by grain boundaries is unlikely to occur. Therefore, metal oxides with CAAC-OS have stable physical properties. Therefore, metal oxides with CAAC-OS are resistant to heat and highly reliable.

[0177] At least one of the insulators 212, 214, 271, 275, 282, and 283 preferably functions as a barrier insulating film that suppresses diffusion of impurities such as water and hydrogen from the substrate side or from above the transistor 200 to the transistor 200. Therefore, at least one of the insulators 212, 214, 271, 275, 282, and 283 is preferably made of an insulating material that has a function of suppressing diffusion of impurities such as hydrogen atoms, hydrogen molecules, water molecules, nitrogen atoms, nitrogen molecules, nitrogen oxide molecules (NO, NO, NO, etc.), and copper atoms (through which the above impurities are unlikely to permeate). Alternatively, it is preferable to use an insulating material that has a function of suppressing diffusion of oxygen (for example, at least one of oxygen atoms, oxygen molecules, etc.) (through which the above oxygen is unlikely to permeate).

[0178] In this specification, a barrier insulating film refers to an insulating film having a barrier property. In this specification, the barrier property means a function of suppressing the diffusion of a corresponding substance (also called low permeability) or a function of capturing and fixing a corresponding substance (also called gettering).

[0179] For example, aluminum oxide, magnesium oxide, hafnium oxide, gallium oxide, indium gallium zinc oxide, silicon nitride, or silicon nitride oxide can be used for the insulators 212, 214, 271, 275, 282, and 283. For example, it is preferable to use silicon nitride or the like, which has a higher hydrogen barrier property, for the insulators 212, 275, and 283. For example, it is preferable to use aluminum oxide or magnesium oxide, which has a higher function of capturing and fixing hydrogen, for the insulators 214, 271, and 282. This can suppress impurities such as water and hydrogen from diffusing from the substrate side to the transistor 200 side through the insulators 212 and 214. Alternatively, it is possible to suppress impurities such as water and hydrogen from diffusing from an interlayer insulating film disposed outside the insulator 283 to the transistor 200 side. Alternatively, oxygen contained in the insulator 224 or the like can be suppressed from diffusing toward the substrate side through the insulator 212 and the insulator 214. Alternatively, oxygen contained in the insulator 280 or the like can be suppressed from diffusing upward from the transistor 200 through the insulator 282 or the like. In this manner, it is preferable to have a structure in which the transistor 200 is surrounded by the insulators 212, 214, 271, 275, 282, and 283, which have a function of suppressing the diffusion of impurities such as water and hydrogen, and oxygen.

[0180] Here, it is preferable to use an oxide having an amorphous structure as the insulators 212, 214, 271, 275, 282, and 283. For example, AlO x (x is any number greater than 0), or MgOy It is preferable to use a metal oxide such as y (y is any number greater than 0). In such a metal oxide having an amorphous structure, oxygen atoms have dangling bonds, and the dangling bonds may have the property of capturing or fixing hydrogen. By using such a metal oxide having an amorphous structure as a component of the transistor 200 or providing it around the transistor 200, hydrogen contained in the transistor 200 or hydrogen present around the transistor 200 can be captured or fixed. In particular, it is preferable to capture or fix hydrogen contained in the channel formation region of the transistor 200. By using a metal oxide having an amorphous structure as a component of the transistor 200 or providing it around the transistor 200, a transistor 200 and a semiconductor device having good characteristics and high reliability can be manufactured.

[0181] Note that the insulators 212, 214, 271, 275, 282, and 283 preferably have an amorphous structure, but may have a polycrystalline structure region in a portion thereof. The insulators 212, 214, 271, 275, 282, and 283 may have a multilayer structure in which a layer of an amorphous structure and a layer of a polycrystalline structure are stacked. For example, they may have a stacked structure in which a layer of a polycrystalline structure is formed on a layer of an amorphous structure.

[0182] The insulators 212, 214, 271, 275, 282, and 283 may be formed by, for example, a sputtering method. Because the sputtering method does not require the use of hydrogen as a film formation gas, the hydrogen concentration of the insulators 212, 214, 271, 275, 282, and 283 can be reduced. Note that the film formation method is not limited to the sputtering method, and a CVD method, an MBE method, a PLD method, an ALD method, or the like may be used as appropriate.

[0183] The insulators 216, 280, and 285 preferably have a lower dielectric constant than the insulator 214. By using a material with a low dielectric constant as an interlayer insulating film, the parasitic capacitance generated between wirings can be reduced. For example, silicon oxide, silicon oxynitride, silicon nitride oxide, silicon nitride, silicon oxide to which fluorine has been added, silicon oxide to which carbon has been added, silicon oxide to which carbon and nitrogen have been added, silicon oxide having vacancies, or the like may be used as the insulators 216, 280, and 285 as appropriate.

[0184] The conductor 205 is disposed so as to overlap the oxide 230 and the conductor 260. Here, the conductor 205 is preferably provided by being embedded in an opening formed in the insulator 216.

[0185] The conductor 205 includes conductor 205a and conductor 205b. The conductor 205a is provided in contact with the bottom surface and side wall of the opening. The conductor 205b is provided so as to be embedded in a recess formed in the conductor 205a. Here, the height of the upper surface of the conductor 205b is approximately equal to the height of the upper surface of the conductor 205a and the height of the upper surface of the insulator 216.

[0186] The conductor 205a may be made of a conductive material that can be used for the conductor 260a, which will be described later. The conductor 205b may be made of a conductive material that can be used for the conductor 260b, which will be described later. Although the conductor 205 in the transistor 200 has a stacked structure of the conductor 205a and the conductor 205b, the present invention is not limited to this. For example, the conductor 205 may be provided as a single layer, a two-layer, or a four or more layer stacked structure.

[0187] The insulators 222 and 224 function as gate insulating films.

[0188] The insulator 222 preferably has a function of suppressing the diffusion of hydrogen (e.g., at least one of hydrogen atoms, hydrogen molecules, etc.). The insulator 222 preferably has a function of suppressing the diffusion of oxygen (e.g., at least one of oxygen atoms, oxygen molecules, etc.). For example, the insulator 222 preferably has a function of suppressing the diffusion of one or both of hydrogen and oxygen more than the insulator 224.

[0189] The insulator 222 may be an insulator containing an oxide of one or both of insulating materials, aluminum and hafnium. As the insulator, it is preferable to use aluminum oxide, hafnium oxide, an oxide containing aluminum and hafnium (hafnium aluminate), or the like. Alternatively, the insulator 222 may be a barrier insulating film that can be used for the insulator 214 described above.

[0190] The insulator 224 may be made of silicon oxide, silicon oxynitride, or the like as appropriate. By providing the insulator 224 containing oxygen in contact with the oxide 230, oxygen vacancies in the oxide 230 can be reduced and the reliability of the transistor 200 can be improved. The insulator 224 is preferably processed into an island shape so as to overlap with the oxide 230a. In this case, the insulator 275 is configured to be in contact with the side surface of the insulator 224 and the top surface of the insulator 222. This allows the insulator 224 and the insulator 280 to be separated from each other by the insulator 275, so that the oxygen contained in the insulator 280 can diffuse into the insulator 224, and the oxygen in the insulator 224 can be prevented from becoming excessive.

[0191] The insulator 222 and the insulator 224 may have a laminated structure of two or more layers. In that case, the laminated structure is not limited to being made of the same material, and may be made of different materials. Although FIG. 12B and other figures show a configuration in which the insulator 224 is formed in an island shape by overlapping with the oxide 230a, the present invention is not limited to this. If the amount of oxygen contained in the insulator 224 can be appropriately adjusted, the insulator 224 may be configured not to be patterned, similar to the insulator 222.

[0192] The oxide 243a and the oxide 243b are provided on the oxide 230b. The oxide 243a and the oxide 243b are provided at a distance from each other with the conductor 260 interposed therebetween. The oxide 243 (the oxide 243a and the oxide 243b) preferably has a function of suppressing oxygen permeation. By disposing the oxide 243 having a function of suppressing oxygen permeation between the conductor 242 functioning as a source electrode or a drain electrode and the oxide 230b, the electrical resistance between the conductor 242 and the oxide 230b is reduced, which is preferable. Note that if the electrical resistance between the conductor 242 and the oxide 230b can be sufficiently reduced, the oxide 243 may not be provided.

[0193] A metal oxide having element M may be used as the oxide 243. In particular, the element M may be aluminum, gallium, yttrium, or tin. The oxide 243 preferably has a higher concentration of element M than the oxide 230b. Gallium oxide may be used as the oxide 243. A metal oxide such as In-M-Zn oxide may be used as the oxide 243. Specifically, in the metal oxide used for the oxide 243, the atomic ratio of element M to In is preferably greater than the atomic ratio of element M to In in the metal oxide used for the oxide 230b. The thickness of the oxide 243 is preferably 0.5 nm or more and 5 nm or less, more preferably 1 nm or more and 3 nm or less, and even more preferably 1 nm or more and 2 nm or less.

[0194] It is preferable that the conductor 242a be provided in contact with an upper surface of the oxide 243a, and the conductor 242b be provided in contact with an upper surface of the oxide 243b. The conductor 242a and the conductor 242b function as a source electrode and a drain electrode of the transistor 200, respectively.

[0195] As the conductor 242 (conductor 242a and conductor 242b), for example, a nitride containing tantalum, a nitride containing titanium, a nitride containing molybdenum, a nitride containing tungsten, a nitride containing tantalum and aluminum, a nitride containing titanium and aluminum, or the like is preferably used. In one embodiment of the present invention, a nitride containing tantalum is particularly preferable. Also, for example, ruthenium oxide, ruthenium nitride, an oxide containing strontium and ruthenium, an oxide containing lanthanum and nickel, or the like may be used. These materials are preferable because they are conductive materials that are difficult to oxidize, or materials that maintain their conductivity even when they absorb oxygen.

[0196] Moreover, it is preferable that no curved surface is formed between the side surface of the conductor 242 and the top surface of the conductor 242. By forming the conductor 242 without such a curved surface, it is possible to increase the cross-sectional area of ​​the conductor 242 in the cross section in the channel width direction as shown in Fig. 12D. This can increase the conductivity of the conductor 242 and the on-current of the transistor 200.

[0197] The insulator 271a is provided in contact with the upper surface of the conductor 242a, and the insulator 271b is provided in contact with the upper surface of the conductor 242b.

[0198] The insulator 275 is provided in contact with the upper surface of the insulator 222, the side surface of the insulator 224, the side surface of the oxide 230a, the side surface of the oxide 230b, the side surface of the oxide 243, the side surface of the conductor 242, and the side surface and upper surface of the insulator 271. The insulator 275 has openings formed in the regions where the insulator 250 and the conductor 260 are provided.

[0199] By providing insulators 214, 271, and 275, which have the function of capturing impurities such as hydrogen, in the region sandwiched between insulators 212 and 275, impurities such as hydrogen contained in insulator 224 or insulator 216 can be captured and the amount of hydrogen in the region can be kept constant. In this case, insulators 214, 271, and 275 preferably contain aluminum oxide with an amorphous structure.

[0200] The insulator 250 has an insulator 250a and an insulator 250b on the insulator 250a, and functions as a gate insulating film. The insulator 250a is preferably disposed in contact with the top surface of the oxide 230b, the side of the oxide 243, the side of the conductor 242, the side of the insulator 271, the side of the insulator 275, and the side of the insulator 280. The thickness of the insulator 250 is preferably 1 nm or more and 20 nm or less.

[0201] The insulator 250a may be made of silicon oxide, silicon oxynitride, silicon nitride oxide, silicon nitride, silicon oxide doped with fluorine, silicon oxide doped with carbon, silicon oxide doped with carbon and nitrogen, silicon oxide having vacancies, or the like. Silicon oxide and silicon oxynitride are particularly preferred because they are stable against heat. As with the insulator 224, the insulator 250a is preferably one in which the concentration of impurities such as water and hydrogen is reduced.

[0202] It is preferable that the insulator 250a is formed using an insulator that releases oxygen when heated, and the insulator 250b is formed using an insulator that has a function of suppressing the diffusion of oxygen. With such a configuration, it is possible to suppress the diffusion of oxygen contained in the insulator 250a into the conductor 260. In other words, it is possible to suppress a decrease in the amount of oxygen supplied to the oxide 230. In addition, it is possible to suppress the oxidation of the conductor 260 due to the oxygen contained in the insulator 250a. For example, the insulator 250b can be provided using the same material as the insulator 222.

[0203] Specifically, the insulator 250b may be a metal oxide containing one or more of hafnium, aluminum, gallium, yttrium, zirconium, tungsten, titanium, tantalum, nickel, germanium, magnesium, or a metal oxide that can be used as the oxide 230. In particular, it is preferable to use an insulator containing an oxide of one or both of aluminum and hafnium. It is preferable to use aluminum oxide, hafnium oxide, or an oxide containing aluminum and hafnium (hafnium aluminate) as the insulator. The thickness of the insulator 250b is preferably 0.5 nm or more and 3.0 nm or less, and more preferably 1.0 nm or more and 1.5 nm or less.

[0204] 12B and 12C, the insulator 250 is illustrated as having a two-layer laminated structure, but the present invention is not limited to this. The insulator 250 may have a single layer structure or a laminated structure of three or more layers.

[0205] The conductor 260 is provided on the insulator 250b and functions as a first gate electrode of the transistor 200. The conductor 260 preferably includes a conductor 260a and a conductor 260b disposed on the conductor 260a. For example, the conductor 260a is preferably disposed so as to surround the bottom and side surfaces of the conductor 260b. As shown in FIGS. 12B and 12C, the top surface of the conductor 260 is substantially flush with the top surface of the insulator 250. Note that, although the conductor 260 is shown as having a two-layer structure of the conductor 260a and the conductor 260b in FIGS. 12B and 12C, the conductor 260 may have a single-layer structure or a laminated structure of three or more layers.

[0206] The conductor 260a is preferably made of a conductive material having a function of suppressing the diffusion of impurities such as hydrogen atoms, hydrogen molecules, water molecules, nitrogen atoms, nitrogen molecules, nitrogen oxide molecules, copper atoms, etc. Alternatively, it is preferably made of a conductive material having a function of suppressing the diffusion of oxygen (for example, at least one of oxygen atoms, oxygen molecules, etc.).

[0207] Furthermore, since the conductor 260a has a function of suppressing oxygen diffusion, it is possible to suppress a decrease in conductivity due to oxidation of the conductor 260b caused by oxygen contained in the insulator 250. As a conductive material having a function of suppressing oxygen diffusion, it is preferable to use, for example, titanium, titanium nitride, tantalum, tantalum nitride, ruthenium, ruthenium oxide, or the like.

[0208] In addition, since the conductor 260 also functions as wiring, it is preferable to use a conductor with high conductivity. For example, the conductor 260b can be a conductive material mainly composed of tungsten, copper, or aluminum. The conductor 260b may also have a laminated structure, for example, a laminated structure of titanium or titanium nitride and the above-mentioned conductive material.

[0209] Moreover, in the transistor 200, the conductor 260 is formed in a self-aligned manner so as to fill an opening formed in the insulator 280 or the like. By forming the conductor 260 in this manner, the conductor 260 can be reliably disposed in the region between the conductor 242a and the conductor 242b without alignment.

[0210] 12C, in the channel width direction of the transistor 200, the height of the bottom surface of the conductor 260 in the region where the conductor 260 and the oxide 230b do not overlap is preferably lower than the height of the bottom surface of the oxide 230b when the bottom surface of the insulator 222 is used as a reference. The conductor 260, which functions as a gate electrode, is configured to cover the side and upper surface of the channel formation region of the oxide 230b via the insulator 250 or the like, so that the electric field of the conductor 260 can be easily applied to the entire channel formation region of the oxide 230b. This makes it possible to increase the on-current of the transistor 200 and improve the frequency characteristics. When the bottom surface of the insulator 222 is used as a reference, the difference between the height of the bottom surface of the conductor 260 in the region where the oxide 230a and the oxide 230b do not overlap with the conductor 260 and the height of the bottom surface of the oxide 230b is 0 nm or more and 100 nm or less, preferably 3 nm or more and 50 nm or less, and more preferably 5 nm or more and 20 nm or less.

[0211] The insulator 280 is provided on the insulator 275, and openings are formed in the regions where the insulator 250 and the conductor 260 are provided. The upper surface of the insulator 280 may be flattened. In this case, it is preferable that the upper surface of the insulator 280 is roughly aligned with the upper surfaces of the insulator 250 and the conductor 260.

[0212] The insulator 282 is provided in contact with the upper surface of the insulator 280, the upper surface of the insulator 250, and the upper surface of the conductor 260. The insulator 282 preferably functions as a barrier insulating film that suppresses the diffusion of impurities such as water and hydrogen from above into the insulator 280, and preferably has a function of capturing impurities such as hydrogen. The insulator 282 preferably functions as a barrier insulating film that suppresses the transmission of oxygen. For example, an insulator such as aluminum oxide may be used as the insulator 282. By providing the insulator 282 in contact with the insulator 280 in the region sandwiched between the insulator 212 and the insulator 283 and having a function of capturing impurities such as hydrogen, the impurities such as hydrogen contained in the insulator 280 can be captured, and the amount of hydrogen in the region can be made constant. In particular, it is preferable to use aluminum oxide having an amorphous structure or aluminum oxide having an amorphous structure as the insulator 282, since hydrogen can be more effectively captured or fixed. As a result, a transistor 200 and a semiconductor device having favorable characteristics and high reliability can be manufactured.

[0213] The conductor 240a and the conductor 240b are preferably made of a conductive material containing tungsten, copper, or aluminum as a main component. The conductor 240a and the conductor 240b may have a layered structure. When the conductor 240 has a layered structure, the conductor in contact with the insulator 241 is preferably made of a conductive material having a function of suppressing the permeation of impurities such as water and hydrogen. For example, the conductive material that can be used for the conductor 260a described above may be used.

[0214] The insulators 241a and 241b may be, for example, insulators such as silicon nitride, aluminum oxide, and silicon nitride oxide. The insulators 241a and 241b are provided in contact with the insulators 283, 282, and 271, and therefore can prevent impurities such as water and hydrogen contained in the insulator 280 from being mixed into the oxide 230 through the conductors 240a and 240b.

[0215] Conductors 246 (conductors 246a and 246b) functioning as wiring may be disposed in contact with the upper surface of conductor 240a and the upper surface of conductor 240b. Conductor 246 is preferably made of a conductive material containing tungsten, copper, or aluminum as a main component. The conductor may have a laminated structure, for example, a laminate of titanium or titanium nitride and the above-mentioned conductive material. The conductor may be formed so as to be embedded in an opening provided in an insulator.

[0216] As a result, a semiconductor device having good electrical characteristics can be provided. A semiconductor device having good reliability can be provided. A semiconductor device that can be miniaturized or highly integrated can be provided. A semiconductor device with low power consumption can be provided.

[0217] [Metal oxides] Next, a metal oxide (also referred to as an oxide semiconductor) that can be used for a transistor will be described.

[0218] The metal oxide preferably contains at least indium or zinc. In particular, it is preferable that the metal oxide contains indium and zinc. In addition to these, it is preferable that the metal oxide contains aluminum, gallium, yttrium, tin, etc. In addition, it may contain one or more elements selected from boron, silicon, titanium, iron, nickel, germanium, zirconium, molybdenum, lanthanum, cerium, neodymium, hafnium, tantalum, tungsten, magnesium, cobalt, etc.

[0219] Moreover, the metal oxide can be formed by a sputtering method, a CVD method such as a metal organic chemical vapor deposition (MOCVD) method, or an ALD method.

[0220] <Classification of crystal structures> Examples of the crystal structure of an oxide semiconductor include amorphous (including completely amorphous), c-axis-aligned crystalline (CAAC), nanocrystalline (nc), cloud-aligned composite (CAC), single crystal, and polycrystal.

[0221] The crystal structure of the film or substrate can be evaluated using an X-ray diffraction (XRD) spectrum. For example, it can be evaluated using an XRD spectrum obtained by a GIXD (Grazing-Incidence XRD) measurement. The GIXD method is also called the thin film method or the Seemann-Bohlin method.

[0222] For example, in the case of a quartz glass substrate, the peak shape of the XRD spectrum is almost symmetric. On the other hand, in the case of an IGZO film having a crystalline structure, the peak shape of the XRD spectrum is asymmetric. The asymmetric peak shape of the XRD spectrum clearly indicates the presence of crystals in the film or substrate. In other words, if the peak shape of the XRD spectrum is not symmetric, the film or substrate cannot be said to be in an amorphous state.

[0223] The crystal structure of a film or substrate can be evaluated by a diffraction pattern (also called a nanobeam electron diffraction pattern) observed by nanobeam electron diffraction (NBED). For example, a halo is observed in the diffraction pattern of a quartz glass substrate, and it can be confirmed that the quartz glass is in an amorphous state. In addition, a spot-like pattern is observed in the diffraction pattern of an IGZO film formed at room temperature, rather than a halo. For this reason, it is presumed that an IGZO film formed at room temperature is in an intermediate state that is neither crystalline nor amorphous, and therefore it cannot be concluded that it is in an amorphous state.

[0224] <<Structure of oxide semiconductor>> Note that oxide semiconductors may be classified differently from the above when focusing on their structures. For example, oxide semiconductors are classified into single-crystal oxide semiconductors and other non-single-crystal oxide semiconductors. Examples of non-single-crystal oxide semiconductors include the above-mentioned CAAC-OS and nc-OS. Non-single-crystal oxide semiconductors include polycrystalline oxide semiconductors, amorphous-like oxide semiconductors (a-like OS), amorphous oxide semiconductors, and the like.

[0225] Here, the above-mentioned CAAC-OS, nc-OS, and a-like OS will be described in detail.

[0226] [[CAAC-OS]] CAAC-OS is an oxide semiconductor having a plurality of crystalline regions, each of which has a c-axis aligned in a specific direction. The specific direction is the thickness direction of the CAAC-OS film, the normal direction of the surface on which the CAAC-OS film is formed, or the normal direction of the surface of the CAAC-OS film. The crystalline region is a region having periodic atomic arrangement. If the atomic arrangement is considered as a lattice arrangement, the crystalline region is also a region with a uniform lattice arrangement. CAAC-OS has a region in which a plurality of crystalline regions are connected in the ab-plane direction, and the region may have distortion. The distortion refers to a portion in which the direction of the lattice arrangement changes between a region with a uniform lattice arrangement and another region with a uniform lattice arrangement in the region in which the plurality of crystalline regions are connected. In other words, CAAC-OS is an oxide semiconductor having a c-axis aligned and no clear orientation in the ab-plane direction.

[0227] Each of the multiple crystalline regions is composed of one or more microcrystals (crystals with a maximum diameter of less than 10 nm). When a crystalline region is composed of one microcrystal, the maximum diameter of the crystalline region is less than 10 nm. When a crystalline region is composed of multiple microcrystals, the size of the crystalline region may be approximately several tens of nm.

[0228] In addition, in an In-M-Zn oxide (wherein element M is one or more elements selected from aluminum, gallium, yttrium, tin, titanium, etc.), the CAAC-OS tends to have a layered crystal structure (also referred to as a layered structure) in which a layer containing indium (In) and oxygen (hereinafter, In layer) and a layer containing element M, zinc (Zn), and oxygen (hereinafter, (M, Zn) layer) are stacked. Note that indium and element M are mutually substitutable. Thus, the (M, Zn) layer may contain indium. Also, the In layer may contain element M. Note that the In layer may contain Zn. The layered structure is observed as a lattice image in, for example, a high-resolution transmission electron microscope (TEM) image.

[0229] When the CAAC-OS film is subjected to structural analysis using, for example, an XRD device, a peak indicating c-axis orientation is detected at or near 2θ=31° in out-of-plane XRD measurement using θ / 2θ scan. Note that the position of the peak indicating c-axis orientation (2θ value) may vary depending on the type and composition of the metal elements constituting the CAAC-OS.

[0230] For example, a plurality of bright points (spots) are observed in the electron diffraction pattern of the CAAC-OS film, and the two spots are observed at positions symmetrical to each other with respect to the spot of the incident electron beam that has passed through the sample (also called the direct spot).

[0231] When the crystal region is observed from the specific direction, the lattice arrangement in the crystal region is based on a hexagonal lattice, but the unit cell is not necessarily a regular hexagon and may be a non-regular hexagon. The above distortion may have a lattice arrangement such as a pentagon or heptagon. In addition, in the CAAC-OS, no clear grain boundary can be confirmed even in the vicinity of the distortion. That is, it can be seen that the formation of grain boundaries is suppressed by the distortion of the lattice arrangement. This is thought to be because the CAAC-OS can tolerate distortion due to the fact that the arrangement of oxygen atoms is not dense in the ab-plane direction or the bond distance between atoms changes due to the substitution of metal atoms.

[0232] A crystal structure in which clear grain boundaries are observed is called polycrystal. The grain boundaries are likely to become recombination centers and capture carriers, causing a decrease in the on-current of a transistor and a decrease in field effect mobility. Therefore, CAAC-OS, in which clear grain boundaries are not observed, is one of the crystalline oxides having a crystal structure suitable for a semiconductor layer of a transistor. In order to form a CAAC-OS, a structure containing Zn is preferable. For example, In-Zn oxide and In-Ga-Zn oxide are suitable because they can suppress the occurrence of grain boundaries more than In oxide.

[0233] The CAAC-OS is an oxide semiconductor with high crystallinity and no clear crystal grain boundaries. Therefore, it can be said that the CAAC-OS is less susceptible to a decrease in electron mobility due to crystal grain boundaries. In addition, since the crystallinity of an oxide semiconductor can be decreased by the inclusion of impurities and the generation of defects, the CAAC-OS can be said to be an oxide semiconductor with few impurities and defects (such as oxygen vacancies). Therefore, the physical properties of an oxide semiconductor having the CAAC-OS are stable. Therefore, an oxide semiconductor having the CAAC-OS is resistant to heat and has high reliability. In addition, the CAAC-OS is stable against high temperatures (so-called thermal budget) in the manufacturing process. Therefore, the use of the CAAC-OS in an OS transistor can increase the degree of freedom in the manufacturing process.

[0234] [[nc-OS]] The nc-OS has periodic atomic arrangement in a minute region (for example, a region of 1 nm to 10 nm, particularly a region of 1 nm to 3 nm). In other words, the nc-OS has minute crystals. Note that the size of the minute crystals is, for example, 1 nm to 10 nm, particularly 1 nm to 3 nm, and therefore the minute crystals are also called nanocrystals. In addition, the nc-OS does not show regularity in the crystal orientation between different nanocrystals. Therefore, no orientation is seen in the entire film. Therefore, depending on the analysis method, the nc-OS may be indistinguishable from an a-like OS or an amorphous oxide semiconductor. For example, when a structure analysis is performed on an nc-OS film using an XRD device, no peak indicating crystallinity is detected in out-of-plane XRD measurement using θ / 2θ scan. In addition, when an nc-OS film is subjected to electron diffraction (also called selected area electron diffraction) using an electron beam with a probe diameter larger than that of nanocrystals (for example, 50 nm or more), a diffraction pattern like a halo pattern is observed. On the other hand, when electron diffraction (also called nanobeam electron diffraction) is performed on an nc-OS film using an electron beam with a probe diameter (e.g., 1 nm to 30 nm) that is close to the size of a nanocrystal or smaller than the nanocrystal, an electron diffraction pattern in which multiple spots are observed within a ring-shaped region centered on the direct spot may be obtained.

[0235] [[a-like OS]] The a-like OS is an oxide semiconductor having a structure between the nc-OS and the amorphous oxide semiconductor. The a-like OS has a void or low-density region. That is, the a-like OS has lower crystallinity than the nc-OS and CAAC-OS. Moreover, the a-like OS has a higher hydrogen concentration in the film than the nc-OS and CAAC-OS.

[0236] <<Oxide semiconductor structure>> Next, the above-mentioned CAC-OS will be described in detail, with reference to its material composition.

[0237] [[CAC-OS]] CAC-OS is, for example, a material configuration in which elements constituting a metal oxide are unevenly distributed in a size range of 0.5 nm to 10 nm, preferably 1 nm to 3 nm, or in the vicinity thereof. In the following, a state in which one or more metal elements are unevenly distributed in a metal oxide and the regions having the metal elements are mixed in a size range of 0.5 nm to 10 nm, preferably 1 nm to 3 nm, or in the vicinity thereof, is also referred to as a mosaic or patch state.

[0238] Furthermore, CAC-OS is a composite metal oxide in which the material is separated into a first region and a second region, forming a mosaic structure, and the first region is distributed throughout the film (hereinafter, also referred to as a cloud structure). In other words, CAC-OS is a composite metal oxide in which the first region and the second region are mixed together.

[0239] Here, the atomic ratios of In, Ga, and Zn to the metal elements constituting the CAC-OS in the In-Ga-Zn oxide are represented as [In], [Ga], and [Zn], respectively. For example, in the CAC-OS in the In-Ga-Zn oxide, the first region is a region where [In] is larger than [In] in the composition of the CAC-OS film. Also, the second region is a region where [Ga] is larger than [Ga] in the composition of the CAC-OS film. Alternatively, for example, the first region is a region where [In] is larger than [In] in the second region and [Ga] is smaller than [Ga] in the second region. Also, the second region is a region where [Ga] is larger than [Ga] in the first region and [In] is smaller than [In] in the first region.

[0240] Specifically, the first region is a region mainly composed of indium oxide, indium zinc oxide, etc., and the second region is a region mainly composed of gallium oxide, gallium zinc oxide, etc. In other words, the first region can be rephrased as a region mainly composed of In, and the second region can be rephrased as a region mainly composed of Ga.

[0241] In addition, there are cases where a clear boundary between the first region and the second region cannot be observed.

[0242] In addition, the CAC-OS in In-Ga-Zn oxide refers to a structure in which some regions mainly composed of Ga and some regions mainly composed of In are arranged randomly in a mosaic pattern in a material structure containing In, Ga, Zn, and O. Therefore, it is presumed that the CAC-OS has a structure in which metal elements are distributed non-uniformly.

[0243] CAC-OS can be formed, for example, by a sputtering method under conditions where the substrate is not heated. When CAC-OS is formed by a sputtering method, any one or more selected from an inert gas (typically argon), oxygen gas, and nitrogen gas may be used as the film-forming gas. The lower the flow rate ratio of oxygen gas to the total flow rate of film-forming gas during film formation, the more preferable it is. For example, the flow rate ratio of oxygen gas to the total flow rate of film-forming gas during film formation is preferably 0% or more and less than 30%, and more preferably 0% or more and 10% or less.

[0244] Furthermore, for example, in the case of a CAC-OS of an In-Ga-Zn oxide, EDX mapping obtained using EDX (Energy Dispersive X-ray spectroscopy) can confirm that the CAC-OS has a structure in which a region mainly composed of In (first region) and a region mainly composed of Ga (second region) are unevenly distributed and mixed.

[0245] Here, the first region is a region with higher conductivity than the second region. In other words, the first region exhibits conductivity as a metal oxide when carriers flow through the first region. Therefore, the first region is distributed in a cloud-like shape in the metal oxide, thereby realizing a high field-effect mobility (μ).

[0246] On the other hand, the second region has higher insulating properties than the first region. That is, the second region is distributed in the metal oxide, so that leakage current can be suppressed.

[0247] Therefore, when CAC-OS is used in a transistor, the conductivity due to the first region and the insulation due to the second region act complementarily, giving the CAC-OS a switching function (On / Off function). In other words, CAC-OS has a conductive function in part of the material and an insulating function in part of the material, and the material as a whole functions as a semiconductor. By separating the conductive function from the insulating function, it is possible to maximize both functions. Therefore, by using CAC-OS in a transistor, it is possible to achieve a high on-current (I on ), high field effect mobility (μ), and good switching behavior can be achieved.

[0248] In addition, a transistor using the CAC-OS has high reliability, making the CAC-OS ideal for various semiconductor devices such as display devices.

[0249] Oxide semiconductors have a variety of structures and each structure has different characteristics. The oxide semiconductor of one embodiment of the present invention may include two or more of an amorphous oxide semiconductor, a polycrystalline oxide semiconductor, an a-like OS, a CAC-OS, an nc-OS, and a CAAC-OS.

[0250] This embodiment mode can be combined with other embodiment modes as appropriate.

[0251] (Embodiment 4) In this embodiment, a display device of one embodiment of the present invention will be described with reference to FIGS.

[0252] The display device of this embodiment has a plurality of pixels arranged in a matrix of m rows and n columns (m and n are each an integer equal to or greater than 1). Fig. 13 shows an example of a circuit diagram of a pixel PIX(i,j) (i is an integer equal to or greater than 1 and equal to or less than m, and j is an integer equal to or greater than 1 and equal to or less than n).

[0253] 13 includes the light emitting diode 110, the switch SW21, the transistor M, and the capacitance C1 described in the first embodiment. The transistor M corresponds to the transistor 120 or the transistor 130d described in the first embodiment. The pixel PIX(i,j) may further include a switch SW22. The light emitting diode 110 is preferably a micro light emitting diode or a mini light emitting diode.

[0254] In this embodiment, an example in which a transistor is used as the switch SW21 is shown. The gate of the switch SW21 is electrically connected to the scanning line GL1(i). One of the source and drain of the switch SW21 is electrically connected to the signal line SL(j), and the other is electrically connected to the gate of the transistor M.

[0255] In this embodiment, an example in which a transistor is used as the switch SW22 will be described. A gate of the switch SW22 is electrically connected to the scan line GL2(i). One of the source and drain of the switch SW22 is electrically connected to the wiring COM, and the other is electrically connected to the gate of the transistor M.

[0256] The gate of the transistor M is electrically connected to one electrode of the capacitance C1, the other of the source and drain of the switch SW21, and the other of the source and drain of the switch SW22. One of the source and drain of the transistor M is electrically connected to the wiring CATHODE, and the other is electrically connected to the cathode of the light-emitting diode 110.

[0257] The other electrode of the capacitor C1 is electrically connected to the wiring CATHODE.

[0258] The anode of the light emitting diode 110 is electrically connected to the wiring ANODE.

[0259] The scanning line GL1(i) has a function of supplying a selection signal. The scanning line GL2(i) has a function of supplying a control signal. The signal line SL(j) has a function of supplying an image signal. A constant potential is supplied to the wiring COM, the wiring CATHODE, and the wiring ANODE. The anode side of the light-emitting diode 110 can be set to a high potential, and the cathode side can be set to a lower potential than the anode side.

[0260] The switch SW21 is controlled by a selection signal and functions as a selection transistor for controlling the selection state of the pixel PIX(i,j).

[0261] The transistor M functions as a drive transistor that controls the current flowing through the light-emitting diode 110 in response to a potential supplied to the gate. When the switch SW21 is in a conductive state, an image signal supplied to the signal line SL(j) is supplied to the gate of the transistor M, and the light emission brightness of the light-emitting diode 110 can be controlled in response to the potential.

[0262] The switch SW22 has a function of controlling, based on a control signal, the gate potential of the transistor M. Specifically, the switch SW22 can supply, to the gate of the transistor M, a potential that puts the transistor M into a non-conductive state.

[0263] The switch SW22 can be used to control, for example, a pulse width. A current can be supplied from the transistor M to the light emitting diode 110 during a period based on a control signal. Alternatively, the light emitting diode 110 can express a gray scale based on an image signal and a control signal.

[0264] Here, it is preferable that the transistors included in the pixel PIX(i,j) are transistors using a metal oxide (oxide semiconductor) for a semiconductor layer in which a channel is formed.

[0265] A transistor using a metal oxide having a wider band gap than silicon and a lower carrier concentration can realize an extremely small off-current. Therefore, the small off-current allows the charge stored in the capacitor connected in series with the transistor to be held for a long period of time. Therefore, it is preferable to use transistors using an oxide semiconductor for the switches SW21 and SW22 connected in series with the capacitor C1 in particular. In addition, by using transistors using an oxide semiconductor for other transistors as well, the manufacturing cost can be reduced.

[0266] In addition, a transistor in which silicon is used as a semiconductor in which a channel is formed can also be used as the transistor in the pixel PIX(i,j). In particular, by using silicon with high crystallinity such as single crystal silicon or polycrystalline silicon, it is preferable to realize high field effect mobility and enable faster operation.

[0267] Alternatively, a structure may be used in which at least one of the transistors included in the pixel PIX(i,j) is a transistor using an oxide semiconductor and the rest are transistors using silicon.

[0268] Although the transistors are shown as n-channel transistors in FIG. 13, p-channel transistors can also be used.

[0269] This embodiment mode can be combined with other embodiment modes as appropriate.

[0270] (Embodiment 5) In this embodiment, electronic devices of one embodiment of the present invention will be described with reference to FIGS.

[0271] The electronic devices of this embodiment include the display device of one embodiment of the present invention in a display portion. The display device of one embodiment of the present invention has high display quality and low power consumption. In addition, the display device of one embodiment of the present invention can easily have high definition and high resolution. Therefore, the display device of one embodiment of the present invention can be used in the display portion of various electronic devices.

[0272] Examples of electronic devices include electronic devices with relatively large screens, such as television sets, desktop or notebook personal computers, computer monitors, digital signage, large game machines such as pachinko machines, as well as digital cameras, digital video cameras, digital photo frames, mobile phones, portable game machines, personal digital assistants, and audio playback devices.

[0273] In particular, the display device of one embodiment of the present invention can be suitably used in electronic devices having a relatively small display area because it can increase the resolution. Examples of such electronic devices include wristwatch- or bracelet-type information terminals (wearable devices), VR devices such as head-mounted displays, glasses-type AR devices, MR devices, XR devices, and wearable devices that can be worn on the head.

[0274] The display device according to one embodiment of the present invention preferably has an extremely high resolution such as HD (1280×720 pixels), FHD (1920×1080 pixels), WQHD (2560×1440 pixels), WQXGA (2560×1600 pixels), 4K (3840×2160 pixels), or 8K (7680×4320 pixels). In particular, a resolution of 4K, 8K, or higher is preferable. The pixel density (definition) of the display device according to one embodiment of the present invention is preferably 300 ppi or more, more preferably 500 ppi or more, more preferably 1000 ppi or more, more preferably 3000 ppi or more, more preferably 5000 ppi or more, and even more preferably 7000 ppi or more. By using a display device having such a high resolution, it is possible to further enhance the sense of realism or depth in electronic devices for personal use such as portable or home use.

[0275] The electronic device of this embodiment may have a sensor (including a function to measure force, displacement, position, velocity, acceleration, angular velocity, rotation speed, distance, light, liquid, magnetism, temperature, chemical substances, sound, time, hardness, electric field, current, voltage, power, radiation, flow rate, humidity, gradient, vibration, odor, or infrared rays).

[0276] The electronic device of the present embodiment can have various functions, such as a function of displaying various information (still images, videos, text images, etc.) on a display unit, a touch panel function, a function of displaying a calendar, date, time, etc., a function of executing various software (programs), a wireless communication function, a function of reading out a program or data recorded on a recording medium, etc.

[0277] 14A shows a perspective view of glasses-type electronic device 700. Electronic device 700 has a pair of display panels 701, a pair of housings 702, a pair of optical members 703, a pair of mounting parts 704, a frame 707, nose pads 708, and the like.

[0278] The electronic device 700 can project an image displayed on the display panel 701 onto a display area 706 of the optical member 703. Since the optical member 703 is translucent, the user can see the image displayed in the display area 706 superimposed on a transmitted image visually recognized through the optical member 703. Therefore, the electronic device 700 is an electronic device capable of AR display.

[0279] One or both of the housings 702 may be provided with a camera capable of capturing an image of the front. The housing 702 may have a wireless communication device, and a video signal or the like can be supplied to the housing 702 through the wireless communication device. Note that instead of or in addition to the wireless communication device, a connector to which a cable through which a video signal or a power supply potential can be connected may be provided. The housing 702 may be provided with an acceleration sensor such as a gyro sensor to detect the orientation of the user's head and display an image corresponding to the orientation in the display region 706.

[0280] A processor may be provided in one or both of the housings 702. The processor has a function of controlling various components of the electronic device 700, such as the camera, the wireless communication device, and the pair of display panels 701, and a function of generating an image. The processor may have a function of generating a composite image for AR display.

[0281] In addition, the wireless communication device can communicate data with external devices. For example, data transmitted from the outside can be output to the processor, and the processor can generate image data for AR display based on the data. Examples of data transmitted from the outside include image data and data including bioinformation transmitted from a biosensor device.

[0282] 14B, a method of projecting an image onto display area 706 of electronic device 700 will be described. A display panel 701 is provided inside housing 702. A reflector 712 is provided on optical member 703, and a reflecting surface 713 functioning as a half mirror is provided on a portion of optical member 703 corresponding to display area 706.

[0283] Light 715 emitted from the display panel 701 is reflected by the reflector 712 towards the optical member 703. Inside the optical member 703, the light 715 is repeatedly totally reflected by the end face of the optical member 703, and reaches the reflecting surface 713, whereby an image is projected onto the reflecting surface 713. This allows the user to visually recognize both the light 715 reflected by the reflecting surface 713 and the transmitted light 716 that has transmitted through the optical member 703 (including the reflecting surface 713).

[0284] 14B shows an example in which the reflector 712 and the reflecting surface 713 each have a curved surface. This allows for greater freedom in optical design compared to when these surfaces are flat, and allows for a thinner optical member 703. Note that the reflector 712 and the reflecting surface 713 may also be flat.

[0285] A member having a mirror surface can be used as the reflector 712, and it is preferable that the reflector has a high reflectance. Also, a half mirror utilizing the reflection of a metal film may be used as the reflector surface 713, but the transmittance of the transmitted light 716 can be increased by using a prism utilizing total reflection.

[0286] Here, the housing 702 may have a lens between the display panel 701 and the reflector 712. In this case, it is preferable that the housing 702 has a mechanism for adjusting the distance between the lens and the display panel 701 and the angle between them. This makes it possible to adjust the focus and enlarge or reduce the image. For example, the lens or the display panel 701 or both may be configured to be movable in the direction of the optical axis.

[0287] Furthermore, it is preferable that the housing 702 has a mechanism capable of adjusting the angle of the reflector 712. It is possible to change the position of the display area 706 where an image is displayed by changing the angle of the reflector 712. This makes it possible to position the display area 706 at an optimal position according to the position of the user's eyes.

[0288] The housing 702 is preferably provided with a battery 717 and a wireless power supply module 718. By providing the battery 717, the electronic device 700 can be used without connecting a separate battery, thereby improving convenience. Furthermore, by providing the wireless power supply module 718, charging can be performed wirelessly, thereby improving convenience and design. Furthermore, compared to charging by wire using a connector or the like, the risk of failure such as poor contact can be reduced, and the reliability of the electronic device 700 can be improved.

[0289] The housing 702 is provided with a touch sensor module 719. The touch sensor module 719 has a function of detecting that the outer surface of the housing 702 is touched. FIG. 14B shows a state where the surface of the housing 702 is touched with a finger 720. The touch sensor module 719 can detect a tap operation or a slide operation of a user and execute various processes. For example, a tap operation can execute processes such as pausing and resuming a video, and a slide operation can execute processes such as fast forwarding and rewinding. In addition, by providing the touch sensor module 719 on each of the two housings 702, the range of operations can be expanded.

[0290] Various touch sensors can be applied as the touch sensor module 719. For example, various types can be adopted, such as a capacitance type, a resistive film type, an infrared type, an electromagnetic induction type, a surface acoustic wave type, an optical type, etc. In particular, it is preferable to apply a capacitance type or an optical type sensor to the touch sensor module 719.

[0291] When an optical touch sensor is used, a photoelectric conversion device (also called a photoelectric conversion element) can be used as a light receiving device (also called a light receiving element). Photoelectric conversion devices include those that use inorganic semiconductors or those that use organic semiconductors in the active layer.

[0292] The display device of one embodiment of the present invention can be applied to the display panel 701. Thus, the electronic device 700 can provide an extremely high-definition display.

[0293] 15A shows a perspective view of a glasses-type electronic device 900. The electronic device 900 includes a pair of display panels 901, a pair of housings 902, a pair of optical members 903, a pair of mounting units 904, and the like.

[0294] The electronic device 900 can project an image displayed on the display panel 901 onto a display area 906 of the optical member 903. Since the optical member 903 is translucent, the user can see the image displayed in the display area 906 superimposed on a transmitted image visually recognized through the optical member 903. Therefore, the electronic device 900 is an electronic device capable of AR display.

[0295] The display panel 901 included in the electronic device 900 preferably has an image capturing function in addition to a function of displaying an image. In this case, the electronic device 900 can receive light incident on the display panel 901 via the optical member 903, convert it into an electrical signal, and output it. This allows an image of the user's eye or the eye and its surroundings to be captured and output as image information to the outside or to a calculation unit included in the electronic device 900.

[0296] One of the housings 902 is provided with a camera 905 capable of capturing an image of the front. Although not shown, one of the housings 902 is provided with a connector to which a wireless receiver or a cable can be connected, and a video signal or the like can be supplied to the housing 902. By providing an acceleration sensor such as a gyro sensor in the housing 902, the direction of the user's head can be detected and an image corresponding to the direction can be displayed in the display area 906. The housing 902 is preferably provided with a battery, which is preferably capable of being charged wirelessly or by wire.

[0297] 15B, a method of projecting an image onto display area 906 of electronic device 900 will be described. A display panel 901, a lens 911, and a reflector 912 are provided inside housing 902. In addition, a portion of optical member 903 that corresponds to display area 906 has a reflecting surface 913 that functions as a half mirror.

[0298] Light 915 emitted from the display panel 901 passes through the lens 911 and is reflected by the reflector 912 towards the optical member 903. Inside the optical member 903, the light 915 is repeatedly totally reflected at the end face of the optical member 903 and reaches the reflecting surface 913, whereby an image is projected onto the reflecting surface 913. This allows the user to visually recognize both the light 915 reflected by the reflecting surface 913 and the transmitted light 916 that has passed through the optical member 903 (including the reflecting surface 913).

[0299] 15B shows an example in which the reflector 912 and the reflecting surface 913 each have a curved surface. This allows for greater freedom in optical design compared to when these surfaces are flat, and allows for a thinner optical member 903. The reflector 912 and the reflecting surface 913 may also be flat.

[0300] A member having a mirror surface can be used as the reflector 912, and it is preferable that the reflector has a high reflectance. Also, a half mirror utilizing the reflection of a metal film may be used as the reflector surface 913, but the transmittance of the transmitted light 916 can be increased by using a prism utilizing total reflection or the like.

[0301] Here, the electronic device 900 preferably has a mechanism for adjusting one or both of the distance and angle between the lens 911 and the display panel 901. This makes it possible to adjust the focus and enlarge or reduce the image. For example, the lens 911 and / or the display panel 901 may be configured to be movable in the optical axis direction.

[0302] It is preferable that the electronic device 900 has a mechanism capable of adjusting the angle of the reflector 912. It is possible to change the position of the display area 906 where an image is displayed by changing the angle of the reflector 912. This makes it possible to position the display area 906 at an optimal position according to the position of the user's eyes.

[0303] The display device of one embodiment of the present invention can be applied to the display panel 901. Thus, the electronic device 900 can provide an extremely high-definition display.

[0304] 16A and 16B show perspective views of a goggle-type electronic device 950. Fig. 16A is a perspective view showing the front, top, and left side of the electronic device 950, and Fig. 16B is a perspective view showing the back, bottom, and right side of the electronic device 950.

[0305] The electronic device 950 includes a pair of display panels 951, a housing 952, a pair of mounting portions 954, a cushioning member 955, and a pair of lenses 956. The pair of display panels 951 are provided inside the housing 952 at positions viewable through the lenses 956.

[0306] The electronic device 950 is an electronic device for VR. A user wearing the electronic device 950 can view an image displayed on a display panel 951 through a lens 956. In addition, by displaying different images on a pair of display panels 951, a three-dimensional display using parallax can be performed.

[0307] An input terminal 957 and an output terminal 958 are provided on the rear side of the housing 952. A cable for supplying a video signal from a video output device or the like, or power for charging a battery provided in the housing 952, can be connected to the input terminal 957. The output terminal 958 can function as, for example, an audio output terminal, and can be connected to earphones, headphones, or the like. Note that, when a configuration is made in which audio data can be output by wireless communication, or when audio is output from an external video output device, the audio output terminal does not need to be provided.

[0308] The electronic device 950 preferably has a mechanism for adjusting the left-right positions of the lens 956 and the display panel 951 so that the lens 956 and the display panel 951 are positioned optimally according to the position of the user's eyes. Also, the electronic device 950 preferably has a mechanism for adjusting the focus by changing the distance between the lens 956 and the display panel 951.

[0309] The display device of one embodiment of the present invention can be applied to the display panel 951. Therefore, the electronic device 950 can display images with extremely high definition. This allows the user to feel a strong sense of immersion.

[0310] The cushioning member 955 is a portion that comes into contact with the user's face (forehead, cheek, etc.). The cushioning member 955 comes into close contact with the user's face, thereby preventing light leakage and enhancing the sense of immersion. It is preferable that the cushioning member 955 is made of a soft material so that it comes into close contact with the user's face when the user wears the electronic device 950. For example, materials such as rubber, silicone rubber, urethane, and sponge can be used. In addition, if a material such as sponge with a surface covered with cloth or leather (natural leather or synthetic leather) is used as the cushioning member 955, it is difficult for a gap to occur between the user's face and the cushioning member 955, and light leakage can be suitably prevented. It is preferable that the members that come into contact with the user's skin, such as the cushioning member 955 and the mounting portion 954, are configured to be removable, since this makes cleaning and replacement easy.

[0311] Electronic device 6500 shown in FIG. 17A is a portable information terminal that can be used as a smartphone.

[0312] The electronic device 6500 includes a housing 6501, a display portion 6502, a power button 6503, a button 6504, a speaker 6505, a microphone 6506, a camera 6507, and a light source 6508. The display portion 6502 has a touch panel function.

[0313] The display device of one embodiment of the present invention can be applied to the display portion 6502.

[0314] FIG. 17B is a schematic cross-sectional view including the end of the housing 6501 on the microphone 6506 side.

[0315] A light-transmitting protective member 6510 is provided on the display surface side of the housing 6501, and a display panel 6511, optical members 6512, a touch sensor panel 6513, a printed circuit board 6517, a battery 6518, etc. are arranged in the space surrounded by the housing 6501 and the protective member 6510.

[0316] A display panel 6511, an optical member 6512, and a touch sensor panel 6513 are fixed to the protective member 6510 by an adhesive layer (not shown).

[0317] In an area outside the display unit 6502, a part of the display panel 6511 is folded back, and the folded back part is connected to an FPC 6515. An IC 6516 is mounted on the FPC 6515. The FPC 6515 is connected to a terminal provided on a printed circuit board 6517.

[0318] A flexible display can be applied to the display panel 6511. Therefore, an extremely lightweight electronic device can be realized. In addition, since the display panel 6511 is extremely thin, a large-capacity battery 6518 can be mounted while suppressing the thickness of the electronic device. In addition, by folding back a part of the display panel 6511 and arranging a connection part with the FPC 6515 on the back side of the pixel portion, an electronic device with a narrow frame can be realized.

[0319] 18A shows an example of a television device. In a television device 7100, a display unit 7000 is incorporated in a housing 7101. Here, the housing 7101 is supported by a stand 7103.

[0320] The display device of one embodiment of the present invention can be applied to the display portion 7000.

[0321] 18A can be operated using an operation switch provided on the housing 7101 or a separate remote control 7111. Alternatively, a touch sensor may be provided on the display unit 7000, and the television unit 7100 may be operated by touching the display unit 7000 with a finger or the like. The remote control 7111 may have a display unit that displays information output from the remote control 7111. Using operation keys or a touch panel provided on the remote control 7111, it is possible to operate the channel and volume, and to operate the video displayed on the display unit 7000.

[0322] The television device 7100 includes a receiver and a modem. The receiver can receive general television broadcasts. By connecting to a wired or wireless communication network via the modem, it is also possible to perform one-way (from sender to receiver) or two-way (between sender and receiver, or between receivers, etc.) information communication.

[0323] 18B shows an example of a laptop personal computer 7200. The laptop personal computer 7200 includes a housing 7211, a keyboard 7212, a pointing device 7213, an external connection port 7214, and the like. A display unit 7000 is incorporated in the housing 7211.

[0324] The display device of one embodiment of the present invention can be applied to the display portion 7000.

[0325] 18C and 18D show an example of digital signage.

[0326] 18C includes a housing 7301, a display unit 7000, and a speaker 7303. The digital signage 7300 may further include an LED lamp, an operation key (including a power switch or an operation switch), a connection terminal, various sensors, a microphone, and the like.

[0327] 18D shows a digital signage 7400 attached to a cylindrical pole 7401. The digital signage 7400 has a display unit 7000 provided along the curved surface of the pole 7401.

[0328] 18C and 18D, the display device of one embodiment of the present invention can be applied to the display portion 7000.

[0329] The larger the display unit 7000, the more information can be provided at one time. Also, the larger the display unit 7000, the more easily it catches people's attention, which can increase the advertising effect of, for example, advertisements.

[0330] Applying a touch panel to the display unit 7000 is preferable because it not only displays images or videos on the display unit 7000 but also allows the user to intuitively operate it. Furthermore, when used for providing information such as route information or traffic information, usability can be improved by intuitive operation.

[0331] 18C and 18D, it is preferable that the digital signage 7300 or the digital signage 7400 can be linked to an information terminal 7311 or an information terminal 7411 such as a smartphone carried by a user via wireless communication. For example, advertising information displayed on the display unit 7000 can be displayed on the screen of the information terminal 7311 or the information terminal 7411. Furthermore, the display on the display unit 7000 can be switched by operating the information terminal 7311 or the information terminal 7411.

[0332] In addition, a game can be executed on the digital signage 7300 or the digital signage 7400 using the screen of the information terminal 7311 or the information terminal 7411 as an operation means (controller). This allows an unspecified number of users to participate in and enjoy the game at the same time.

[0333] The electronic device shown in Figures 19A to 19F has a housing 9000, a display unit 9001, a speaker 9003, operation keys 9005 (including a power switch or an operation switch), a connection terminal 9006, a sensor 9007 (including a function to measure force, displacement, position, speed, acceleration, angular velocity, rotation speed, distance, light, liquid, magnetism, temperature, chemical substance, sound, time, hardness, electric field, current, voltage, power, radiation, flow rate, humidity, gradient, vibration, odor or infrared rays), a microphone 9008, etc.

[0334] The electronic device shown in Fig. 19A to Fig. 19F has various functions. For example, it can have a function of displaying various information (still images, videos, text images, etc.) on the display unit, a touch panel function, a function of displaying a calendar, date or time, a function of controlling processing by various software (programs), a wireless communication function, a function of reading and processing a program or data recorded on a recording medium, etc. The functions of the electronic device are not limited to these, and it can have various functions. The electronic device may have multiple display units. In addition, the electronic device may have a function of providing a camera or the like to capture still images or videos and store them on a recording medium (external or built-in to the camera), a function of displaying the captured images on the display unit, etc.

[0335] The electronic device shown in FIGS. 19A to 19F will be described in detail below.

[0336] FIG. 19A is a perspective view showing a mobile information terminal 9101. The mobile information terminal 9101 can be used as, for example, a smartphone. The mobile information terminal 9101 may be provided with a speaker 9003, a connection terminal 9006, a sensor 9007, and the like. The mobile information terminal 9101 can display text or image information on a plurality of surfaces. FIG. 19A shows an example in which three icons 9050 are displayed. Information 9051 shown in a dashed rectangle can also be displayed on another surface of the display unit 9001. Examples of the information 9051 include notifications of incoming e-mail, SNS, and phone calls, titles of e-mail or SNS, sender names, date and time, time, remaining battery power, and radio wave intensity. Alternatively, the icon 9050 and the like may be displayed at the position where the information 9051 is displayed.

[0337] 19B is a perspective view showing a mobile information terminal 9102. The mobile information terminal 9102 has a function of displaying information on three or more sides of the display unit 9001. Here, an example is shown in which information 9052, information 9053, and information 9054 are displayed on different sides. For example, a user can check information 9053 displayed in a position that can be observed from above the mobile information terminal 9102 while the mobile information terminal 9102 is stored in a breast pocket of clothes. The user can check the display without taking the mobile information terminal 9102 out of the pocket and decide, for example, whether or not to answer a call.

[0338] FIG. 19C is a perspective view showing a wristwatch-type mobile information terminal 9200. The mobile information terminal 9200 can be used as, for example, a smart watch. The display surface of the display unit 9001 is curved, and display can be performed along the curved display surface. The mobile information terminal 9200 can also perform hands-free conversation by communicating with, for example, a headset capable of wireless communication. The mobile information terminal 9200 can also perform data transmission and charging with another information terminal through a connection terminal 9006. The charging operation may be performed by wireless power supply.

[0339] 19D to 19F are perspective views showing a foldable mobile information terminal 9201. FIG. 19D is a perspective view of the mobile information terminal 9201 in an unfolded state, FIG. 19F is a perspective view of the mobile information terminal 9201 in a folded state, and FIG. 19E is a perspective view of a state in the middle of changing from one of FIG. 19D and FIG. 19F to the other. The mobile information terminal 9201 has excellent portability in a folded state, and has excellent viewability of the display due to a seamless wide display area in an unfolded state. A display unit 9001 of the mobile information terminal 9201 is supported by three housings 9000 connected by a hinge 9055. For example, the display unit 9001 can be bent with a curvature radius of 0.1 mm or more and 150 mm or less.

[0340] This embodiment mode can be combined with other embodiment modes as appropriate. [Explanation of symbols]

[0341] 11: layer, 12: layer, 13: layer, 14: layer, 15: layer, 16: layer, 17: layer, 20B: pixel, 20G: pixel, 20R: pixel, 100A: display device, 100B: display device, 100C: display device, 100D: display device, 100E: display device, 100F: display device, 102: insulating layer, 103: insulating layer, 104: insulating layer, 110: light-emitting diode, 110B: light-emitting diode, 110G: light-emitting diode, 110R: light-emitting diode, 113: semiconductor layer, 113a: semiconductor layer, 114: light-emitting layer, 114a: light-emitting layer, 114b: light-emitting layer, 115: semiconductor layer, 115 a: semiconductor layer, 115b: semiconductor layer, 120: transistor, 120c: transistor, 120e: transistor, 130: transistor, 130d: transistor, 130e: transistor, 130f: transistor, 130g: transistor, 132: element isolation layer, 133: low resistance region, 134: insulating layer, 135: conductive layer, 136: insulating layer, 137: conductive layer, 138: conductive layer, 139: insulating layer, 141: insulating layer, 142: insulating layer, 143: insulating layer, 151: substrate, 152: substrate, 153: silicon substrate, 154: substrate, 161: conductive layer, 162: insulating layer, 163: insulating layer, 164: insulating layer, 165: metal oxide layer, 166: conductive layer, 167: insulating layer, 168: conductive layer, 171: substrate, 173: insulating layer, 174: conductive layer, 175: conductive layer, 176: conductor, 177: conductive layer, 178: conductive layer, 179: adhesive layer, 181: insulating layer, 182: insulating layer, 183: insulating layer, 184a: conductive layer, 184b: conductive layer, 185: insulating layer, 186: insulating layer, 187: insulating layer, 188: insulating layer, 189: conductive layer, 190a: conductive layer, 190b: conductive layer, 190c: conductive layer, 191a: conductive layer, 191b: conductive layer, 191c: conductive layer reflective layer, 192: conductive layer, 193: reflective layer, 194: conductive layer, 195: conductive layer, 196: conductive layer, 197: conductor, 200: transistor, 205: conductor, 205a: conductor, 205b: conductor, 212: insulator, 214: insulator, 216: insulator, 222: insulator, 224: insulator, 230: oxide, 230a: oxide, 230b: oxide, 240: conductor, 240a: conductor, 240b: conductor, 241: insulator, 241a: insulator, 241b: insulator, 242: conductor, 242a: conductor, 242b: conductor, 243: oxide, 243a: oxide,243b: oxide, 246: conductor, 246a: conductor, 246b: conductor, 250: insulator, 250a: insulator, 250b: insulator, 260: conductor, 260a: conductor, 260b: conductor, 271: insulator, 271a: insulator, 271b: insulator, 275: insulator, 280: insulator, 282: insulator, 283: insulator, 285: insulator, 300: substrate, 310: peeling layer, 320: adhesive layer, 330: substrate, 350: light shielding layer, 351: light shielding layer, 360B: color conversion layer, 360G: color conversion layer, 360R: color conversion layer, 361B: colored layer, 361G: colored layer, 3 61R: colored layer, 401: pixel portion, 402: region, 500: adhesive layer, 501: FPC, 502: FPC, 700: electronic device, 701: display panel, 702: housing, 703: optical member, 704: mounting portion, 706: display region, 707: frame, 708: nose pad, 712: reflector, 713: reflecting surface, 715: light, 716: transmitted light, 717: battery, 718: wireless power supply module, 719: touch sensor module, 720: finger, 900: electronic device, 901: display panel, 902: housing, 903: optical member, 904: mounting portion, 905: camera, 906: surface display area, 911: lens, 912: reflector, 913: reflecting surface, 915: light, 916: transmitted light, 950: electronic device, 951: display panel, 952: housing, 954: mounting part, 955: cushioning material, 956: lens, 957: input terminal, 958: output terminal, 6500: electronic device, 6501: housing, 6502: display part, 6503: power button, 6504: button, 6505: speaker, 6506: microphone, 6507: camera, 6508: light source, 6510: protective member, 6511: display panel, 6512: optical member, 6513: touch sensor panel, 6515: FPC , 6516: IC, 6517: printed circuit board, 6518: battery, 7000: display unit, 7100: television device, 7101: housing, 7103: stand, 7111: remote control device, 7200: notebook personal computer, 7211: housing, 7212: keyboard, 7213: pointing device, 7214: external connection port, 7300: digital signage, 7301: housing, 7303: speaker, 7311: information terminal device, 7400: digital signage, 7401: pillar, 7411: information terminal device, 9000: housing, 9001: display unit,9003: speaker, 9005: operation keys, 9006: connection terminal, 9007: sensor, 9008: microphone, 9050: icon, 9051: information, 9052: information, 9053: information, 9054: information, 9055: hinge, 9101: portable information terminal, 9102: portable information terminal, 9200: portable information terminal, 9201: portable information terminal,

Claims

1. A first layer, a second layer, a third layer, and a fourth layer, the second layer and the third layer are disposed between the first layer and the fourth layer; the second layer is provided between the first layer and the third layer, the first layer having a first transistor; the second layer includes a second transistor; the third layer includes a reflective layer, a first conductive layer, and a second conductive layer; the fourth layer includes a light emitting diode; The light emitting diode has a first electrode and a second electrode, the first electrode is electrically connected to the first conductive layer; the second electrode is electrically connected to the second conductive layer; the first transistor, the second transistor, the reflective layer, and the light emitting diode each have an overlapping area; a first insulating layer is provided between the first transistor and the second transistor; a second insulating layer is provided between the second transistor and the reflective layer; the reflective layer has a region in contact with the second insulating layer, the first conductive layer has a region in contact with the second insulating layer, the second conductive layer has a region in contact with the second insulating layer, a third insulating layer is provided between the reflective layer and the light emitting diode; The light emitting diode has a semiconductor layer, The semiconductor layer has a region in contact with the third insulating layer.

2. A first layer, a second layer, a third layer, and a fourth layer, the second layer and the third layer are disposed between the first layer and the fourth layer; the second layer is provided between the first layer and the third layer, the first layer having a first transistor; the second layer includes a second transistor; the third layer includes a reflective layer, a first conductive layer, and a second conductive layer; the reflective layer has the same material as the first conductive layer and the second conductive layer; the fourth layer includes a light emitting diode; The light emitting diode has a first electrode and a second electrode, the first electrode is electrically connected to the first conductive layer; the second electrode is electrically connected to the second conductive layer; the first transistor, the second transistor, the reflective layer, and the light emitting diode each have an overlapping area; a first insulating layer is provided between the first transistor and the second transistor; a second insulating layer is provided between the second transistor and the reflective layer; a third insulating layer is provided between the reflective layer and the light emitting diode; The light emitting diode has a semiconductor layer, The semiconductor layer has a region in contact with the third insulating layer.

3. In claim 1 or 2, Further comprising a fifth layer, the fifth layer is provided so as to sandwich the fourth layer between the third layer and the fifth layer, the fifth layer has one or both of a color conversion layer and a coloring layer, one or both of the color conversion layer and the coloring layer, the first transistor, the second transistor, the reflective layer, and the light emitting diode each have an overlapping region; The display device further comprises a fourth insulating layer provided between the light emitting diode and one or both of the color conversion layer and the colored layer.

4. In claim 3, The color conversion layer comprises a phosphor or a quantum dot.

5. In any one of claims 1 to 4, The display device, wherein the first transistor has silicon in a channel formation region.

6. In any one of claims 1 to 5, The second transistor has a metal oxide in a channel formation region.

7. In any one of claims 1 to 6, The semiconductor layer is a compound semiconductor containing a Group 13 element and a Group 15 element.

8. In any one of claims 1 to 7, The light emitting diode is a display device that emits blue, blue-violet, purple or ultraviolet light.

9. A display device according to any one of claims 1 to 8, An electronic device having one or more of a battery, a housing, a camera, a speaker, and a microphone.

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