Function panel

JP7904940B2Active Publication Date: 2026-08-13SEMICON ENERGY LAB CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2025-03-05
Publication Date
2026-08-13

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Abstract

To provide a new optical functional device excellent in convenience, availability or reliability.SOLUTION: The optical functional device comprises a light emission function, a photoelectric conversion function, a first electrode, a second electrode, and an optical function layer. The light emission function converts electrical energy into first light which has a first emission spectrum. The first emission spectrum exhibits maximum peak at a first wavelength, and has 80% intensity of maximum peak at a second wavelength. The photoelectric conversion function has a spectral sensitivity characteristic which exhibits maximum sensitivity in the range of 420 nm or more and 720 nm or less at a third wavelength. The spectral sensitivity characteristic includes sensitivity of 80% of maximum sensitivity at a fourth wavelength. The third wavelength is positioned closer to the second wavelength than the first wavelength while the fourth wavelength is positioned closer to the first wavelength than the third wavelength.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] One aspect of the present invention relates to an optical functional device, a functional panel, a display device, an input / output device, an information processing device, or a semiconductor device.

[0002] Note that one aspect of the present invention is not limited to the above technical field. The technical field of one aspect of the invention disclosed in this specification or the like relates to an article, a method, or a manufacturing method. Or, one aspect of the present invention relates to a process, a machine, a manufacture, or a composition of matter. Therefore, more specifically, examples of the technical field of one aspect of the present invention disclosed in this specification include a semiconductor device, a display device, a light-emitting device, a power storage device, a storage device, a driving method thereof, or a manufacturing method thereof.

Background Art

[0003] An imaging panel having an insulating surface of a substrate and a plurality of imaging pixels on the insulating surface is known (Patent Document 1). The imaging pixels include a plurality of windows that transmit visible light arranged in a matrix, a grid-like photoelectric conversion element that extends between the plurality of windows and supplies a signal, and a detection circuit to which the signal is supplied.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] One aspect of the present invention aims to provide a novel optical functional device that is excellent in convenience, usefulness, or reliability. Alternatively, it aims to provide a novel functional panel that is excellent in convenience, usefulness, or reliability. Alternatively, it aims to provide a novel display device that is excellent in convenience, usefulness, or reliability. Alternatively, it aims to provide a novel input / output device that is excellent in convenience, usefulness, or reliability. Alternatively, it aims to provide a novel information processing device that is excellent in convenience, usefulness, or reliability. Alternatively, it aims to provide a novel driving method for an information processing device that is excellent in convenience, usefulness, or reliability. Alternatively, it aims to provide a novel optical functional device, a novel functional panel, a novel display device, an input / output device, an information processing device, a driving method for an information processing device, or a novel semiconductor device.

[0006] Furthermore, the description of these problems does not preclude the existence of other problems. Moreover, one aspect of the present invention does not need to solve all of these problems. Other problems will naturally become apparent from the description in the specification, drawings, and claims, and it is possible to extract other problems from the description in the specification, drawings, and claims. [Means for solving the problem]

[0007] (1) One aspect of the present invention is an optical functional device having a light-emitting function, a photoelectric conversion function, a first electrode, a second electrode, and an optical functional layer.

[0008] The light emission function converts electrical energy into a first light, which has a first emission spectrum, the first emission spectrum exhibits a maximum peak at a first wavelength, the maximum peak exhibits a first value, and the first emission spectrum has an intensity of 80% of the first value at a second wavelength.

[0009] The photoelectric conversion function has spectral sensitivity characteristics, which show maximum sensitivity in the range of 420 nm to 720 nm at the third wavelength, and 80% of the maximum sensitivity at the fourth wavelength.

[0010] The third wavelength is located on the side of the first wavelength where the second wavelength is located, and the fourth wavelength is located on the side of the third wavelength where the first wavelength is located.

[0011] The photo-functional layer comprises a region sandwiched between a first electrode and a second electrode, and includes a first layer and a second layer. The first layer emits light including first light, and the second layer comprises a region overlapping with the first layer. The second layer comprises a light-absorbing material, which comprises a first absorption spectrum, and the first absorption spectrum comprises a region overlapping with the spectral sensitivity characteristics.

[0012] (2) Another aspect of the present invention is the above-described optical functional device in which the third wavelength is shorter than the first wavelength.

[0013] This reduces the overlap between the first spectrum and spectral sensitivity characteristics. Alternatively, it can suppress light absorption by light-absorbing materials. Alternatively, it can efficiently emit the first light. Alternatively, it can perform photoelectric conversion with spectral sensitivity characteristics. As a result, it is possible to provide novel optical functional devices with superior convenience, usefulness, or reliability.

[0014] (3) Another aspect of the present invention is an optical functional device having a light-emitting function, a photoelectric conversion function, a first electrode, a second electrode, and an optical functional layer.

[0015] The light-emitting function converts electrical energy into a first light, which has a first emission spectrum, and the first emission spectrum exhibits a maximum peak at a first wavelength.

[0016] The photoelectric conversion function possesses spectral sensitivity characteristics, which show maximum sensitivity in the range of 420 nm to 720 nm at a third wavelength, with the third wavelength being located in a wavelength range of 420 nm or more and shorter than the first wavelength.

[0017] The photo-functional layer comprises a region sandwiched between a first electrode and a second electrode, and includes a first layer and a second layer. The first layer emits light containing first light. The second layer comprises a light-absorbing material, which has a first absorption spectrum, and the first absorption spectrum has a region that overlaps with the spectral sensitivity characteristics.

[0018] This allows for spectral sensitivity characteristics that exhibit high sensitivity to light with wavelengths shorter than the maximum peak of the first spectrum. Alternatively, the first light can be efficiently emitted. Or, photoelectric conversion can be performed with spectral sensitivity characteristics. As a result, a novel optical functional device with superior convenience, usefulness, or reliability can be provided.

[0019] (4) Another aspect of the present invention is the above-described optical functional device in which the second wavelength is shorter than the first wavelength, the fourth wavelength is longer than the third wavelength, and the fourth wavelength is shorter than the second wavelength.

[0020] This allows for spectral sensitivity characteristics that exhibit high sensitivity to light with wavelengths shorter than the maximum peak of the first spectrum. Alternatively, it can reduce the overlap between the first spectrum and the spectral sensitivity characteristics. Alternatively, it can efficiently emit the first light. Alternatively, it can perform photoelectric conversion with spectral sensitivity characteristics. As a result, it is possible to provide novel optical functional devices with superior convenience, usefulness, or reliability.

[0021] (5) Another aspect of the present invention is the above-described optical functional device having the function of emitting red light and the function of photoelectrically converting green light.

[0022] This allows for applications such as biosensors, or the observation of changes in blood flow. Alternatively, it can be given spectral sensitivity characteristics that are highly sensitive to green light. Or, it can efficiently emit red light. As a result, it is possible to provide novel optical functional devices with superior convenience, usefulness, and reliability.

[0023] (6) Also, one aspect of the present invention is an optical functional device having a first electrode, a second electrode, and an optical functional layer.

[0024] The optical functional layer includes a region sandwiched between the first electrode and the second electrode, and the optical functional layer includes a first layer and a second layer.

[0025] The first layer contains a luminescent material, the luminescent material has a function of emitting a second light, the second light has a second spectrum, and the second spectrum shows a maximum peak at a fifth wavelength.

[0026] The second layer contains a light-absorbing material, the light-absorbing material has a first absorption spectrum, the first absorption spectrum shows a maximum absorption in the range of 420 nm or more and 720 nm or less at a sixth wavelength, and the sixth wavelength is in the wavelength range of 420 nm or more and shorter than the fifth wavelength.

[0027] (7) Also, one aspect of the present invention is the above optical functional device in which the first absorption has an absorption edge at a seventh wavelength, and the seventh wavelength is shorter than the fifth wavelength.

[0028] (8) Also, one aspect of the present invention is the above optical functional device in which the second spectrum has an emission edge at an eighth wavelength, the eighth wavelength is shorter than the fifth wavelength and longer than the sixth wavelength.

[0029] Thereby, it is possible to suppress the phenomenon that the light emitted by the luminescent material is absorbed by the light-absorbing material. Or, the first light can be efficiently emitted. Or, photoelectric conversion can be performed with spectral sensitivity characteristics. As a result, it is possible to provide a novel optical functional device excellent in convenience, usefulness or reliability.

[0030] (9) Also, one aspect of the present invention is a functional panel having a first pixel, a first conductive film, a second conductive film, a third conductive film, a fourth conductive film, a fifth conductive film, a sixth conductive film, and a seventh conductive film.

[0031] The first pixel comprises the above-described optical functional device and the first pixel circuit.

[0032] The first pixel circuit is electrically connected to the optical functional device, and the first pixel circuit is electrically connected to the first conductive film, the second conductive film, the third conductive film, the fourth conductive film, the fifth conductive film, the sixth conductive film, and the seventh conductive film.

[0033] (10) Another aspect of the present invention is the above-described functional panel having a set of pixels.

[0034] A pair of pixels comprises a first pixel and a second pixel, the second pixel comprising a light-emitting device and a second pixel circuit.

[0035] The light-emitting device is electrically connected to the second pixel circuit, the light-emitting device emits a third light, and the optical functional device can convert the third light into photoelectric energy.

[0036] (11) Another aspect of the present invention is the above-mentioned functional panel having a functional layer.

[0037] The functional layer comprises a first pixel circuit, which includes a first transistor and a second transistor. The functional layer also comprises a drive circuit, which includes a third transistor.

[0038] The first transistor comprises a semiconductor film, the second transistor comprises a semiconductor film that can be fabricated in the process of forming the semiconductor film, and the third transistor also comprises a semiconductor film that can be fabricated in the process of forming the semiconductor film.

[0039] This allows the first pixel circuit to be formed in the functional layer. Alternatively, for example, in the process of forming the semiconductor film of the transistors in the first pixel circuit, the semiconductor film of the transistors in the drive circuit can be formed. Alternatively, the process of manufacturing the functional panel can be simplified. As a result, a novel functional panel with superior convenience, usefulness, or reliability can be provided.

[0040] (12) Another aspect of the present invention is the above-mentioned functional panel having a region.

[0041] The region comprises one set of pixels and another set of pixels.

[0042] A group of pixels is arranged in the row direction, and each group of pixels contains a set of pixels. Furthermore, each group of pixels is electrically connected to a first conductive film, and each group of pixels is electrically connected to a fifth conductive film.

[0043] Another group of pixels is arranged in a column direction intersecting the row direction, and each group of pixels contains a set of pixels. Furthermore, each group of pixels is electrically connected to a third conductive film, and each group of pixels is electrically connected to a seventh conductive film.

[0044] This allows for the acquisition of imaging information from multiple pixels, or the supply of image information to multiple pixels. As a result, it is possible to provide a novel functional panel with superior convenience, usefulness, and reliability.

[0045] (13) Another aspect of the present invention is the above-described functional panel having a group of sampling circuits, a multiplexer, an amplification circuit, and an analog-to-digital conversion circuit.

[0046] A group of sampling circuits includes a sampling circuit, a multiplexer selects one of the sampling circuits from the group to acquire the imaging signal, the multiplexer has the function of supplying the imaging signal to an amplification circuit, and the amplification circuit has the function of supplying the imaging signal to an analog-to-digital conversion circuit.

[0047] This allows for the selection of a predetermined pixel from multiple pixels arranged in a row to acquire imaging information. Alternatively, the number of imaging signals acquired simultaneously can be limited to a predetermined number. Furthermore, an analog-to-digital conversion circuit with fewer input channels than the number of pixels arranged in a row can be used. As a result, a novel functional panel with superior convenience, usefulness, and reliability can be provided.

[0048] (14) Another aspect of the present invention is a display device having a control unit and the above-mentioned functional panel.

[0049] The control unit is supplied with image information and control information, generates information based on the image information, generates control signals based on the control information, and supplies information and control signals.

[0050] The function panel is supplied with information and control signals, and a set of pixels displays information based on that information.

[0051] This allows image information to be displayed using optical functional devices. As a result, a novel display device with superior convenience, usefulness, and reliability can be provided.

[0052] (15) Another aspect of the present invention is an input / output device having an input unit and a display unit.

[0053] The display unit is equipped with the above-mentioned function panel, and the input unit is equipped with a detection area.

[0054] The input unit detects objects that are close to the detection area, and the detection area includes a region that overlaps with the pixels.

[0055] This allows for the detection of objects approaching an area overlapping with the display unit while simultaneously displaying image information using the display unit. Alternatively, position information can be input using a finger or other object placed near the display unit as a pointer. Furthermore, position information can be associated with the image information displayed on the display unit. As a result, a novel input / output device with superior convenience, usefulness, and reliability can be provided.

[0056] (16) Another aspect of the present invention is an information processing device having an arithmetic unit and an input / output device.

[0057] The computing unit is supplied with input information or detection information, generates control information and image information based on the input information or detection information, and supplies control information and image information.

[0058] The input / output device supplies input information and detection information, the input / output device is supplied with control information and image information, the input / output device comprises a display unit, an input unit and a detection unit, and the display unit comprises the above-mentioned function panel.

[0059] The display unit displays image information based on control information, the input unit generates input information, and the detection unit generates detection information.

[0060] This allows for the generation of control information based on input or detection information, or the display of image information based on input or detection information. As a result, a novel information processing device with superior convenience, usefulness, and reliability can be provided.

[0061] (17) Another aspect of the present invention is an information processing device that includes one or more of the following: a keyboard, hardware buttons, a pointing device, a touch sensor, an illuminance sensor, an imaging device, an audio input device, an eye-tracking input device, and an attitude detection device, and the above-mentioned functional panel.

[0062] This allows the computing device to generate image information or control information based on information supplied using various input devices. As a result, a novel information processing device with superior convenience, usefulness, and reliability can be provided.

[0063] In the drawings attached to this specification, components are classified by function and shown as independent blocks in block diagrams. However, in reality, it is difficult to completely separate components by function, and a single component may be involved in multiple functions.

[0064] In this specification, the terms "source" and "drain" of a transistor are interchangeable depending on the transistor's polarity and the potential applied to each terminal. Generally, in an n-channel transistor, the terminal to which a low potential is applied is called the source, and the terminal to which a high potential is applied is called the drain. Similarly, in a p-channel transistor, the terminal to which a low potential is applied is called the drain, and the terminal to which a high potential is applied is called the source. For convenience, this specification sometimes describes the connection relationships of a transistor assuming that the source and drain are fixed, but in reality, the terms "source" and "drain" are interchangeable according to the potential relationship described above.

[0065] In this specification, the source of a transistor refers to the source region, which is part of the semiconductor film that functions as the active layer, or the source electrode connected to the semiconductor film. Similarly, the drain of a transistor refers to the drain region, which is part of the semiconductor film, or the drain electrode connected to the semiconductor film. The gate refers to the gate electrode.

[0066] In this specification, a state in which transistors are connected in series means, for example, a state in which only one of the sources or drains of the first transistor is connected to only one of the sources or drains of the second transistor. A state in which transistors are connected in parallel means a state in which one of the sources or drains of the first transistor is connected to one of the sources or drains of the second transistor, and the other of the sources or drains of the first transistor is connected to the other of the sources or drains of the second transistor.

[0067] In this specification, "connection" means an electrical connection, corresponding to a state in which current, voltage, or potential can be supplied or transmitted. Therefore, a connected state does not necessarily refer to a direct connection, but also includes a state indirectly connected through circuit elements such as wiring, resistors, diodes, and transistors, so that current, voltage, or potential can be supplied or transmitted.

[0068] In this specification, even when components that appear independent in a circuit diagram are connected, in reality, a single conductive film may combine the functions of multiple components, for example, when a portion of the wiring functions as an electrode. In this specification, "connection" includes such cases where a single conductive film combines the functions of multiple components.

[0069] In this specification, one of the first or second electrodes of the transistor refers to the source electrode, and the other refers to the drain electrode. [Effects of the Invention]

[0070] According to one aspect of the present invention, it is possible to provide a novel optical functional device that is excellent in convenience, usefulness, or reliability. Alternatively, it is possible to provide a novel functional panel that is excellent in convenience, usefulness, or reliability. Alternatively, it is possible to provide a novel display device that is excellent in convenience, usefulness, or reliability. Alternatively, it is possible to provide a novel input / output device that is excellent in convenience, usefulness, or reliability. Alternatively, it is possible to provide a novel information processing device that is excellent in convenience, usefulness, or reliability. Alternatively, it is possible to provide a novel driving method for a novel information processing device that is excellent in convenience, usefulness, or reliability. Alternatively, it is possible to provide a novel functional panel, a novel display device, a novel input / output device, a novel information processing device, a novel driving method for an information processing device, or a novel semiconductor device.

[0071] Furthermore, the description of these effects does not preclude the existence of other effects. Moreover, one aspect of the present invention does not necessarily have to possess all of these effects. Other effects will naturally become apparent from the description in the specification, drawings, and claims, and it is possible to extract other effects from the description in the specification, drawings, and claims. [Brief explanation of the drawing]

[0072] [Figure 1] Figures 1A and 1B illustrate the function and configuration of an optical functional device according to an embodiment. [Figure 2] Figures 2A and 2B illustrate the functions of the optical functional device according to the embodiment. [Figure 3] Figures 3A to 3C illustrate the configuration of the functional panel according to the embodiment. [Figure 4] Figures 4A to 4C illustrate the configuration of the functional panel according to the embodiment. [Figure 5] Figure 5 is a circuit diagram illustrating the configuration of a functional panel according to an embodiment. [Figure 6] Figures 6A and 6B are circuit diagrams illustrating the configuration of a functional panel according to an embodiment. [Figure 7]Figures 7A and 7B are circuit diagrams illustrating the configuration of a functional panel according to an embodiment. [Figure 8] Figure 8 is a cross-sectional view illustrating the configuration of a functional panel according to an embodiment. [Figure 9] Figures 9A and 9B are cross-sectional views illustrating the configuration of a functional panel according to an embodiment. [Figure 10] Figures 10A and 10B are cross-sectional views illustrating the configuration of a functional panel according to an embodiment. [Figure 11] Figures 11A and 11B are cross-sectional views illustrating the configuration of a functional panel according to an embodiment. [Figure 12] Figures 12A and 12B illustrate the configuration of the functional panel according to the embodiment. [Figure 13] Figure 13 is a diagram illustrating the operation of the functional panel according to the embodiment. [Figure 14] Figures 14A to 14D illustrate the configuration of a display device according to an embodiment. [Figure 15] Figure 15 is a block diagram illustrating the configuration of an input / output device according to an embodiment. [Figure 16] Figures 16A to 16C illustrate the configuration of an information processing device according to an embodiment. [Figure 17] Figures 17A and 17B are flowcharts illustrating the driving method of the information processing device according to the embodiment. [Figure 18] Figures 18A to 18C illustrate the driving method of the information processing device according to the embodiment. [Figure 19] Figures 19A to 19C illustrate the driving method of an information processing device according to an embodiment. [Figure 20] Figures 20A to 20D illustrate the driving method of the information processing device according to the embodiment. [Figure 21] Figures 21A to 21E illustrate the configuration of an information processing device according to an embodiment. [Figure 22]Figures 22A to 22E illustrate the configuration of an information processing device according to an embodiment. [Figure 23] Figures 23A and 23B illustrate the configuration of an information processing device according to an embodiment. [Modes for carrying out the invention]

[0073] An optical functional device according to one aspect of the present invention includes a light-emitting function, a photoelectric conversion function, a first electrode, a second electrode, and an optical functional layer. The light-emitting function converts electrical energy into a first light, the first light having a first emission spectrum, the first emission spectrum exhibiting a maximum peak at a first wavelength, the maximum peak exhibiting a first value, and the first emission spectrum having an intensity of 80% of the first value at a second wavelength. The photoelectric conversion function also has spectral sensitivity characteristics, the spectral sensitivity characteristics exhibiting maximum sensitivity in the range of 420 nm to 720 nm at a third wavelength, and the spectral sensitivity characteristics having a sensitivity of 80% of the maximum sensitivity at a fourth wavelength. The third wavelength is located on the side of the first wavelength where the second wavelength is located, and the fourth wavelength is located on the side of the third wavelength where the first wavelength is located. Furthermore, the optical functional layer includes a region sandwiched between the first electrode and the second electrode, and the optical functional layer comprises a first layer and a second layer, the first layer emits light including first light, the second layer includes a region overlapping with the first layer, and the second layer includes a light-absorbing material. The light-absorbing material has a first absorption spectrum, and the first absorption spectrum includes a region overlapping with the spectral sensitivity characteristics.

[0074] This reduces the overlap between the first spectrum and spectral sensitivity characteristics. Alternatively, it allows for efficient emission of the first light. Alternatively, it enables photoelectric conversion with spectral sensitivity characteristics φ. As a result, it is possible to provide a novel optical functional device with superior convenience, usefulness, or reliability.

[0075] Embodiments will be described in detail with reference to the drawings. However, it will be readily apparent to those skilled in the art that the present invention is not limited to the following description, and that its form and details can be modified in various ways without departing from the spirit and scope of the present invention. Accordingly, the present invention is not to be interpreted as being limited to the contents of the embodiments shown below. In the configuration of the invention described below, the same reference numerals are used in common across different drawings for the same parts or parts having similar functions, and repeated descriptions are omitted.

[0076] (Embodiment 1) In this embodiment, the function and configuration of an optical functional device according to one aspect of the present invention will be described with reference to Figures 1 and 2.

[0077] Figure 1A is a diagram illustrating the function of an optical functional device according to one embodiment of the present invention. Figure 1B is a cross-sectional view illustrating the configuration of an optical functional device according to one embodiment of the present invention.

[0078] Figures 2A and 2B illustrate the function of an optical functional device according to one embodiment of the present invention.

[0079] In this specification, variables that take integer values ​​of 1 or more may be used as signs. For example, (p), which includes a variable p that takes an integer value of 1 or more, may be used as part of a sign that identifies any of up to p components. Also, for example, (m,n), which includes a variable m and a variable n that take integer values ​​of 1 or more, may be used as part of a sign that identifies any of up to m × n components.

[0080] <Example of optical functional device configuration 1> The optical functional device 550RS(i,j) described in this embodiment has a light-emitting function, a photoelectric conversion function, an electrode 551RS(i,j), an electrode 552, and an optical functional layer 553RS(j) (see Figures 1A and 1B).

[0081] Examples of light-emitting functions The optical functional device 550RS(i,j) has a light-emitting function that converts electrical energy into light EL1. Light EL1 has an emission spectrum SP11. The emission spectrum SP11 shows a maximum peak at wavelength λ11, and the maximum peak represents the maximum value Imax. In addition, the emission spectrum SP11 has an intensity of 80% of the maximum value Imax at wavelength λ12. The emission spectrum SP11 is normalized using the maximum value Imax and shown in the figure (see Figure 1A).

[0082] 《Example 1 of photoelectric conversion function》 The optical functional device 550RS(i,j) is equipped with a photoelectric conversion function, which has a spectral sensitivity characteristic φ. The spectral sensitivity characteristic φ shows the maximum sensitivity Vmax in the range of 420 nm to 720 nm at wavelength λ21. Furthermore, the spectral sensitivity characteristic φ has a sensitivity of 80% of the maximum sensitivity Vmax at wavelength λ22. The spectral sensitivity characteristic φ is normalized using the maximum value Vmax and shown in the figure (see Figure 1A). The light incident on the optical functional device 550RS(i,j) is shown as light hv1 (see Figure 1B).

[0083] Wavelength λ21 is located closer to wavelength λ12 than wavelength λ11, and wavelength λ22 is located closer to wavelength λ11 than wavelength λ21. The diagram shows the case where wavelength λ21 is shorter than wavelength λ11, but it is not limited to this case. For example, wavelength λ21 may be longer than wavelength λ11. Specifically, wavelength λ11 may be in the region of green light wavelengths, and wavelength λ21 may be in the region of red light wavelengths or near-infrared light wavelengths.

[0084] 《Example 1 of the configuration of the optical functional layer 553RS(j)》 The optical functional layer 553RS(j) comprises a region sandwiched between electrodes 551RS(i,j) and 552, and the optical functional layer 553RS(j) includes layers 553R(j) and 553S(j) (see Figure 1B).

[0085] Layer 553R(j) emits light including photoEL1. For example, a light-emitting organic material can be used for layer 553R(j). Specifically, a fluorescent material or a phosphorescent material can be used for layer 553R(j). Alternatively, a light-emitting organic material can be dispersed in a material with carrier transport properties. Specifically, an electron-transporting material and a hole-transporting material can be used for layer 553R(j). For example, known materials that can be used in organic EL elements can be used for layer 553R(j).

[0086] Layer 553S(j) has a region that overlaps with layer 553R(j), and layer 553S(j) contains a light-absorbing material. The light-absorbing material has an absorption spectrum ABS, and the absorption spectrum ABS has a region that overlaps with the spectral sensitivity characteristic φ. Specifically, the absorption spectrum ABS normalized using the maximum absorption in the range of 420 nm to 720 nm overlaps with the spectral sensitivity characteristic φ normalized using the maximum value Vmax in the range of 420 nm to 720 nm in that range. Preferably, in that range, 50% or more of the area of ​​the normalized absorption spectrum ABS overlaps with the normalized spectral sensitivity characteristic φ. More preferably, in that range, 65% or more of the area of ​​the normalized absorption spectrum ABS overlaps with the normalized spectral sensitivity characteristic φ.

[0087] For example, known materials that can be used in organic solar cells can be used in layer 553S(j). Specifically, electron-accepting materials and electron-donating materials can be used in layer 553S(j). For example, fullerene derivatives and non-fullerene electron acceptors can be used as electron-accepting materials. Specifically, perylene derivatives or compounds having a dicyanomethyleneindanone group can be used as non-fullerene electron acceptors. In addition, phthalocyanine compounds, tetracene derivatives, quinacridone derivatives, rubrene derivatives, etc. can be used as electron-donating materials.

[0088] Example 2 of photoelectric conversion function In this embodiment, the optical functional device 550RS(i,j) has a wavelength λ21 that is shorter than the wavelength λ11.

[0089] This reduces the overlap between the emission spectrum SP11 and the spectral sensitivity characteristic φ. Alternatively, it can suppress the absorption of photoelectroluminescence (EL) by light-absorbing materials. Alternatively, it can efficiently emit photoelectroluminescence (EL1). Alternatively, it can perform photoelectric conversion using the spectral sensitivity characteristic φ. As a result, it is possible to provide a novel optical functional device with excellent convenience, usefulness, or reliability.

[0090] <Example of optical functional device configuration 2> The optical functional device 550RS(i,j) described in this embodiment has a light-emitting function, a photoelectric conversion function, an electrode 551RS(i,j), an electrode 552, and an optical functional layer 553RS(j) (see Figures 1A and 1B).

[0091] Examples of light-emitting functions The optical functional device 550RS(i,j) has a light-emitting function that converts electrical energy into light EL1. Light EL1 has an emission spectrum SP11. The emission spectrum SP11 shows a maximum peak at wavelength λ11.

[0092] 《Example 3 of photoelectric conversion function》 The optical functional device 550RS(i,j) is equipped with a photoelectric conversion function, which has a spectral sensitivity characteristic φ. The spectral sensitivity characteristic φ shows the maximum sensitivity Vmax in the range of 420 nm to 720 nm at a wavelength λ21.

[0093] The wavelength λ21 is located in the wavelength range of 420 nm or more and less than the wavelength λ11.

[0094] 《Example 2 of the configuration of the optical functional layer 553RS(j)》 The optical functional layer 553RS(j) comprises a region sandwiched between electrodes 551RS(i,j) and 552, and the optical functional layer 553RS(j) includes layers 553R(j) and 553S(j) (see Figure 1B).

[0095] Layer 553R(j) emits light including optical EL1.

[0096] Layer 553S(j) contains a light-absorbing material. The light-absorbing material has an absorption spectrum ABS, and the absorption spectrum ABS has a region that overlaps with the spectral sensitivity characteristic φ. Specifically, the absorption spectrum ABS normalized using the maximum absorption in the range of 420 nm to 720 nm overlaps with the spectral sensitivity characteristic φ normalized using the maximum value Vmax in the range of 420 nm to 720 nm in that range. Preferably, in that range, 50% or more of the area of ​​the normalized absorption spectrum ABS overlaps with the normalized spectral sensitivity characteristic φ. More preferably, in that range, 65% or more of the area of ​​the normalized absorption spectrum ABS overlaps with the normalized spectral sensitivity characteristic φ.

[0097] This allows for a spectral sensitivity characteristic φ that exhibits high sensitivity to light with wavelengths shorter than the maximum peak of the emission spectrum SP11. Alternatively, it enables efficient emission of light EL1. Or, it enables photoelectric conversion with the spectral sensitivity characteristic φ. As a result, it is possible to provide a novel optical functional device with excellent convenience, usefulness, or reliability.

[0098] <Example of optical functional device configuration 3> In this embodiment, the optical functional device 550RS(i,j) has a wavelength λ12 that is shorter than wavelength λ11, a wavelength λ22 that is longer than wavelength λ21, and a wavelength λ22 that is shorter than wavelength λ12.

[0099] This allows for a spectral sensitivity characteristic φ that exhibits high sensitivity to light with wavelengths shorter than the maximum peak of the emission spectrum SP11. Alternatively, it can reduce the overlap between the emission spectrum SP11 and the spectral sensitivity characteristic φ. Alternatively, it can efficiently emit light EL1. Alternatively, it can perform photoelectric conversion with the spectral sensitivity characteristic φ. As a result, it is possible to provide a novel optical functional device with excellent convenience, usefulness, or reliability.

[0100] <Example of optical functional device configuration 4> The optical functional device 550RS(i,j) described in this embodiment has the function of emitting red light and the function of converting green light into photoelectric energy.

[0101] This allows for applications such as biosensors, or the observation of changes in blood flow. Alternatively, it enables the creation of spectral sensitivity characteristics φ that exhibit high sensitivity to green light, or the efficient emission of red light. As a result, it is possible to provide novel optical functional devices with superior convenience, usefulness, and reliability.

[0102] <Example of optical functional device configuration 5> The optical functional device 550RS(i,j) described in this embodiment includes an electrode 551RS(i,j), an electrode 552, and an optical functional layer 553RS(j) (see Figure 1B).

[0103] 《Example 3 of the configuration of the optical functional layer 553RS(j)》 The optical functional layer 553RS(j) comprises a region sandwiched between the electrode 551RS(i,j) and the electrode 552, and the optical functional layer 553RS(j) includes layer 553R(j) and layer 553S(j).

[0104] Example 1 of layer 553R(j) Layer 553R(j) contains a luminescent material, which has the function of emitting light (photoluminescence) PL. The light (photoluminescence) PL has a spectrum SP12, which shows a maximum peak at wavelength λ31.

[0105] Example 1 of layer 553S(j) Layer 553S(j) contains a light-absorbing material, which has an absorption spectrum ABS, and the absorption spectrum ABS shows maximum absorption at wavelength λ41 in the range of 420 nm to 720 nm. Note that wavelength λ41 is in the wavelength range of 420 nm to less than wavelength λ31.

[0106] Example 2 of layer 553S(j) Layer 553S(j) contains a light-absorbing material, which has an absorption spectrum ABS, and the absorption spectrum ABS has an absorption edge at wavelength λ43, which is shorter than wavelength λ31.

[0107] Example 2 of layer 553R(j) Layer 553R(j) contains a luminescent material, which has the function of emitting light (photoluminescence) PL. The light (photoluminescence) PL has a spectrum SP12, which has an emission edge at wavelength λ33, where wavelength λ33 is shorter than wavelength λ31 and longer than wavelength λ41.

[0108] This makes it possible to suppress the phenomenon in which light-absorbing materials absorb light emitted by light-emitting materials. Alternatively, it is possible to efficiently emit the first light EL1. Alternatively, photoelectric conversion can be performed with spectral sensitivity characteristics φ. As a result, it is possible to provide a novel optical functional device with excellent convenience, usefulness, or reliability.

[0109] This embodiment can be appropriately combined with other embodiments shown in this specification.

[0110] (Embodiment 2) In this embodiment, the configuration of a functional panel according to one aspect of the present invention will be described with reference to Figures 3 to 7.

[0111] Figure 3A is a top view illustrating the configuration of a functional panel according to one embodiment of the present invention, Figure 3B is a diagram illustrating a part of Figure 3A, and Figure 3C is a diagram illustrating a part of Figure 3B.

[0112] Figure 4A is a diagram illustrating a portion of Figure 3A, and illustrates the configuration of pixels that can be used in a functional panel according to one embodiment of the present invention. Figure 4B is a diagram illustrating a portion of Figure 4A, and Figure 4C is a diagram illustrating another portion of Figure 4A.

[0113] Figure 5 is a circuit diagram illustrating a part of Figure 4B, and is a diagram illustrating the configuration of a pixel circuit that can be used in a functional panel according to one embodiment of the present invention.

[0114] Figure 6A is a circuit diagram illustrating a part of Figure 4B, and illustrates the configuration of a pixel circuit that can be used in a functional panel according to one embodiment of the present invention. Figure 6B is a circuit diagram illustrating a configuration different from that of Figure 6A.

[0115] Figure 7A is a circuit diagram illustrating a part of an amplification circuit that can be used in a functional panel according to one embodiment of the present invention, and Figure 7B is a circuit diagram of a sampling circuit that can be used in a functional panel according to one embodiment of the present invention.

[0116] <Example configuration of function panel 700 1> The functional panel 700 described in this embodiment includes a pixel 702RS(i,j), a conductive film G1(i), a conductive film S1r(j), a conductive film ANO, a conductive film RS(i), a conductive film TX(i), a conductive film SE(i), and a conductive film WX(j) (see Figures 3A and 4A). The functional panel 700 also includes a conductive film VCOM2.

[0117] For example, conductive film G1(i) is supplied with a first selection signal, conductive film S1r(j) is supplied with an image signal. Also, for example, conductive film RS(i) is supplied with a second selection signal, conductive film TX(i) is supplied with a third selection signal, and conductive film SE(i) is supplied with a fourth selection signal.

[0118] 《Example Configuration 1 of Pixel 702RS(i,j)》 Pixel 702RS(i,j) comprises an optical functional device 550RS(i,j) and a pixel circuit 530RS(i,j) (see Figure 3C). For example, the configuration described in Embodiment 1 can be used for the optical functional device 550RS(i,j).

[0119] 《Example configuration of pixel circuit 530RS(i,j)》 The pixel circuit 530RS(i,j) is electrically connected to the optical functional device 550RS(i,j) (see Figure 5).

[0120] Furthermore, the pixel circuit 530RS(i,j) is electrically connected to conductive films G1(i), S1r(j), ANO, RS(i), TX(i), SE(i), and WX(j).

[0121] The pixel circuit 530RS(i,j) includes a switch SW21, a transistor M21, and a node N21. The pixel circuit 530RS(i,j) also includes a node N22, a capacitor C22, and a switch SW23.

[0122] Transistor M21 comprises a gate electrode electrically connected to node N21, a first electrode electrically connected to the optical functional device 550RS(i,j), and a second electrode electrically connected to the conductive film ANO.

[0123] Switch SW21 has a first terminal electrically connected to node N21, a second terminal electrically connected to conductive film S1r(j), and a function to control the conduction state or non-conduction state based on the potential of conductive film G1(i).

[0124] This allows the supplied image signal to be held in node N21. Alternatively, the optical functional device 550RS(i,j) can be made to emit light at a brightness corresponding to the potential of node N21. Or, image information can be displayed. As a result, a novel display device with superior convenience, usefulness, and reliability can be provided.

[0125] Furthermore, the pixel circuit 530RS(i,j) includes switches SW31, SW32, SW33, transistor M31, capacitor C31, and node FD (see Figure 5).

[0126] The switch SW31 has a first terminal electrically connected to the optical functional device 550RS(i,j), a second terminal electrically connected to the node FD, and a function to control the conduction or non-conduction state based on the potential of the conductive film TX(i).

[0127] The switch SW32 has a first terminal electrically connected to node FD, a second terminal electrically connected to conductive film VR, and a function to control the conduction state or non-conduction state based on the potential of conductive film RS(i).

[0128] Capacitor C31 comprises a conductive film electrically connected to node FD and a conductive film electrically connected to conductive film VCP.

[0129] Transistor M31 comprises a gate electrode electrically connected to node FD and a first electrode electrically connected to the conductive film VPI.

[0130] The switch SW33 has a first terminal electrically connected to the second electrode of transistor M31, a second terminal electrically connected to the conductive film WX(j), and a function to control the conduction state or non-conduction state based on the potential of the conductive film SE(i).

[0131] This allows the imaging signal generated by the optical functional device 550RS(i,j) to be transferred to the node FD using switch SW31. Alternatively, the imaging signal generated by the optical functional device 550RS(i,j) can be stored in the node FD using switch SW31. Alternatively, the connection between the pixel circuit 530RS(i,j) and the optical functional device 550RS(i,j) can be made non-conductive using switch SW31. Alternatively, correlated double sampling can be applied. Alternatively, noise contained in the imaging signal can be reduced. As a result, a novel functional panel with superior convenience or reliability can be provided.

[0132] <Example configuration of the 700 function panel 2> The functional panel 700 described in this embodiment has a pair of pixels 703(i,j), and the pair of pixels 703(i,j) comprises pixels 702RS(i,j) and pixels 702G(i,j) (see Figures 3B and 4A).

[0133] Pixel 702G(i,j) comprises a light-emitting device 550G(i,j) and a pixel circuit 530G(i,j).

[0134] The light-emitting device 550G(i,j) is electrically connected to the pixel circuit 530G(i,j), and the light-emitting device 550G(i,j) emits light EL2.

[0135] The optical functional device 550RS(i,j) can convert optical EL2 into photoelectric energy. In other words, the optical functional device 550RS(i,j) has a spectral sensitivity characteristic φ, and the emission spectrum of optical EL2 emitted by the light-emitting device 550G(i,j) overlaps with this spectral sensitivity.

[0136] This allows imaging to be performed using the optical functional device 550RS(i,j) while the light-emitting device 550G(i,j) is used for illumination. As a result, a novel functional panel with superior convenience, usefulness, and reliability can be provided.

[0137] 《Example Configuration 1 of Pixel Circuit 530G(i,j)》 The pixel circuit 530G(i,j) is supplied with a first selection signal, and the pixel circuit 530G(i,j) acquires an image signal based on the first selection signal. For example, the first selection signal can be supplied using the conductive film G1(i) (see Figure 4A). Alternatively, the image signal can be supplied using the conductive film S1g(j). The operation of supplying the first selection signal and causing the pixel circuit 530G(i,j) to acquire the image signal can be called "writing" (see Figure 13).

[0138] 《Example Configuration 2 of Pixel Circuit 530G(i,j)》 The pixel circuit 530G(i,j) includes switch SW21, switch SW23, transistor M21, capacitor C22, and node N21 (see Figure 6A). The pixel circuit 530G(i,j) also includes node N22.

[0139] Transistor M21 comprises a gate electrode electrically connected to node N21, a first electrode electrically connected to light-emitting device 550G(i,j), and a second electrode electrically connected to conductive film ANO.

[0140] Switch SW21 has a first terminal electrically connected to node N21, a second terminal electrically connected to conductive film S1g(j), and a function to control the conduction state or non-conduction state based on the potential of conductive film G1(i).

[0141] 《Example 3 of the Pixel Circuit 530G(i,j) Configuration》 For example, the pixel circuit 530G(i,j) includes switch SW21, switch SW22, transistor M21, capacitor C22, and node N21 (see Figure 6B). The pixel circuit 530G(i,j) also includes node N22, capacitor C21, and switch SW23.

[0142] Switch SW22 has a first terminal electrically connected to the conductive film S2g(j) and a function to control the conduction or non-conduction state based on the potential of the conductive film G2(i) (see Figure 6B).

[0143] Capacitor C21 comprises a conductive film electrically connected to node N21 and a conductive film electrically connected to the second electrode of switch SW22.

[0144] This allows the image signal to be stored in node N21. Alternatively, the potential of node N21 can be changed using switch SW22. Or, the intensity of the light emitted by the light-emitting device 550G(i,j) can be controlled using the potential of node N21. As a result, a novel functional panel with superior convenience and reliability can be provided.

[0145] 《Example configuration of the 550G(i,j) light-emitting device》 The light-emitting device 550G(i,j) is electrically connected to the pixel circuit 530G(i,j) (see Figure 6A). The light-emitting device 550G(i,j) also includes an electrode 551G(i,j) electrically connected to the pixel circuit 530G(i,j), an electrode 552 electrically connected to the conductive film VCOM2, and a layer 553G(j) (see Figures 6A, 6B, and 9A). The layer 553G(j) emits light including photon EL2. For example, a light-emitting organic compound can be used for layer 553G(j). The light-emitting device 550G(i,j) also has a function that operates based on the potential of node N21.

[0146] For example, organic electroluminescent elements, inorganic electroluminescent elements, light-emitting diodes, mini-LEDs, micro-LEDs, or QDLEDs (Quantum Dot LEDs) can be used as light-emitting devices in 550G(i,j).

[0147] 《Example configuration of pixel 703(i,j)》 Multiple pixels can be used for pixel 703(i,j). For example, multiple pixels displaying colors with different hues can be used. Note that each of these multiple pixels can be referred to as a subpixel. Alternatively, multiple subpixels can be grouped together and referred to as a single pixel.

[0148] This allows for additive or subtractive color mixing of the colors displayed by the multiple pixels. Alternatively, it enables the display of hues that cannot be displayed by individual pixels.

[0149] Specifically, the pixels 702B(i,j) which display blue, 702G(i,j) which display green, and 702RS(i,j) which display red can be used as pixel 703(i,j). Furthermore, pixels 702B(i,j), 702G(i,j), and 702RS(i,j) can each be referred to as subpixels (see Figure 3B).

[0150] Furthermore, for example, a pixel that displays white, etc., can be used in addition to the above set of pixels 703(i,j). Also, a pixel that displays cyan, a pixel that displays magenta, and a pixel that displays yellow can be used in pixels 703(i,j).

[0151] Furthermore, for example, a pixel that emits infrared light can be used in addition to the above set for pixel 703(i,j). Specifically, a pixel that emits light including light with wavelengths between 650nm and 1000nm can be used for pixel 703(i,j).

[0152] <Example configuration of the 700 function panel 3> The functional panel described in this embodiment includes a drive circuit GD, a drive circuit SD, and a drive circuit RD (see Figure 3A).

[0153] Example configuration of the drive circuit GD The drive circuit GD has the function of supplying a first selection signal. For example, the drive circuit GD is electrically connected to the conductive film G1(i) and supplies the first selection signal. It can also be electrically connected to the conductive film G2(i) and supply other selection signals.

[0154] 《Example configuration of the SD drive circuit》 The drive circuit SD has the function of supplying image signals and control signals, and the control signals include a first level and a second level. For example, the drive circuit SD is electrically connected to the conductive film S1g(j) and supplies image signals. It can also be electrically connected to the conductive film S2g(j) and supply control signals.

[0155] 《Example configuration of drive circuit RD》 The drive circuit RD has the function of supplying a second to a fourth selection signal. For example, the drive circuit RD is electrically connected to the conductive film RS(i) and supplies a second selection signal, electrically connected to the conductive film TX(i) and supplies a third selection signal, and electrically connected to the conductive film SE(i) and supplies a fourth selection signal.

[0156] <Example configuration of the 700 function panel 4> The functional panel described in this embodiment has a readout circuit RC (see Figure 3A). The functional panel has a conductive film VLEN and a conductive film VIV. The readout circuit RC also includes a readout circuit RC(j). Furthermore, a functional panel according to one aspect of the present invention has a conductive film CAPSEL, a conductive film CDSBIAS, a conductive film CDSVDD, a conductive film CDSVSS, and a conductive film VCL.

[0157] 《Example configuration of the readout circuit RC(j)》 The readout circuit RC(j) includes an amplification circuit and a sampling circuit SC(j) (see Figures 7A and 7B).

[0158] Example of an amplification circuit configuration The amplification circuit includes a transistor M32(j) (see Figure 7A). Transistor M32(j) comprises a gate electrode electrically connected to the conductive film VLEN, a first electrode electrically connected to the conductive film WX(j), and a second electrode electrically connected to the conductive film VIV.

[0159] When switch SW33 is in the conductive state, the conductive film WX(j) connects transistors M31 and M32 (see Figures 5 and 7A). This allows a source follower circuit to be constructed using transistors M31 and M32. Alternatively, the potential of the conductive film WX(j) can be changed based on the potential of node FD.

[0160] 《Example configuration of sampling circuit SC(j)》 The sampling circuit SC(j) includes a first terminal IN(j), a second terminal, and a third terminal OUT(j) (see Figure 7B).

[0161] The first terminal IN(j) is electrically connected to the conductive film WX(j), the second terminal is electrically connected to the conductive film CL, and the third terminal OUT(j) has the function of supplying a signal that changes based on the potential of the first terminal IN(j).

[0162] This allows the imaging signal to be acquired from the pixel circuit 530RS(i,j). Alternatively, a correlated double sampling method can be applied, for example. The difference signal of the pixel circuit 530RS(i,j) can be acquired for each conductive film WX(j). Alternatively, noise can be reduced. As a result, a novel functional panel with superior convenience, usefulness, or reliability can be provided.

[0163] This embodiment can be appropriately combined with other embodiments shown in this specification.

[0164] (Embodiment 3) In this embodiment, the configuration of a functional panel according to one aspect of the present invention will be described with reference to Figures 8 to 11.

[0165] Figure 8 is a diagram illustrating the configuration of a functional panel according to one embodiment of the present invention, and is a cross-sectional view at the cutting lines X1-X2, X3-X4, X9-X10, X11-X12 in Figure 3A and a pair of pixels 703(i,j).

[0166] Figure 9A is a diagram illustrating the configuration of a functional panel according to one embodiment of the present invention, and is a cross-sectional view of pixel 702G(i,j) shown in Figure 3B. Figure 9B is a cross-sectional view illustrating a part of Figure 9A.

[0167] Figure 10A is a diagram illustrating the configuration of a functional panel according to one embodiment of the present invention, and is a cross-sectional view of pixel 702RS(i,j) shown in Figure 3B. Figure 10B is a cross-sectional view illustrating a part of Figure 10A.

[0168] Figure 11A is a diagram illustrating the configuration of a functional panel according to one embodiment of the present invention, and is a cross-sectional view taken along the cutting lines X1-X2 and X3-X4 in Figure 3A. Figure 11B is a diagram illustrating a part of Figure 11A.

[0169] <Example configuration of function panel 700 1> The functional panel 700 described in this embodiment has a functional layer 520 (see Figure 8).

[0170] 《Example Configuration of Functional Layer 520 1》 The functional layer 520 includes a pixel circuit 530RS(i,j), which includes transistors M21 and M31 (see Figures 5, 8, and 10). In other words, the functional layer 520 includes, for example, transistors M21 and M31 of the pixel circuit 530RS(i,j).

[0171] Furthermore, the functional layer 520 includes apertures 591RS and 591G. The pixel circuit 530RS(i,j) is electrically connected to the optical functional device 550RS(i,j) at aperture 591RS (see Figures 8 and 10A). The pixel circuit 530G(i,j) is electrically connected to the light-emitting device 550G(i,j) at aperture 591G (see Figure 8).

[0172] The functional layer 520 includes a drive circuit GD, which includes a transistor MD (see Figures 8 and 11).

[0173] Transistor M21 is equipped with a semiconductor film, and transistor M31 is equipped with a semiconductor film that can be fabricated in the process of forming the semiconductor film equipped with transistor M21.

[0174] Furthermore, transistor MD is equipped with a semiconductor film, and transistor MD is equipped with a semiconductor film that can be fabricated in the process of forming the semiconductor film equipped with transistor M21.

[0175] This allows the pixel circuit 530RS(i,j) to be formed on the functional layer 520. Alternatively, for example, in the process of forming the semiconductor film of the transistors in the pixel circuit 530RS(i,j), the semiconductor film of the transistors in the drive circuit GD can be formed. Alternatively, the manufacturing process of the functional panel can be simplified. As a result, a novel functional panel with superior convenience, usefulness, or reliability can be provided.

[0176] 《Example Configuration of Functional Layer 520 2》 The functional layer 520 includes a drive circuit GD (see Figures 3A and 8). The functional layer 520 includes, for example, a transistor MD used in the drive circuit GD (see Figures 8 and 11A).

[0177] The functional layer 520 includes a drive circuit RD and a readout circuit RC (see Figure 8).

[0178] This allows, for example, the semiconductor film used for the drive circuit GD to be formed in the process of forming the semiconductor film used for the pixel circuit 530RS(i,j). Alternatively, for example, the semiconductor films used for the drive circuit RD and the readout circuit RC can be formed in the process of forming the semiconductor film used for the pixel circuit 530RS(i,j). Alternatively, the manufacturing process of the functional panel can be simplified. As a result, a novel functional panel with superior convenience, usefulness, or reliability can be provided.

[0179] Examples of transistor configurations Bottom-gate or top-gate transistors can be used in the functional layer 520. Specifically, transistors can be used as switches.

[0180] The transistor comprises a semiconductor film 508, a conductive film 504, a conductive film 512A, and a conductive film 512B (see Figure 9B). Alternatively, the transistor comprises a conductive film 512C and a conductive film 512D (see Figure 11B). Alternatively, the transistor comprises a conductive film 512E and a conductive film 512F (see Figure 10B).

[0181] The semiconductor film 508 includes a region 508A that is electrically connected to the conductive film 512A, and a region 508B that is electrically connected to the conductive film 512B. The semiconductor film 508 includes a region 508C between regions 508A and 508B.

[0182] The conductive film 504 has a region that overlaps with region 508C, and the conductive film 504 has the function of a gate electrode.

[0183] The insulating film 506 comprises a region sandwiched between the semiconductor film 508 and the conductive film 504. The insulating film 506 functions as a gate insulating film.

[0184] The conductive film 512A has either the function of a source electrode or a drain electrode, and the conductive film 512B has either the function of a source electrode or a drain electrode.

[0185] Furthermore, the conductive film 524 can be used in a transistor. The conductive film 524 includes a region in which a semiconductor film 508 is sandwiched between it and the conductive film 504. The conductive film 524 functions as a second gate electrode.

[0186] Furthermore, in the process of forming the semiconductor film used for the transistors in the pixel circuit, the semiconductor film used for the transistors in the drive circuit can also be formed. For example, a semiconductor film with the same composition as the semiconductor film used for the transistors in the pixel circuit can be used in the drive circuit.

[0187] 《Example 1 of semiconductor film 508 configuration》 For example, a semiconductor containing elements of Group 14 can be used for the semiconductor film 508. Specifically, a semiconductor containing silicon can be used for the semiconductor film 508.

[0188] [Hydrogenated amorphous silicon] For example, hydrogenated amorphous silicon can be used for the semiconductor film 508. Alternatively, microcrystalline silicon or the like can be used for the semiconductor film 508. This makes it possible to provide a functional panel with less display unevenness than, for example, a functional panel using polysilicon for the semiconductor film 508. Alternatively, it makes it easier to enlarge the functional panel.

[0189] [Polysilicon] For example, polysilicon can be used for the semiconductor film 508. This allows for a higher field-effect mobility of the transistor compared to, for example, a transistor using hydrogenated amorphous silicon for the semiconductor film 508. Alternatively, the driving capability can be increased compared to a transistor using hydrogenated amorphous silicon for the semiconductor film 508. Alternatively, the aperture ratio of the pixels can be improved compared to a transistor using hydrogenated amorphous silicon for the semiconductor film 508.

[0190] Alternatively, for example, the reliability of the transistor can be improved compared to a transistor using hydrogenated amorphous silicon as the semiconductor film 508.

[0191] Alternatively, the temperature required for transistor fabrication can be lowered compared to, for example, transistors using single-crystal silicon.

[0192] Alternatively, the semiconductor film used for the transistors in the drive circuit can be formed using the same process as the semiconductor film used for the transistors in the pixel circuit. Alternatively, the drive circuit can be formed on the same substrate as the substrate on which the pixel circuit is formed. Alternatively, the number of components constituting the electronic device can be reduced.

[0193] [Single-crystal silicon] For example, single-crystal silicon can be used for the semiconductor film 508. This allows for higher resolution than, for example, a functional panel using hydrogenated amorphous silicon for the semiconductor film 508. Alternatively, it is possible to provide a functional panel with less display unevenness than a functional panel using polysilicon for the semiconductor film 508. Alternatively, for example, smart glasses or a head-mounted display can be provided.

[0194] 《Example 2 of the configuration of semiconductor film 508》 For example, a metal oxide can be used for the semiconductor film 508. This allows the pixel circuit to hold the image signal for a longer time compared to a pixel circuit using a transistor with amorphous silicon as the semiconductor film. Specifically, the selection signal can be supplied at a frequency of less than 30 Hz, preferably less than 1 Hz, and more preferably less than once per minute, while suppressing the occurrence of flicker. As a result, fatigue accumulated by the user of the information processing device can be reduced. In addition, power consumption associated with operation can be reduced.

[0195] Furthermore, compared to pixel circuits using transistors with amorphous silicon as the semiconductor film, the pixel circuit can hold the imaging signal for a longer period of time. Specifically, the first selection signal can be supplied at a frequency of less than 30 Hz, preferably less than 1 Hz, and more preferably less than once per minute. As a result, imaging can be performed using a global shutter. In addition, moving subjects can be photographed with reduced distortion.

[0196] For example, transistors using oxide semiconductors can be used. Specifically, oxide semiconductors containing indium, oxide semiconductors containing indium, gallium, and zinc, or oxide semiconductors containing indium, gallium, zinc, and tin. It can be used in semiconductor films.

[0197] For example, a transistor with a smaller leakage current in the off state than a transistor using amorphous silicon as the semiconductor film can be used. Specifically, a transistor using oxide semiconductor as the semiconductor film can be used as a switch, etc. This allows the potential of the floating node to be maintained for a longer time than in a circuit using an amorphous silicon transistor as a switch.

[0198] For example, a 25 nm thick film containing indium, gallium, and zinc can be used as the semiconductor film 508.

[0199] For example, a conductive film can be used as the conductive film 504, which is a laminate of a 10 nm thick film containing tantalum and nitrogen and a 300 nm thick film containing copper. The copper-containing film includes a region where the tantalum and nitrogen-containing film is sandwiched between it and the insulating film 506.

[0200] For example, a laminated film consisting of a 400 nm thick film containing silicon and nitrogen and a 200 nm thick film containing silicon, oxygen, and nitrogen can be used as the insulating film 506. The film containing silicon and nitrogen includes a region between it and the semiconductor film 508 where the film containing silicon, oxygen, and nitrogen is sandwiched.

[0201] For example, a conductive film can be used as conductive film 512A or conductive film 512B if it is made by stacking a 50 nm thick film containing tungsten, a 400 nm thick film containing aluminum, and a 100 nm thick film containing titanium in this order. The tungsten-containing film has a region that is in contact with the semiconductor film 508.

[0202] Incidentally, for example, a manufacturing line for bottom-gate transistors using amorphous silicon as the semiconductor material can be easily converted to a manufacturing line for bottom-gate transistors using oxide semiconductors. Similarly, a manufacturing line for top-gate transistors using polysilicon as the semiconductor material can be easily converted to a manufacturing line for top-gate transistors using oxide semiconductors. In either case, existing manufacturing lines can be effectively utilized.

[0203] This can suppress display flicker, reduce power consumption, display fast-moving videos smoothly, or display photos and other images with rich gradations. As a result, it is possible to provide a novel functional panel with superior convenience, usefulness, and reliability.

[0204] 《Example 3 of the configuration of semiconductor film 508》 For example, compound semiconductors can be used as semiconductors in transistors. Specifically, semiconductors containing gallium arsenide can be used.

[0205] For example, organic semiconductors can be used as semiconductors in transistors. Specifically, organic semiconductors containing polyacenes or graphene can be used as semiconductor films.

[0206] Examples of capacity configurations The capacitance comprises one conductive film, another conductive film, and an insulating film. The insulating film includes a region sandwiched between the one conductive film and the other conductive film.

[0207] For example, a conductive film used for the source or drain electrode of a transistor, a conductive film used for the gate electrode, and an insulating film used for the gate insulating film can be used as capacitance.

[0208] 《Example 3 of Functional Layer 520 Configuration》 The functional layer 520 includes insulating film 521, insulating film 518, insulating film 516, insulating film 506, and insulating film 501C, etc. (see Figures 9A and 9B). Insulating film 521 includes insulating film 521A and insulating film 521B. Insulating film 516 includes insulating film 516A and insulating film 516B.

[0209] The insulating film 521 includes a region sandwiched between the pixel circuit 530G(i,j) and the light-emitting device 550G(i,j).

[0210] The insulating film 518 includes a region sandwiched between the insulating film 521 and the insulating film 501C.

[0211] The insulating film 516 includes a region sandwiched between the insulating film 518 and the insulating film 501C.

[0212] The insulating film 506 includes a region sandwiched between the insulating film 516 and the insulating film 501C.

[0213] [Insulating film 521] For example, insulating inorganic materials, insulating organic materials, or insulating composite materials containing inorganic and organic materials can be used as the insulating film 521.

[0214] Specifically, an inorganic oxide film, an inorganic nitride film, or an inorganic oxidnitride film, or a laminated material obtained by laminating a combination of these, can be used as the insulating film 521.

[0215] For example, films containing silicon oxide films, silicon nitride films, silicon oxynitride films, aluminum oxide films, or laminated materials comprising a combination of these can be used as the insulating film 521. Note that silicon nitride films are dense films and have excellent properties for suppressing the diffusion of impurities.

[0216] For example, the insulating film 521 can be made from polyester, polyolefin, polyamide, polyimide, polycarbonate, polysiloxane, or acrylic resin, or from laminated or composite materials of multiple resins selected from these. Incidentally, polyimide has superior properties compared to other organic materials in terms of thermal stability, insulation, toughness, low dielectric constant, low thermal expansion coefficient, and chemical resistance. For this reason, polyimide can be particularly suitable for use in the insulating film 521.

[0217] Alternatively, the insulating film 521 may be formed using a photosensitive material. Specifically, a film formed using a photosensitive polyimide or a photosensitive acrylic resin can be used as the insulating film 521.

[0218] As a result, the insulating film 521 can flatten steps caused by various structures that overlap it, for example.

[0219] [Insulation film 518] For example, a material that can be used for insulating film 521 can be used for insulating film 518.

[0220] For example, materials that have the function of suppressing the diffusion of oxygen, hydrogen, water, alkali metals, alkaline earth metals, etc., can be used for the insulating film 518. Specifically, nitride insulating films can be used for the insulating film 518. For example, silicon nitride, silicon oxide nitride, aluminum nitride, aluminum oxide nitride, etc., can be used for the insulating film 518. This makes it possible to suppress the diffusion of impurities into the semiconductor film of the transistor.

[0221] [Insulating film 516] For example, a material that can be used for insulating film 521 can be used for insulating film 516.

[0222] Specifically, a film manufactured using a different method than that used for the insulating film 518 can be used for the insulating film 516.

[0223] [Insulating film 506] For example, a material that can be used for insulating film 521 can be used for insulating film 506.

[0224] Specifically, films including silicon oxide film, silicon oxide nitride film, silicon nitride film, silicon nitride film, aluminum oxide film, hafnium oxide film, yttrium oxide film, zirconium oxide film, gallium oxide film, tantalum oxide film, magnesium oxide film, lanthanum oxide film, cerium oxide film, or neodymium oxide film can be used as the insulating film 506.

[0225] [Insulating film 501D] The insulating film 501D includes a region sandwiched between the insulating film 501C and the insulating film 516.

[0226] For example, a material that can be used for insulating film 506 can be used for insulating film 501D.

[0227] [Insulating film 501C] For example, a material that can be used for insulating film 521 can be used for insulating film 501C. Specifically, a material containing silicon and oxygen can be used for insulating film 501C. This makes it possible to suppress the diffusion of impurities into the pixel circuit, light-emitting device 550G(i,j) or optical functional device 550RS(i,j), etc.

[0228] 《Example 4 of the configuration of functional layer 520》 The functional layer 520 comprises a conductive film, wiring, and terminals. Conductive materials can be used for the wiring, electrodes, terminals, conductive film, etc.

[0229] [Wiring etc.] For example, inorganic conductive materials, organic conductive materials, metals, or conductive ceramics can be used for wiring, etc.

[0230] Specifically, metal elements selected from aluminum, gold, platinum, silver, copper, chromium, tantalum, titanium, molybdenum, tungsten, nickel, iron, cobalt, palladium, or manganese can be used for wiring, etc. Alternatively, alloys containing the above-mentioned metal elements can be used for wiring, etc. In particular, alloys of copper and manganese are suitable for microfabrication using the wet etching method.

[0231] Specifically, two-layer structures such as a titanium film laminated on an aluminum film, a titanium film laminated on a titanium nitride film, a tungsten film laminated on a titanium nitride film, a tungsten film laminated on a tantalum nitride or tungsten nitride film, and a three-layer structure consisting of a titanium film, an aluminum film laminated on the titanium film, and a titanium film formed on top of that can be used for wiring and the like.

[0232] Specifically, conductive oxides such as indium oxide, indium tin oxide, indium zinc oxide, zinc oxide, and zinc oxide with added gallium can be used in wiring and other applications.

[0233] Specifically, films containing graphene or graphite can be used for wiring and the like.

[0234] For example, a graphene-containing film can be formed by creating a film containing graphene oxide and then reducing the graphene oxide-containing film. Methods of reduction include applying heat or using a reducing agent.

[0235] For example, a film containing metal nanowires can be used for wiring and the like. Specifically, nanowires containing silver can be used.

[0236] Specifically, conductive polymers can be used in wiring and other applications.

[0237] For example, terminal 519B can be electrically connected to the flexible printed circuit board FPC1 using a conductive material (see Figure 8). Specifically, terminal 519B can be electrically connected to the flexible printed circuit board FPC1 using a conductive material CP.

[0238] <Example configuration of the 700 function panel 2> Furthermore, the functional panel 700 comprises a base material 510, a base material 770, and a sealing material 705 (see Figure 9A). The functional panel 700 also comprises a structure KB.

[0239] 《Base material 510, base material 770》 A translucent material can be used for the base material 510 or the base material 770.

[0240] For example, a flexible material can be used for the base material 510 or base material 770. This makes it possible to provide a functional panel with flexibility.

[0241] For example, materials with a thickness of 0.7 mm or less and 0.1 mm or more can be used. Specifically, materials polished to a thickness of about 0.1 mm can be used. This allows for a reduction in weight.

[0242] Incidentally, glass substrates of the 6th generation (1500mm x 1850mm), 7th generation (1870mm x 2200mm), 8th generation (2200mm x 2400mm), 9th generation (2400mm x 2800mm), and 10th generation (2950mm x 3400mm) can be used as base material 510 or base material 770. This makes it possible to manufacture large-scale display devices.

[0243] Organic materials, inorganic materials, or composite materials such as organic and inorganic materials can be used as the base material 510 or base material 770.

[0244] For example, inorganic materials such as glass, ceramics, and metals can be used. Specifically, alkali-free glass, soda-lime glass, potash glass, crystal glass, aluminosilicate glass, tempered glass, chemically strengthened glass, quartz, or sapphire can be used for the base material 510 or base material 770. Alternatively, aluminosilicate glass, tempered glass, chemically strengthened glass, or sapphire can be suitably used for the base material 510 or base material 770 located on the side of the functional panel closest to the user. This prevents damage and scratches to the functional panel during use.

[0245] Specifically, inorganic oxide films, inorganic nitride films, or inorganic oxynitride films can be used. For example, silicon oxide films, silicon nitride films, silicon oxynitride films, aluminum oxide films, etc., can be used. Stainless steel or aluminum, etc., can be used as the base material 510 or base material 770.

[0246] For example, single-crystal semiconductor substrates made of silicon or silicon carbide, polycrystalline semiconductor substrates, compound semiconductor substrates such as silicon germanium, SOI substrates, etc., can be used as the base material 510 or base material 770. This allows semiconductor devices to be formed on the base material 510 or base material 770.

[0247] For example, organic materials such as resins, resin films, or plastics can be used as the base material 510 or base material 770. Specifically, materials containing resins having siloxane bonds, such as polyester, polyolefin, polyamide (nylon, aramid, etc.), polyimide, polycarbonate, polyurethane, acrylic resin, epoxy resin, or silicone, can be used as the base material 510 or base material 770. For example, resin films, resin plates, or laminated materials containing these materials can be used. This can reduce weight. Alternatively, it can reduce the frequency of damage caused by drops, for example.

[0248] Specifically, polyethylene terephthalate (PET), polyethylene naphthalate (PEN), polyethersulfone (PES), cycloolefin polymer (COP), or cycloolefin copolymer (COC) can be used as the base material 510 or base material 770.

[0249] For example, a composite material obtained by laminating a film of a metal plate, a thin glass plate, or an inorganic material with a resin film can be used as the base material 510 or base material 770. For example, a composite material obtained by dispersing fibrous or particulate metal, glass, or inorganic material in a resin can be used as the base material 510 or base material 770. For example, a composite material obtained by dispersing fibrous or particulate resin or organic material in an inorganic material can be used as the base material 510 or base material 770.

[0250] Furthermore, a single-layer material or a material with multiple layers can be used for the substrate 510 or substrate 770. For example, a material with an insulating film laminated on it can be used. Specifically, a material with one or more films selected from silicon oxide layers, silicon nitride layers, or silicon oxynitride layers laminated on it can be used. This can prevent, for example, the diffusion of impurities contained in the substrate. Alternatively, it can prevent the diffusion of impurities contained in the glass or resin. Alternatively, it can prevent the diffusion of impurities that permeate the resin.

[0251] Also, paper, wood, etc. can be used for the base material 510 or the base material 770.

[0252] For example, a material having heat resistance sufficient to withstand the heat treatment during the manufacturing process can be used for the base material 510 or the base material 770. Specifically, a material having heat resistance to the heat applied during the manufacturing process of directly forming a transistor, capacitor, etc. can be used for the base material 510 or the base material 770.

[0253] For example, an insulating film, a transistor, a capacitor, etc. can be formed on a process substrate having heat resistance to the heat applied during the manufacturing process, and the formed insulating film, transistor, capacitor, etc. can be transferred to, for example, the base material 510 or the base material 770. Thereby, for example, an insulating film, a transistor, a capacitor, etc. can be formed on a flexible substrate.

[0254] 《Sealing material 705》 The sealing material 705 includes a region sandwiched between the functional layer 520 and the base material 770, and has a function of bonding the functional layer 520 and the base material 770 (see FIG. 9A).

[0255] An inorganic material, an organic material, a composite material of an inorganic material and an organic material, etc. can be used for the sealing material 705.

[0256] For example, an organic material such as a heat-melting resin or a curable resin can be used for the sealing material 705.

[0257] For example, an organic material such as a reaction-curing adhesive, a photo-curing adhesive, a heat-curing adhesive or / and an anaerobic adhesive can be used for the sealing material 705.

[0258] Specifically, an adhesive containing an epoxy resin, an acrylic resin, a silicone resin, a phenolic resin, a polyimide resin, an imide resin, a PVC (polyvinyl chloride) resin, a PVB (polyvinyl butyral) resin, an EVA (ethylene vinyl acetate) resin, etc. can be used for the sealing material 705.

[0259] 《Structural body KB》 The structural body KB includes a region sandwiched between the functional layer 520 and the base material 770. Further, the structural body KB has a function of providing a predetermined gap between the functional layer 520 and the base material 770. Note that a colored material can be used for the structural body KB. Thereby, stray light can be absorbed.

[0260] <Configuration example 3 of the functional panel 700> The functional panel 700 has an insulating film 528 and an insulating film 573 (see FIG. 9A).

[0261] 《Insulating film 528》 The insulating film 528 includes a region sandwiched between the functional layer 520 and the base material 770, and the insulating film 528 has an opening in a region overlapping with the light-emitting device 550G(i,j) and the optical functional device 550RS(i,j) (see FIG. 9A).

[0262] For example, materials that can be used for the insulating film 521 can be used for the insulating film 528. Specifically, a silicon oxide film, a film containing an acrylic resin, a film containing polyimide, or the like can be used for the insulating film 528.

[0263] 《Insulating film 573》 The insulating film 573 includes a region sandwiching the light-emitting device 55G(i,j) and the optical functional device 550RS(i,j) between it and the functional layer 520 (see FIG. 9A).

[0264] For example, a laminated film formed by laminating a single film or a plurality of films can be used for the insulating film 5T3. Specifically, a laminated film obtained by laminating an insulating film 573A that can be formed in a manner that is difficult to damage the light-emitting device 550G(i,j) and the optical functional device 550RS(i,j) and a dense insulating film 573B with few defects can be used for the insulating film 573.

[0265] This makes it possible to suppress the diffusion of impurities into the light-emitting device 550G(i,j) and the optical functional device 550RS(i,j). Alternatively, it is possible to improve the reliability of the light-emitting device 550G(i,j) and the optical functional device 550RS(i,j).

[0266] <Example configuration of the 700 function panel 4> The functional panel 700 includes a functional layer 720 (see Figure 9A).

[0267] Functional Layer 720 The functional layer 720 comprises a light-shielding film BM, a colored film CF(G), and an insulating film 771. A color conversion layer may also be used.

[0268] 《Light blocking film BM》 The light-shielding film BM has an aperture in the region overlapping with pixel 702G(i,j). Additionally, the light-shielding film BM has an aperture in the region overlapping with pixel 702RS(i,j) (see Figure 9A).

[0269] For example, dark-colored materials can be used in the light-shielding film BM. This can improve the contrast of the display.

[0270] 《Colored film CF(G)》 The colored film CF(G) comprises a region sandwiched between the substrate 770 and the light-emitting device 550G(i,j). For example, a material that selectively transmits light of a predetermined color can be used for the colored film CF(G). Specifically, a material that transmits red light, green light, or blue light can be used for the colored film CF(G).

[0271] 《Example of the configuration of insulating film 771》 The insulating film 771 includes a region sandwiched between the substrate 770 and the light-emitting device 550G(i,j).

[0272] The insulating film 771 includes a region between it and the substrate 770 in which a light-shielding film BM, a colored film CF(G), or a color conversion layer is sandwiched. This makes it possible to flatten the irregularities caused by the thickness of the light-shielding film BM, the colored film CF(G), or the color conversion layer.

[0273] <Configuration Example 5 of Function Panel 700> The function panel 700 includes a functional film 770P or the like (see FIG. 9A).

[0274] 《Functional Film 770P etc.》 The functional film 770P includes a region that overlaps with the light-emitting device 550G(i,j).

[0275] For example, an antireflection film, a polarizing film, a retardation film, a light diffusion film, a condensing film, or the like can be used for the functional film 770P.

[0276] For example, an antireflection film with a thickness of 1 μm or less can be used for the functional film 770P. Specifically, a laminated film in which three or more, preferably five or more, more preferably fifteen or more dielectric layers are laminated can be used for the functional film 770P. Thereby, the reflectance can be suppressed to 0.5% or less, preferably 0.08% or less.

[0277] For example, a circularly polarizing film can be used for the functional film 770P.

[0278] In addition, an antistatic film that suppresses the adhesion of dust, a water-repellent film that makes it difficult for dirt to adhere, an oil-repellent film that makes it difficult for dirt to adhere, an antireflection film (anti-reflection film), a non-gloss treatment film (anti-glare film), a hard coat film that suppresses the occurrence of scratches during use, a self-healing film in which the generated scratches are repaired, or the like can be used for the functional film 770P.

[0279] Note that this embodiment can be appropriately combined with other embodiments shown in this specification.

[0280] (Embodiment 4) In this embodiment, the configuration of the function panel according to one aspect of the present invention will be described with reference to FIGS. 12 to 13.

[0281] Figure 12A is a block diagram illustrating the configuration of a functional panel according to one embodiment of the present invention, and Figure 12B is a block diagram illustrating a part of Figure 12A.

[0282] Figure 13 is a diagram illustrating the operation of a functional panel according to one embodiment of the present invention.

[0283] <Example configuration of function panel 700 1> The functional panel 700 described in this embodiment has a region 231 (see Figure 12).

[0284] 《Example of configuration for area 231》 Region 231 comprises a group of one set of pixels 703(i,1) to one set of pixels 703(i,n) and another group of one set of pixels 703(1,j) to one set of pixels 703(m,j). Region 231 also comprises conductive films G1(i), TX(i), S1g(j), and WX(j).

[0285] A group of pixels 703(i,1) to a group of pixels 703(i,n) are arranged in the row direction (the direction indicated by arrow R1 in the figure), and a group of pixels 703(i,1) to a group of pixels 703(i,n) includes a pair of pixels 703(i,j).

[0286] Furthermore, a group of pixels 703(i,1) to a group of pixels 703(i,n) are electrically connected to the conductive film G1(i). Also, a group of pixels 703(i,1) to a group of pixels 703(i,n) are electrically connected to the conductive film TX(i).

[0287] Another group of pixels, from a set of pixels 703(1,j) to a set of pixels 703(m,j), are arranged in the column direction intersecting the row direction (indicated by arrow C1 in the figure), and each of the other group of pixels, from a set of pixels 703(1,j) to a set of pixels 703(m,j), includes a set of pixels 703(i,j).

[0288] Furthermore, a pair of pixels 703(1,j) or a pair of pixels 703(m,j) in another group are electrically connected to the conductive film S1g(j). Also, a pair of pixels 703(1,j) or a pair of pixels 703(m,j) in another group are electrically connected to the conductive film WX(j).

[0289] This allows image information to be supplied to multiple pixels, or imaging information to be acquired from multiple pixels. As a result, a novel functional panel with superior convenience, usefulness, and reliability can be provided.

[0290] 《Example of configuration for area 231 2》 Region 231 comprises a group of pixels consisting of 500 or more pixels per inch. It also comprises a group of pixels consisting of 1000 or more pixels per inch, preferably 5000 or more pixels, and more preferably 10000 or more pixels. This allows for, for example, the reduction of the screen door effect. Note that a group of pixels includes pixel 703(i,j).

[0291] 《Example of configuration for area 231 3》 Region 231 contains multiple pixels arranged in a matrix. For example, region 231 contains 7600 or more pixels in the row direction and 4300 or more pixels in the column direction. Specifically, it contains 7680 pixels in the row direction and 4320 pixels in the column direction.

[0292] This allows for the display of high-resolution images. As a result, it is possible to provide a new functional panel that is superior in terms of convenience and reliability.

[0293] 《Example of configuration for area 231 4》 Region 231 has a diagonal length of 40 inches or more, preferably 60 inches or more, and more preferably 80 inches or more. Furthermore, if the diagonal length of region 231 is, for example, 150 inches or less, it is preferable because this reduces the weight.

[0294] This allows for the display of immersive images. As a result, it is possible to provide a new functional panel that is superior in terms of convenience and reliability.

[0295] <Example configuration of the 700 function panel 2> Furthermore, a functional panel 700 in one embodiment of the present invention includes a group of sampling circuits SC, a multiplexer MUX, an amplification circuit AMP, and an analog-to-digital conversion circuit ADC (see Figure 12A). The group of sampling circuits SC includes a sampling circuit SC(j).

[0296] This allows a sampling circuit SC(j) to be provided for each conductive film WX(j). The difference signal of the pixel circuit 530RS(i,j) can be acquired for each conductive film WX(j). Alternatively, the operating frequency of the sampling circuit SC(j) can be suppressed. Alternatively, noise can be reduced. As a result, a novel functional panel with superior convenience or reliability can be provided.

[0297] 《Example configuration of a multiplexer MUX》 The multiplexer MUX has the function of selecting one sampling circuit from a group to acquire the imaging signal. For example, the multiplexer MUX selects sampling circuit SC(j) to acquire the imaging signal.

[0298] Specifically, the multiplexer MUX is electrically connected to sampling circuits SC(1) through SC(9), and selects one to acquire the imaging signal (see Figure 12B). For example, it is electrically connected to the third terminal OUT(9) of sampling circuit SC(9).

[0299] Furthermore, the multiplexer MUX is electrically connected to the amplification circuit AMP and has the function of supplying the acquired imaging signal.

[0300] This allows for the selection of a predetermined pixel from multiple pixels arranged in the row direction, or the acquisition of imaging information from a predetermined pixel. Alternatively, it allows for the suppression of the number of imaging signals acquired simultaneously by using multiple multiplexers. Furthermore, it enables the use of an analog-to-digital converter (ADC) with fewer input channels compared to the number of pixels arranged in the row direction. As a result, a novel functional panel with superior convenience, usefulness, and reliability can be provided.

[0301] Example of an amplifier circuit (AMP) configuration The amplification circuit (AMP) can amplify the imaging signal and supply it to the analog-to-digital conversion circuit (ADC).

[0302] The functional layer 520 includes a multiplexer (MUX) and an amplification circuit (AMP).

[0303] This allows, for example, the formation of semiconductor films used in the pixel circuit 530G(i,j) to be used in the process of forming the semiconductor film used in the multiplexer MUX and the amplifier circuit AMP. Alternatively, the fabrication process of the functional panel can be simplified. As a result, a novel functional panel with superior convenience, usefulness, or reliability can be provided.

[0304] Example of Analog-to-Digital Converter (ADC) Configuration An analog-to-digital converter (ADC) has the function of converting analog imaging signals into digital signals. This suppresses the degradation of the imaging signal during transmission.

[0305] <Example configuration of the 700 function panel 3> Furthermore, a functional panel 700 according to one embodiment of the present invention includes a drive circuit GD, a drive circuit RD, and a pair of pixels 703(i,j). The drive circuit GD has the function of supplying a first selection signal, and the drive circuit RD has the function of supplying a third selection signal and a fourth selection signal.

[0306] 《Example of pixel 703(i,j) configuration 1》 A pair of pixels 703(i,j) are supplied with a third and a fourth selection signal during the period when the first selection signal is not supplied (see Figure 13). The pixel circuit 530RS(i,j) acquires an imaging signal based on the third selection signal and supplies an imaging signal based on the fourth selection signal.

[0307] For example, a first selection signal can be supplied using conductive film G1(i), a third selection signal using conductive film TX(i), and a fourth selection signal using conductive film SE(i) (see Figure 5).

[0308] Furthermore, the operation of supplying a third selection signal and causing the pixel circuit 530RS(i,j) to acquire the imaging signal can be called "imaging" (see Figure 13). Also, the operation of reading the imaging signal from the pixel circuit 530RS(i,j) can be called "readout". In addition, the operation of supplying a predetermined voltage to the optical functional device 550RS(i,j) can be called "initialization", the operation of exposing the optical functional device 550RS(i,j) to light for a predetermined period after initialization can be called "exposure", and the operation of reflecting the voltage changed due to exposure to the pixel circuit 530RS(i,j) can be called "transfer". Also, in the figure, SRS corresponds to the operation of supplying a reference signal used in correlated double sampling, and "output" corresponds to the operation of supplying an imaging signal.

[0309] For example, it can write image information for one frame in 16.7ms. Specifically, it can operate at a frame rate of 60Hz. Furthermore, the image signal can be written to the pixel circuit 530G(i,j) in 15.2μs.

[0310] For example, image information from one frame can be stored for a period equivalent to 16 frames. Alternatively, imaging information from one frame can be captured and retrieved for a period equivalent to 16 frames.

[0311] Specifically, initialization can be performed in 15 μs, exposure in 1 ms to 5 ms, and data transfer in 150 μs. Alternatively, data can be read out in 250 ms.

[0312] This allows imaging to be performed during periods when the first selection signal is not supplied, or to suppress noise during imaging. Alternatively, it allows reading the imaging signal during periods when the first selection signal is not supplied, or to suppress noise during reading. As a result, a novel functional panel with superior convenience, usefulness, or reliability can be provided.

[0313] 《Example of pixel 703(i,j) configuration 2》 Pixel 703(i,j) is supplied with a third selection signal during the period in which it holds one image signal. For example, during the period in which pixel circuit 530G(i,j) holds one image signal, pixel 703(i,j) can emit light based on that image signal using light-emitting device 550G(i,j) (see Figure 13). Alternatively, after pixel circuit 530G(i,j) acquires one image signal based on a first selection signal, and before it is supplied with the first selection signal again, pixel circuit 530RS(i,j) is supplied with a third selection signal.

[0314] This allows the intensity of light emitted by the light-emitting device 550G(i,j) to be controlled using the image signal. Alternatively, the subject can be illuminated with light of controlled intensity. Alternatively, the subject can be imaged using the optical functional device 550RS(i,j). Alternatively, the subject can be imaged using the optical functional device 550RS(i,j) while controlling the intensity of the illuminating light. Alternatively, the influence on the imaging signal caused by the change in the signal held by the pixel circuit 530G(i,j) from one image signal to another can be eliminated. As a result, a novel functional panel with superior convenience, usefulness, and reliability can be provided.

[0315] This embodiment can be appropriately combined with other embodiments shown in this specification.

[0316] (Embodiment 5) In this embodiment, the configuration of a display device according to one aspect of the present invention will be described with reference to the figures.

[0317] Figure 14A is a block diagram of a display device according to one embodiment of the present invention, and Figures 14B to 14D are perspective views illustrating the external appearance of the display device according to one embodiment of the present invention.

[0318] <Example of display device configuration> The display device described in this embodiment includes a control unit 238 and a function panel 700 (see Figure 14A).

[0319] 《Example of configuration of the control unit 238 1》 The control unit 238 is supplied with image information VI and control information CI. For example, a clock signal or timing signal can be used as the control information CI.

[0320] The control unit 238 generates information based on image information VI, and the control unit 238 generates control signals based on control information CI. The control unit 238 also supplies information and control signals.

[0321] For example, the information includes 8 bits or more, preferably 12 bits or more, for gradation. Also, for example, the clock signal or start pulse of a shift register used in the drive circuit can be used as the control signal.

[0322] 《Example of configuration of control unit 238 2》 For example, the stretching circuit 234 and the image processing circuit 235 can be used in the control unit 238.

[0323] 《Extension circuit 234》 The decompression circuit 234 has the function of decompressing the image information VI that is supplied in a compressed state. The decompression circuit 234 includes a storage unit. The storage unit has the function of storing, for example, the decompressed image information.

[0324] Image processing circuit 235 The image processing circuit 235 includes, for example, a memory area. The memory area has the function of storing, for example, information contained in the image information VI.

[0325] The image processing circuit 235 includes, for example, a function to correct image information VI based on a predetermined characteristic curve to generate information, and a function to supply information.

[0326] 《Example Configuration of Function Panel 700 1》 The function panel 700 is supplied with information and control signals. For example, the function panel 700 described in any one of Embodiments 2 to 4 can be used.

[0327] 《Example configuration of pixel 703(i,j)》 Pixel 703(i,j) is displayed based on the information.

[0328] This allows image information VI to be displayed using the optical functional device 550RS(i,j). As a result, a novel display device with superior convenience, usefulness, or reliability can be provided. Alternatively, for example, an information terminal (see Figure 14B), a video display system (see Figure 14C), or a computer (see Figure 14D) can be provided.

[0329] 《Example Configuration of Function Panel 700 2》 For example, the function panel 700 includes a drive circuit and a control circuit.

[0330] 《Drive Circuit》 The drive circuit operates based on a control signal. By using a control signal, the operation of multiple drive circuits can be synchronized (see Figure 14A).

[0331] For example, the drive circuit GD can be used in the function panel 700. The drive circuit GD is supplied with a control signal and has the function of supplying a first selection signal.

[0332] Furthermore, for example, the drive circuit SD can be used in the function panel 700. The drive circuit SD is supplied with control signals and information, and can supply image signals.

[0333] Furthermore, for example, the drive circuit RD can be used in the function panel 700. The drive circuit RD is supplied with control signals and can supply a second to a fourth selection signal.

[0334] Furthermore, for example, the readout circuit RC can be used in the function panel 700. The readout circuit RC is supplied with a control signal and can read out the imaging signal using, for example, correlated double sampling.

[0335] Control circuit A control circuit has the function of generating and supplying control signals. For example, clock signals or timing signals can be used as control signals.

[0336] Specifically, a control circuit formed on a rigid substrate can be used in a functional panel. Alternatively, a control circuit formed on a rigid substrate can be electrically connected to the control unit 238 using a flexible printed circuit board.

[0337] For example, the timing controller 233 can be used in the control circuit. Furthermore, the operation of the drive circuit RD and the readout circuit RC can be synchronized using the control circuit 243.

[0338] This embodiment can be appropriately combined with other embodiments shown in this specification.

[0339] (Embodiment 6) In this embodiment, the configuration of an input / output device according to one aspect of the present invention will be described with reference to the figures.

[0340] Figure 15 is a block diagram illustrating the configuration of an input / output device according to one embodiment of the present invention.

[0341] <Example of Input / Output Device Configuration 1> The input / output device described in this embodiment has an input unit 240 and a display unit 230 (see Figure 15).

[0342] 《Example of the configuration of the display unit 230 1》 The display unit 230 includes a function panel 700. For example, the function panel 700 described in any one of Embodiments 2 to 4 can be used in the display unit 230. The configuration having an input unit 240 and a display unit 230 can be referred to as the function panel 700TP.

[0343] 《Example of the configuration of the input unit 240 1》 The input unit 240 includes a detection area 241. The input unit 240 detects objects that are close to the detection area 241.

[0344] The detection area 241 includes an area that overlaps with pixel 703(i,j).

[0345] This allows for the detection of objects approaching an area overlapping with the display unit 230 while displaying image information using the display unit 230. Alternatively, position information can be input by using a finger or other object brought close to the display unit 230 as a pointer. Or, position information can be associated with the image information displayed on the display unit 230. As a result, a novel input / output device with superior convenience, usefulness, and reliability can be provided.

[0346] 《Example of configuration of detection area 241 1》 The detection area 241 includes, for example, one or more detectors.

[0347] The detection region 241 includes a group of detectors 802(g,1) to 802(g,q) and another group of detectors 802(1,h) to 802(p,h). g is an integer between 1 and p, h is an integer between 1 and q, and p and q are integers greater than or equal to 1.

[0348] A group of detectors 802(g,1) to 802(g,q) includes detector 802(g,h), is arranged in the row direction (indicated by arrow R2 in the figure), and is electrically connected to the conductive film CL(g). The direction indicated by arrow R2 may be the same as or different from the direction indicated by arrow R1.

[0349] Furthermore, another group of detectors 802(1,h) to detectors 802(p,h) include detector 802(g,h), are arranged in the column direction intersecting the row direction (indicated by arrow C2 in the figure), and are electrically connected to wiring ML(h).

[0350] Detector The detector has the function of detecting a nearby pointer. For example, a finger or a stylus pen can be used as the pointer. For example, a metal piece or a coil can be used as the stylus pen.

[0351] Specifically, capacitive proximity sensors, electromagnetic induction proximity sensors, optical proximity sensors, and resistive proximity sensors can be used as detectors.

[0352] Furthermore, multiple types of detectors can be used in combination. For example, a finger detector and a stylus pen detector can be used together.

[0353] This allows the type of pointer to be determined. Alternatively, different commands can be associated with the detected information based on the determined pointer type. Specifically, if it is determined that a finger was used as the pointer, the detected information can be associated with a gesture. Or, if it is determined that a stylus pen was used as the pointer, the detected information can be associated with a drawing process.

[0354] Specifically, a finger can be detected using a capacitive, pressure-sensitive, or optical proximity sensor. Alternatively, a stylus pen can be detected using an electromagnetic induction or optical proximity sensor.

[0355] 《Example of the configuration of the input unit 240 2》 The input section 240 includes an oscillator circuit OSC and a detection circuit DC (see Figure 15).

[0356] The oscillator circuit (OSC) supplies a search signal to the detector 802(g,h). For example, a square wave, sawtooth wave, triangle wave, sine wave, etc., can be used as the search signal.

[0357] The detector 802(g,h) generates and supplies a detection signal that changes based on the distance to the pointer adjacent to the detector 802(g,h) and the search signal.

[0358] The detection circuit DC supplies input information based on the detection signal.

[0359] This allows for the detection of the distance from a nearby pointer to the detection area 241. Alternatively, it allows for the detection of the closest position of the pointer within the detection area 241.

[0360] This embodiment can be appropriately combined with other embodiments shown in this specification.

[0361] (Embodiment 7) In this embodiment, the configuration of an information processing device according to one aspect of the present invention will be described with reference to the figures.

[0362] Figure 16A is a block diagram illustrating the configuration of an information processing device according to one embodiment of the present invention. Figures 16B and 16C are projection views illustrating an example of the external appearance of the information processing device.

[0363] Figure 17A is a flowchart illustrating the main processing of a program according to one embodiment of the present invention, and Figure 17B is a flowchart illustrating interrupt processing.

[0364] Figure 18A is a flowchart illustrating the interrupt handling of a program according to one embodiment of the present invention. Figure 18B is a schematic diagram illustrating the operation of an information processing apparatus according to one embodiment of the present invention, and Figure 18C is a timing chart illustrating the operation of an information processing apparatus according to one embodiment of the present invention.

[0365] Figure 19A is a flowchart illustrating an interrupt handling process different from the one shown in Figure 17B. Figure 19B is a schematic diagram illustrating the operation of the program shown in Figure 19A, and Figure 19C is a schematic diagram of a captured fingerprint.

[0366] Figure 20A is a flowchart illustrating an interrupt handling process different from the one shown in Figure 17B. Figures 20B through 20D are schematic diagrams illustrating the operation of the program shown in Figure 20A.

[0367] <Example of Information Processing Device Configuration 1> The information processing device described in this embodiment includes an arithmetic unit 210 and an input / output device 220 (see Figure 16A). The input / output device 220 is electrically connected to the arithmetic unit 210. The information processing device 200 may also be provided with a housing (see Figures 16B and 16C).

[0368] 《Example of Configuration of the Calculation Unit 210》 The arithmetic unit 210 is supplied with input information II or detection information DS. Based on the input information II or detection information DS, the arithmetic unit 210 generates control information CI and image information VI, and supplies the control information CI and image information VI.

[0369] The arithmetic unit 210 comprises an arithmetic unit 211 and a storage unit 212. The arithmetic unit 210 also comprises a transmission line 214 and an input / output interface 215.

[0370] The transmission line 214 is electrically connected to the arithmetic unit 211, the storage unit 212, and the input / output interface 215.

[0371] 《Calculation section 211》 The arithmetic unit 211 includes, for example, a function for executing a program.

[0372] 《Storage section 212》 The storage unit 212 has the function of storing, for example, a program executed by the arithmetic unit 211, initial information, setting information, or images.

[0373] Specifically, hard disks, flash memory, or memory using transistors containing oxide semiconductors can be used.

[0374] Input / output interface 215, transmission path 214 The input / output interface 215 is equipped with terminals or wiring and has the function of supplying and receiving information. For example, it can be electrically connected to the transmission line 214. It can also be electrically connected to the input / output device 220.

[0375] The transmission line 214 is equipped with wiring and has the function of supplying and receiving information. For example, it can be electrically connected to the input / output interface 215. It can also be electrically connected to the arithmetic unit 211, the storage unit 212, or the input / output interface 215.

[0376] 《Example configuration of input / output device 220》 Input / output device 220 supplies input information II and detection information DS. Input / output device 220 is also supplied with control information CI and image information VI (see Figure 16A).

[0377] For example, keyboard scan codes, location information, button operation information, audio information, or image information can be used as input information II. Alternatively, for example, illumination information, posture information, acceleration information, orientation information, pressure information, temperature information, or humidity information of the environment in which the information processing device 200 is used can be used as detection information DS.

[0378] For example, signals that control the brightness, saturation, and hue of the image information VI can be used in the control information CI. Alternatively, signals that change the display of a part of the image information VI can be used in the control information CI.

[0379] The input / output device 220 includes a display unit 230, an input unit 240, and a detection unit 250. For example, the input / output device described in Embodiment 4 can be used for the input / output device 220. The input / output device 220 may also include a communication unit 290.

[0380] [Example of the configuration of the display unit 230] The display unit 230 displays image information VI based on control information CI. For example, the display device described in Embodiment 3 can be used as the display unit 230.

[0381] [Example configuration of input unit 240] The input unit 240 generates input information II. For example, the input unit 240 has a function to supply location information P1.

[0382] For example, a human interface can be used in the input unit 240 (see Figure 16A). Specifically, a keyboard, mouse, touch sensor, microphone, or camera can be used in the input unit 240.

[0383] Furthermore, a touch sensor having an area that overlaps with the display unit 230 can be used. An input / output device comprising the display unit 230 and a touch sensor having an area that overlaps with the display unit 230 can be referred to as a touch panel or touch screen.

[0384] For example, a user can use their finger touching the touch panel as a pointer to perform various gestures (such as tapping, dragging, swiping, or pinching in).

[0385] For example, the arithmetic unit 210 analyzes information such as the position or trajectory of a finger in contact with the touch panel, and when the analysis result satisfies predetermined conditions, it can be determined that a predetermined gesture has been supplied. This allows the user to supply a predetermined operation command, which is pre-associated with the predetermined gesture, using that gesture.

[0386] For example, a user can issue a "scroll command" to change the display position of image information using a gesture of moving their finger along the touch panel.

[0387] Furthermore, the user can issue a "drag command" to pull out and display the navigation panel NP at the edge of area 231 using a gesture of moving a finger touching the edge of area 231 (see Figure 16C). The user can also issue a "leaf-through command" to display the index image IND, parts of other pages, or thumbnail images TN of other pages in a predetermined order on the navigation panel NP using a gesture of moving the position of the finger pressing down firmly, or by using the pressure of the finger pressing down. This allows the user to turn the pages of the ebook as if flipping through the pages of a paper book, or to find a specific page by relying on the thumbnail image TN or index image IND.

[0388] [Example configuration of detection unit 250] The detection unit 250 generates detection information DS. For example, the detection unit 250 has a function to detect the illuminance of the environment in which the information processing device 200 is used, and a function to supply illuminance information.

[0389] The detection unit 250 has the function of detecting the surrounding conditions and supplying detection information. Specifically, it can supply illuminance information, attitude information, acceleration information, orientation information, pressure information, temperature information, or humidity information, etc.

[0390] For example, the detection unit 250 can use a photodetector, attitude detector, acceleration sensor, compass sensor, GPS (Global Positioning System) signal receiving circuit, pressure-sensitive switch, pressure sensor, temperature sensor, humidity sensor, or camera.

[0391] 《Communications Section 290》 The communications unit 290 has the function of supplying information to the network and acquiring information from the network.

[0392] Cabinet The enclosure also has the function of housing the input / output device 220 or the arithmetic unit 210. Alternatively, the enclosure has the function of supporting the display unit 230 or the arithmetic unit 210.

[0393] This allows for the generation of control information CI based on input information II or detection information DS. Alternatively, image information VI can be displayed based on input information II or detection information DS. Alternatively, the information processing device can operate by understanding the intensity of light received by the device's casing in the environment in which it is used. Alternatively, the user of the information processing device can select a display method. As a result, a novel information processing device with superior convenience, usefulness, or reliability can be provided.

[0394] These components cannot be clearly separated, and one component may serve as a part of another, or may include parts of other components. For example, a touch panel, in which a touch sensor is superimposed on a display panel, is both a display unit and an input unit.

[0395] 《Example Configuration of the Calculation Unit 210 2》 The computing unit 210 includes an artificial intelligence unit 213 (see Figure 16A).

[0396] The artificial intelligence unit 213 is supplied with input information II or detection information DS, and the artificial intelligence unit 213 infers control information CI based on the input information II or detection information DS. The artificial intelligence unit 213 also supplies the control information CI.

[0397] This makes it possible to generate control information CIs that are displayed in a way that feels preferable, or to display them in a way that feels preferable, or to generate control information CIs that are displayed in a way that feels comfortable, or to display them in a way that feels comfortable. As a result, it is possible to provide a novel information processing device that is superior in convenience, usefulness, or reliability.

[0398] [Natural language processing on input information II] Specifically, the artificial intelligence unit 213 can perform natural language processing on the input information II and extract a single feature from the entire input information II. For example, the artificial intelligence unit 213 can infer emotions or other emotions embedded in the input information II and make them a feature. It can also infer colors, patterns, or fonts that are empirically perceived as suitable for that feature. Furthermore, the artificial intelligence unit 213 can generate information specifying the color, pattern, or font of the characters, or the color or pattern of the background, and use this information in the control information CI.

[0399] Specifically, the artificial intelligence unit 213 can perform natural language processing on the input information II and extract some of the words contained in the input information II. For example, the artificial intelligence unit 213 can extract grammatical errors, factual errors, or expressions containing emotions. Furthermore, the artificial intelligence unit 213 can generate control information CI that displays the extracted portion in a different color, pattern, or font from the other portion.

[0400] [Image processing for input information II] Specifically, the artificial intelligence unit 213 can process the input information II as an image and extract a feature from it. For example, the artificial intelligence unit 213 can infer the year the input information II was taken, whether it was indoors or outdoors, and whether it was day or night, and use these as features. It can also infer a color tone that is empirically considered suitable for that feature and generate control information CI for using that color tone in the display. Specifically, information specifying the color to be used to represent shades (e.g., full color, black and white, or brown) can be used in the control information CI.

[0401] Specifically, the artificial intelligence unit 213 can process the input information II to extract a portion of the image contained in the input information II. For example, it can generate control information CI that displays a boundary between a portion of the extracted image and another portion. More specifically, it can generate control information CI that displays a rectangle surrounding a portion of the extracted image.

[0402] [Inference using detection information DS] Specifically, the artificial intelligence unit 213 can perform inference using the detection information DS. Alternatively, based on the inference, it can generate control information CI so that the user of the information processing device 200 feels comfortable.

[0403] Specifically, based on ambient illuminance, the artificial intelligence unit 213 can generate control information CI to adjust the brightness of the display so that the brightness is perceived as comfortable. Alternatively, the artificial intelligence unit 213 can generate control information CI to adjust the volume so that the volume is perceived as comfortable, based on ambient noise, etc.

[0404] Furthermore, the clock signal or timing signal supplied to the control unit 238 provided by the display unit 230 can be used as control information CI. Alternatively, the clock signal or timing signal supplied to the control unit provided by the input unit 240 can be used as control information CI.

[0405] <Example of Information Processing Device Configuration 2> Another configuration of an information processing device according to one aspect of the present invention will be described with reference to Figures 17A and 17B.

[0406] "program" A program according to one aspect of the present invention has the following steps (see Figure 17A).

[0407] [Step 1] In the first step, the settings are initialized (see Figure 17A(S1)).

[0408] For example, information specifying predetermined image information to be displayed at startup, a predetermined mode for displaying said image information, and a predetermined display method for displaying said image information is obtained from the storage unit 212. Specifically, one still image or other moving image information can be used as the predetermined image information. In addition, either the first mode or the second mode can be used as the predetermined mode.

[0409] [Step 2] In the second step, interrupt handling is enabled (see Figure 17A(S2)). An arithmetic unit (AGS) that has been enabled for interrupt handling can perform interrupt processing in parallel with the main processing. Upon returning to the main processing from interrupt handling, the AGS can reflect the results obtained from the interrupt processing back into the main processing.

[0410] Furthermore, when the counter value is at its initial value, the arithmetic unit may be prompted to perform an interrupt, and upon returning from the interrupt, the counter may be set to a value other than the initial value. This allows the program to always perform an interrupt after it starts.

[0411] [Step 3] In the third step, the image information is displayed using a predetermined mode or display method selected in the first step or interrupt processing (see Figure 17A(S3)). The predetermined mode specifies the mode in which the information is displayed, and the predetermined display method specifies the method in which the image information is displayed. For example, this can be used for the information to be displayed, such as the image information VI.

[0412] For example, one method of displaying the image information VI can be associated with a first mode, or another method of displaying the image information VI can be associated with a second mode. This allows the display method to be selected based on the selected mode.

[0413] Mode 1 Specifically, a method of supplying a selection signal to a scan line at a frequency of 30 Hz or higher, preferably 60 Hz or higher, and displaying based on the selection signal, can be associated with the first mode.

[0414] For example, supplying a selection signal at a frequency of 30Hz or higher, preferably 60Hz or higher, allows for smooth display of motion in the video.

[0415] For example, by updating the image at a frequency of 30Hz or higher, preferably 60Hz or higher, an image that changes smoothly to follow the user's actions can be displayed on the information processing device 200 that the user is operating.

[0416] Mode 2 Specifically, a method of supplying a selection signal to a scan line at a frequency of less than 30 Hz, preferably less than 1 Hz, and more preferably less than once per minute, and displaying based on the selection signal, can be associated with the second mode.

[0417] By supplying a selection signal at a frequency of less than 30 Hz, preferably less than 1 Hz, and more preferably less than once per minute, a display with suppressed flicker or blinking can be achieved. Furthermore, power consumption can be reduced.

[0418] For example, if the information processing device 200 is used as a clock, the display can be updated at a frequency of once per second or once per minute, etc.

[0419] Incidentally, for example, when a light-emitting device is used as a display element, the light-emitting device can be made to emit light in pulses to display image information. Specifically, an organic EL element can be made to emit light in pulses, and its afterglow can be used for display. Because organic EL elements have excellent frequency characteristics, it may be possible to shorten the driving time of the light-emitting device and reduce power consumption. Alternatively, since heat generation is suppressed, it may be possible to reduce the degradation of the light-emitting device. In addition, by setting the duty cycle to 20% or less, the afterimage included in the display can be reduced.

[0420] [Step 4] In the fourth step, if a termination command is issued (Yes), the system proceeds to the fifth step; if a termination command is not issued (No), it proceeds to the third step (see Figure 17A(S4)).

[0421] For example, the termination instruction supplied during interrupt handling may be used for the decision.

[0422] [Step 5] In the fifth step, the process ends (see Figure 17A(S5)).

[0423] Interrupt handling Interrupt handling comprises the following steps 6 through 8 (see Figure 17B).

[0424] [Step 6] In the sixth step, for example, the detection unit 250 is used to detect the illuminance of the environment in which the information processing device 200 is used (see Figure 17B(S6)). Alternatively, the color temperature or chromaticity of the ambient light may be detected instead of the illuminance of the environment.

[0425] [Step 7] In the seventh step, the display method is determined based on the detected illuminance information (see Figure 17B(S7)). For example, the brightness of the display is determined to be neither too dim nor too bright.

[0426] Furthermore, if the color temperature or chromaticity of the ambient light is detected in step 6, the displayed color may be adjusted.

[0427] [Step 8] In the eighth step, the interrupt processing is terminated (see Figure 17B(S8)).

[0428] <Example 3 of Information Processing Device Configuration> Another configuration of an information processing device according to one aspect of the present invention will be described with reference to Figure 18.

[0429] Figure 18A is a flowchart illustrating a program according to one embodiment of the present invention. Figure 18A is a flowchart illustrating an interrupt process different from the interrupt process shown in Figure 17B.

[0430] Note that configuration example 3 of the information processing device differs from the interrupt processing described with reference to Figure 17B in that it includes a step in the interrupt processing that changes the mode based on a predetermined event that is supplied. Here, the differences will be explained in detail, and the above explanation will be used as a reference for parts where a similar configuration can be used.

[0431] Interrupt handling Interrupt processing comprises the following steps 6 through 8 (see Figure 18A).

[0432] [Step 6] In the sixth step, if the predetermined event is supplied (Yes), proceed to the seventh step; if the predetermined event is not supplied (No), proceed to the eighth step (see Figure 18A(U6)). For example, the condition can be whether or not the predetermined event was supplied within a predetermined period. Specifically, the predetermined period can be 5 seconds or less, 1 second or less, or 0.5 seconds or less, preferably 0.1 seconds or less, and longer than 0 seconds.

[0433] [Step 7] In the seventh step, change the mode (see Figure 18A(U7)). Specifically, if you had selected the first mode, select the second mode, and if you had selected the second mode, select the first mode.

[0434] For example, the display mode can be changed for a portion of the display unit 230. Specifically, the display mode can be changed for a portion of the display unit 230 that is supplied with a selection signal by one of the drive circuits GDA, GDB, and GDC (see Figure 18B).

[0435] For example, if a predetermined event is supplied to the input unit 240, which is located in an area that overlaps with the area to which the drive circuit GDB supplies the selection signal, the display mode of the area to which the drive circuit GDB supplies the selection signal can be changed (see Figures 18B and 18C). Specifically, the frequency of the selection signal supplied by the drive circuit GDB can be changed in response to a "tap" event supplied to the touch panel using a finger or the like.

[0436] The signal GCLK is a clock signal that controls the operation of the drive circuit GDB, and signals PWC1 and PWC2 are pulse width control signals that control the operation of the drive circuit GDB. The drive circuit GDB supplies selection signals to conductive films G2(m+1) to G2(2m) based on signals GCLK, PWC1, and PWC2, etc.

[0437] This allows, for example, the drive circuit GDB to supply a selection signal without the drive circuits GDA and GDC supplying a selection signal. Alternatively, the display of the area supplied with a selection signal by the drive circuit GDB can be updated without the display of the area supplied with a selection signal by the drive circuits GDA and GDC being changed. Or, the power consumption of the drive circuits can be reduced.

[0438] [Step 8] In the eighth step, the interrupt handling is terminated (see Figure 18A(U8)). Note that the interrupt handling may be repeatedly executed during the period in which the main processing is running.

[0439] 《Scheduled Events》 For example, events such as "click" and "drag" can be supplied using a pointing device such as a mouse, or events such as "tap," "drag," or "swipe" can be supplied to a touch panel using a finger or other object as a pointer.

[0440] Furthermore, arguments for commands associated with a given event can be provided using, for example, the position of the slider bar pointed to by the pointer, the swipe speed, the drag speed, etc.

[0441] For example, the information detected by the detection unit 250 can be compared with a pre-set threshold, and the comparison result can be used as an event.

[0442] Specifically, the detection unit 250 can use a pressure sensor or the like that contacts a button or the like that is positioned to be pressed into the housing.

[0443] 《Instructions to associate with a specified event》 For example, a termination command can be associated with a predetermined event.

[0444] For example, a "page-turning command" that switches the display from one image to another can be associated with a predetermined event. Furthermore, arguments determining the page-turning speed used when executing the "page-turning command" can be provided using this predetermined event.

[0445] For example, a "scroll command" that moves the display position of a portion of an image to display other portions continuous with that portion can be associated with a predetermined event. Furthermore, arguments determining the speed at which the display moves when executing the "scroll command" can be provided using a predetermined event.

[0446] For example, commands to set the display method or commands to generate image information can be associated with predetermined events. Furthermore, an argument for determining the brightness of the generated image can also be associated with a predetermined event. Alternatively, the argument for determining the brightness of the generated image may be determined based on the brightness of the environment detected by the detection unit 250.

[0447] For example, commands to acquire information delivered using a push-type service, using the communication unit 290, can be associated with a predetermined event.

[0448] Furthermore, the presence or absence of eligibility to acquire information may be determined using location information detected by the detection unit 250. Specifically, it may be determined that the user is eligible to acquire information if they are inside or within a designated classroom, school, conference room, company, building, etc. This allows, for example, the information processing device 200 to receive educational materials distributed in a classroom at a school or university and use them as textbooks, etc. (see Figure 16C). Alternatively, it can receive materials distributed in a conference room at a company, etc., and use them as meeting materials.

[0449] <Example of Information Processing Device Configuration 4> Another configuration of an information processing device according to one aspect of the present invention will be described with reference to Figure 19.

[0450] Note that Configuration Example 4 of the information processing device, which will be explained with reference to Figure 19A, differs from the Configuration Example explained with reference to Figure 17B in its interrupt processing. Specifically, the interrupt processing includes the steps of identifying a region, generating an image, displaying the image, and capturing an image based on a predetermined event that is supplied. Here, the differences will be explained in detail, and the above explanation will be used as a reference for parts where a similar configuration can be used.

[0451] Interrupt handling The interrupt handling process comprises steps 6 through 11 (see Figure 19A).

[0452] [Step 6] In step 6, if the predetermined event is supplied (Yes), proceed to step 7; otherwise, proceed to step 11 (see Figure 19A(V6)).

[0453] For example, the detection unit 250 can be used to supply a predetermined event. Specifically, a movement such as lifting the information processing device can be used as the predetermined event. For example, the movement of the information processing device can be detected using an angular acceleration sensor or an acceleration sensor. Alternatively, a touch sensor can be used to detect contact such as a finger or the proximity of an object.

[0454] [Step 7] In the seventh step, the first region SH is identified (see Figure 19A(V7)).

[0455] For example, in one embodiment of the present invention, the input / output device 220 can be configured to use a first region SH in which an object such as a finger has come into contact with or is in close proximity to it. Alternatively, a region pre-set by the user can be used as the first region SH.

[0456] Specifically, a finger THM or the like that is in contact with or close to a functional panel according to one embodiment of the present invention can be photographed using pixel 703(i,j), and the first region SH can be identified by image processing (see Figure 19B).

[0457] For example, a shadow created when ambient light is blocked by contact or proximity of a subject such as a finger THM can be captured using pixel 703(i,j) of a functional panel according to one embodiment of the present invention, and the image can be processed to identify a first region SH.

[0458] Alternatively, using the pixel 703(i,j) of a functional panel according to one embodiment of the present invention, light can be shone onto a subject such as a finger THM that is in contact with or in close proximity to the subject, the light reflected by the subject can be captured using the pixel 703(i,j), and the first region SH can be identified by image processing.

[0459] Alternatively, a touch sensor can be used to identify the area touched by a subject such as a finger THM as the first region SH.

[0460] [Step 8] In the eighth step, an image FI is generated based on the first region SH, including the second and third regions (see Figures 19A(V8) and 19B). For example, the shape of the first region SH is used for the shape of the second region, and the region excluding the first region SH is used for the third region.

[0461] [Step 9] In the ninth step, the image FI is displayed so that the second region overlaps the first region SH (see Figures 19A(V9) and 19B).

[0462] For example, an image signal can be generated from image FI and supplied to region 231, and light can be emitted from pixel 703(i,j). Alternatively, the generated image signal can be supplied to conductive film S1g(j) during the period when the first selection signal is supplied to conductive film G1(i), and the image signal can be written to pixel 703(i,j). Alternatively, the generated image signal can be supplied to conductive film S1g(j) and conductive film S2g(j), and an enhanced image signal can be written to pixel 703(i,j). Alternatively, the enhanced image signal can be used to increase the brightness and display the image.

[0463] This allows the image FI to be displayed over the area 231 touched by a subject such as a finger, or a nearby first area SH. Alternatively, light can be shone onto the area touched by a subject such as a finger using pixels 703(i,j). Alternatively, illumination can be shone onto a subject such as a finger THM that is in contact or in close proximity. Alternatively, the user can be prompted to touch or bring a subject such as a finger into a pre-set area.

[0464] [Step 10] In the tenth step, while displaying the image FI, an image is captured of a subject that is in contact with or close to the first region SH (see Figures 19A(V10) and 19B).

[0465] For example, a finger THM adjacent to region 231 is illuminated with light while the finger is photographed. Specifically, the fingerprint FP of the finger THM in contact with region 231 can be photographed (see Figure 19C).

[0466] For example, the supply of the first selection signal can be stopped while an image is displayed on pixel 703(i,j). For example, imaging can be performed using pixel 703(i,j) while the supply of the first selection signal to pixel circuit 530G(i,j) is stopped.

[0467] This allows for imaging of subjects such as fingers that are in contact or nearby, while illuminating them. Alternatively, it allows for imaging during periods when the first selection signal is not supplied. Alternatively, it allows for suppression of noise during imaging. Alternatively, it allows for the acquisition of clear images of fingerprints. Alternatively, it allows for the acquisition of images that can be used for user authentication. Alternatively, it allows for the clear capture of fingerprints of fingers touching area 231, regardless of their location within area 231. As a result, a novel information processing device with superior convenience, usefulness, or reliability can be provided.

[0468] [Step 11] In the 11th step, the interrupt processing is terminated (see Figure 19A(V11)).

[0469] <Example of Information Processing Device Configuration 5> Another configuration of an information processing device according to one aspect of the present invention will be described with reference to Figure 20.

[0470] Interrupt handling The interrupt handling process comprises steps 6 through 9 (see Figure 20A).

[0471] [Step 6] In step 6, if the predetermined event is supplied (Yes), proceed to step 7; otherwise, proceed to step 9 (see Figure 20A(W6)).

[0472] For example, the subject 30 can be placed in a predetermined location on the information processing device 200, and a predetermined event can be supplied using the input unit 240 (see Figure 20B). Specifically, contact or proximity of a finger or the like can be detected using the touch sensor in area 231(1) and used for a predetermined event. For example, a touch sensor can be placed superimposed on the location where an image associated with interrupt processing is displayed. Specifically, an image associated with interrupt processing can be displayed in area 231(1), and the input unit 240 placed superimposed on area 231(1) can be used.

[0473] [Step 7] In the seventh step, imaging is performed using region 231(1) (see Figure 20A(W7)).

[0474] For example, a still image is captured when the subject 30 approaches or is in close contact with region 231 (see Figure 20C). Specifically, a still image is captured when the intensity of ambient light incident on region 231 falls below a predetermined value. Alternatively, a still image is captured when no change exceeding a predetermined size is observed in the image captured by region 231 for a predetermined period of time. Or, a still image is captured after the housing of the information processing device 200 is closed.

[0475] [Step 8] In the eighth step, the region 231(1) is used for display (see Figure 20A(W8)).

[0476] For example, the still image captured in step 7 is displayed in region 231 (see Figure 20D).

[0477] [Step 9] In the ninth step, the interrupt processing is terminated (see Figure 20A(W9)).

[0478] This allows for imaging of subjects such as fingers that are in contact or in close proximity, while illuminating them. Alternatively, it enables the acquisition of clear images with suppressed distortion. Furthermore, it allows for the reproduction of information published in printed materials, etc., into electronic data. As a result, it is possible to provide a novel information processing device with superior convenience, usefulness, and reliability.

[0479] This embodiment can be appropriately combined with other embodiments shown in this specification.

[0480] (Embodiment 8) In this embodiment, the configuration of an information processing device according to one aspect of the present invention will be described with reference to the figures.

[0481] Figure 21A is a block diagram of the information processing device, and Figures 21B to 21E are perspective views illustrating the configuration of the information processing device.

[0482] Figures 22A to 22E are perspective views illustrating the configuration of an information processing device.

[0483] Figures 23A and 23B are perspective views illustrating the configuration of the information processing device.

[0484] <Information Processing Device> The information processing device 5200B described in this embodiment includes an arithmetic unit 5210 and an input / output device 5220 (see Figure 21A).

[0485] The arithmetic unit 5210 has a function to be supplied with operation information and a function to supply image information based on the operation information.

[0486] The input / output device 5220 includes a display unit 5230, an input unit 5240, a detection unit 5250, a communication unit 5290, a function for supplying operation information, and a function for supplying image information. Furthermore, the input / output device 5220 includes a function for supplying detection information, a function for supplying communication information, and a function for receiving communication information.

[0487] The input unit 5240 has a function to supply operation information. For example, the input unit 5240 supplies operation information based on the user's operation of the information processing device 5200B.

[0488] Specifically, the input unit 5240 can use a keyboard, hardware buttons, pointing device, touch sensor, illuminance sensor, imaging device, voice input device, eye-tracking device, posture detection device, etc.

[0489] The display unit 5230 includes a display panel and a function for displaying image information. For example, the display panel described in any one of Embodiments 2 to 4 can be used in the display unit 5230.

[0490] The detection unit 5250 has a function to supply detection information. For example, it has a function to detect the surrounding environment in which the information processing device is being used and supply it as detection information.

[0491] Specifically, illuminance sensors, imaging devices, posture detection devices, pressure sensors, and human presence sensors can be used in the detection unit 5250.

[0492] The communication unit 5290 has functions for receiving and supplying communication information. For example, it has functions for connecting with other electronic devices or communication networks via wireless or wired communication. Specifically, it has functions such as wireless local area communication, telephone communication, and short-range wireless communication.

[0493] 《Example of Information Processing Device Configuration 1》 For example, the outer shape of the display unit 5230 can be adapted to follow the contours of cylindrical columns, etc. (see Figure 21B). It also features a function to change the display method according to the illumination of the usage environment. Furthermore, it has a function to detect the presence of a person and change the displayed content. This allows it to be installed, for example, on a building column. Alternatively, it can display advertisements or information. Or, it can be used for digital signage, etc.

[0494] 《Example of Information Processing Device Configuration 2》 For example, it has a function to generate image information based on the trajectory of the pointer used by the user (see Figure 21C). Specifically, a display panel with a diagonal length of 20 inches or more, preferably 40 inches or more, and more preferably 55 inches or more can be used. Alternatively, multiple display panels can be arranged to form a single display area. Alternatively, multiple display panels can be arranged to form a multi-screen. This allows it to be used, for example, in electronic whiteboards, electronic bulletin boards, electronic signboards, etc.

[0495] 《Example of Information Processing Device Configuration 3》 The smartwatch can receive information from other devices and display it on the display unit 5230 (see Figure 21D). Alternatively, it can display several options. Alternatively, the user can select several options and reply to the source of the information. Alternatively, it can have a function to change the display method according to the illumination of the usage environment. This can reduce the power consumption of the smartwatch, for example. Alternatively, it can display images on the smartwatch so that it can be used suitably even in environments with strong ambient light, such as outdoors on a sunny day.

[0496] 《Example of Information Processing Device Configuration 4》 The display unit 5230 has, for example, a curved surface that gently curves along the side of the housing (see Figure 21E). Alternatively, the display unit 5230 has a display panel, which has the function of displaying on, for example, the front, side, top, and back. This allows information to be displayed not only on the front of the mobile phone, but also on the sides, top, and back.

[0497] 《Example of Information Processing Device Configuration 5》 For example, information can be received from the internet and displayed on the display unit 5230 (see Figure 22A). Alternatively, a created message can be viewed on the display unit 5230. Alternatively, a created message can be sent to another device. Alternatively, for example, the display method can be changed according to the illumination of the usage environment. This can reduce the power consumption of the smartphone. Alternatively, for example, images can be displayed on the smartphone so that it can be used suitably even in environments with strong ambient light, such as outdoors on a sunny day.

[0498] 《Example of Information Processing Device Configuration 6》 A remote controller can be used with the input unit 5240 (see Figure 22B). Alternatively, information can be received from a broadcasting station or the internet and displayed on the display unit 5230. Alternatively, the user can be photographed using the detection unit 5250. Alternatively, the user's video can be transmitted. Alternatively, the user's viewing history can be acquired and provided to a cloud service. Alternatively, recommendation information can be acquired from a cloud service and displayed on the display unit 5230. Alternatively, a program or video can be displayed based on the recommendation information. Alternatively, for example, a function can be provided to change the display method according to the illumination of the usage environment. This allows the video to be displayed on the television system in a way that is suitable for use even when strong sunlight shines into the room on a sunny day.

[0499] 《Example of Information Processing Device Configuration 7》 For example, educational materials can be received from the internet and displayed on the display unit 5230 (see Figure 22C). Alternatively, reports can be entered using the input unit 5240 and sent to the internet. Alternatively, correction results or evaluations of reports can be obtained from a cloud service and displayed on the display unit 5230. Alternatively, appropriate educational materials can be selected and displayed based on the evaluation.

[0500] For example, the display unit 5230 can receive image signals from other information processing devices and display them. Alternatively, it can be propped up on a stand or the like and used as a sub-display. This allows images to be displayed on the tablet computer in a way that is suitable for use even in environments with strong ambient light, such as outdoors on a sunny day.

[0501] 《Example of Information Processing Device Configuration 8》 The information processing device includes, for example, multiple display units 5230 (see Figure 22D). For example, it can display images on the display units 5230 while capturing them with the detection unit 5250. Alternatively, it can display captured images on the detection unit. Alternatively, it can use the input unit 5240 to add embellishments to captured images. Alternatively, it can attach messages to captured images. Alternatively, it can transmit images to the internet. Alternatively, it has a function to change the shooting conditions according to the illumination of the usage environment. This allows the subject to be displayed on the digital camera in a way that allows for suitable viewing even in environments with strong ambient light, such as outdoors on a sunny day.

[0502] 《Example of Information Processing Device Configuration 9》 For example, another information processing device can be used as a slave, and the information processing device of this embodiment can be used as a master to control the other information processing device (see Figure 22E). Alternatively, for example, a portion of the image information can be displayed on the display unit 5230, and another portion of the image information can be displayed on the display unit of the other information processing device. An image signal can be supplied to the other information processing device. Alternatively, information to be written can be obtained from the input unit of the other information processing device using the communication unit 5290. This allows for the use of a wide display area, for example, by using a portable personal computer.

[0503] 《Example of Information Processing Device Configuration 10》 The information processing device includes, for example, a detection unit 5250 that detects acceleration or orientation (see Figure 23A). Alternatively, the detection unit 5250 can supply information relating to the user's position or the direction the user is facing. Alternatively, the information processing device can generate image information for the right eye and image information for the left eye based on the user's position or the direction the user is facing. Alternatively, the display unit 5230 includes a display area for the right eye and a display area for the left eye. This allows, for example, the display of an immersive virtual reality space on a goggle-type information processing device.

[0504] 《Example of Information Processing Device Configuration 11》 The information processing device includes, for example, an imaging device and a detection unit 5250 that detects acceleration or orientation (see Figure 23B). Alternatively, the detection unit 5250 can supply information relating to the user's position or the direction the user is facing. Alternatively, the information processing device can generate image information based on the user's position or the direction the user is facing. This allows, for example, information to be attached to and displayed on a real-world landscape. Alternatively, images of an augmented reality space can be displayed on a glasses-type information processing device.

[0505] This embodiment can be appropriately combined with other embodiments shown in this specification.

[0506] For example, where it is explicitly stated in this specification that X and Y are connected, this specification discloses the cases in which X and Y are electrically connected, functionally connected, and directly connected. Therefore, predetermined connection relationships, not limited to those shown in the figures or text, are also disclosed in the figures or text.

[0507] Here, X and Y are assumed to be objects (for example, devices, elements, circuits, wiring, electrodes, terminals, conductive films, layers, etc.).

[0508] An example of a case where X and Y are directly connected is when there are no elements that enable electrical connection between X and Y (e.g., switches, transistors, capacitive elements, inductors, resistors, diodes, display elements, light-emitting elements, loads, etc.) connected between X and Y, and when X and Y are connected without any elements that enable electrical connection between X and Y (e.g., switches, transistors, capacitive elements, inductors, resistors, diodes, display elements, light-emitting elements, loads, etc.).

[0509] One example of a case where X and Y are electrically connected is that one or more elements that enable electrical connection between X and Y (e.g., switches, transistors, capacitive elements, inductors, resistors, diodes, display elements, light-emitting elements, loads, etc.) can be connected between X and Y. A switch has the function of controlling on / off states. That is, a switch has the function of controlling whether or not current flows by being in a conductive state (on state) or a non-conductive state (off state). Alternatively, a switch has the function of selecting and switching the path through which current flows. Note that when X and Y are electrically connected, this includes cases where X and Y are directly connected.

[0510] One example of a functional connection between X and Y is when one or more circuits that enable the functional connection between X and Y (for example, logic circuits (inverters, NAND circuits, NOR circuits, etc.), signal conversion circuits (DA conversion circuits, AD conversion circuits, gamma correction circuits, etc.), potential level conversion circuits (power supply circuits (boost circuits, buck circuits, etc.), level shifter circuits that change the potential level of a signal, etc.), voltage sources, current sources, switching circuits, amplification circuits (circuits that can increase the signal amplitude or current amount, such as operational amplifiers, differential amplifiers, source follower circuits, buffer circuits, etc.), signal generation circuits, memory circuits, control circuits, etc.) can be connected between X and Y. As an example, even if another circuit is placed between X and Y, if the signal output from X is transmitted to Y, X and Y are considered to be functionally connected. Furthermore, a functional connection between X and Y includes cases where X and Y are directly connected and cases where X and Y are electrically connected.

[0511] Furthermore, when it is explicitly stated that X and Y are electrically connected, this specification discloses the following cases: when X and Y are electrically connected (i.e., connected with another element or circuit in between), when X and Y are functionally connected (i.e., functionally connected with another circuit in between), and when X and Y are directly connected (i.e., connected without another element or circuit in between). In other words, when it is explicitly stated that they are electrically connected, this specification discloses the same information as when it is explicitly stated that they are simply connected.

[0512] For example, if the source (or first terminal, etc.) of the transistor is electrically connected to X via (or without) Z1, and the drain (or second terminal, etc.) of the transistor is electrically connected to Y via (or without) Z2, or if the source (or first terminal, etc.) of the transistor is directly connected to a part of Z1, another part of Z1 is directly connected to X, the drain (or second terminal, etc.) of the transistor is directly connected to a part of Z2, and another part of Z2 is directly connected to Y, then it can be expressed as follows.

[0513] For example, it can be expressed as, "X, Y, the source (or first terminal, etc.) and drain (or second terminal, etc.) of the transistor are electrically connected to each other, and the connection is in the order of X, the source (or first terminal, etc.) of the transistor, the drain (or second terminal, etc.) of the transistor, and Y." Alternatively, it can be expressed as, "The source (or first terminal, etc.) of the transistor is electrically connected to X, and the drain (or second terminal, etc.) of the transistor is electrically connected to Y, and X, the source (or first terminal, etc.) of the transistor, the drain (or second terminal, etc.) of the transistor, and Y are electrically connected in this order." Alternatively, it can be expressed as, "X is electrically connected to Y via the source (or first terminal, etc.) and drain (or second terminal, etc.) of the transistor, and X, the source (or first terminal, etc.) of the transistor, the drain (or second terminal, etc.) of the transistor, and Y are provided in this connection order." By using similar notation to these examples to define the order of connections in a circuit configuration, the source (or first terminal, etc.) and drain (or second terminal, etc.) of a transistor can be distinguished and their technical scopes determined.

[0514] Alternatively, it can be expressed as follows: "The source (or first terminal, etc.) of the transistor is electrically connected to X via at least a first connection path, the first connection path does not have a second connection path, the second connection path is a path between the source (or first terminal, etc.) of the transistor and the drain (or second terminal, etc.) of the transistor via the transistor, the first connection path is a path via Z1, the drain (or second terminal, etc.) of the transistor is electrically connected to Y via at least a third connection path, the third connection path does not have the second connection path, and the third connection path is a path via Z2." Alternatively, it can be expressed as: "The source (or first terminal, etc.) of the transistor is electrically connected to X via Z1 by at least a first connection path, the first connection path does not have a second connection path, the second connection path has a connection path through the transistor, and the drain (or second terminal, etc.) of the transistor is electrically connected to Y via Z2 by at least a third connection path, the third connection path does not have the second connection path." Alternatively, it can be expressed as: "The source (or first terminal, etc.) of the transistor is electrically connected to X via Z1 by at least a first electrical path, the first electrical path does not have a second electrical path, the second electrical path is an electrical path from the source (or first terminal, etc.) of the transistor to the drain (or second terminal, etc.) of the transistor, the drain (or second terminal, etc.) of the transistor is electrically connected to Y via Z2 by at least a third electrical path, the third electrical path does not have a fourth electrical path, the fourth electrical path is an electrical path from the drain (or second terminal, etc.) of the transistor to the source (or first terminal, etc.) of the transistor." By defining the connection paths in the circuit configuration using expressions similar to these examples, the source (or first terminal, etc.) and the drain (or second terminal, etc.) of the transistor can be distinguished and the technical scope determined.

[0515] These methods of expression are merely examples and are not limited to them. Here, X, Y, Z1, and Z2 are assumed to be objects (e.g., devices, elements, circuits, wiring, electrodes, terminals, conductive films, layers, etc.).

[0516] Even if independent components are shown as electrically connected in a circuit diagram, a single component may possess the functions of multiple components. For example, if part of a wire also functions as an electrode, a single conductive film possesses the functions of both a wire and an electrode. Therefore, in this specification, "electrically connected" includes cases where a single conductive film possesses the functions of multiple components. [Explanation of Symbols]

[0517] ABS: Absorption spectrum, ANO: Conductive film, CAPSEL: Conductive film, CDSBIAS: Conductive film, CDSVDD: Conductive film, CDSVSS: Conductive film, C21: Capacitance, C22: Capacitance, C31: Capacitance, CL: Conductive film, FD: Node, FPC1: Flexible printed circuit board, GCLK: Signal, G1: Conductive film, G2: Conductive film, IN: Terminal, MD: Transistor, M21: Transistor, M31: Transistor, M32: Transistor, N21: Node, N22: Node, OUT: Terminal, P1: Position information, PWC1: Signal, PWC2: Signal, RS: Conductive film, S1g: Conductive Film, S1r: conductive film, S2g: conductive film, SE: conductive film, SH: region, SP11: spectrum, SP12: spectrum, SW21: switch, SW22: switch, SW23: switch, SW31: switch, SW32: switch, SW33: switch, TX: conductive film, VCL: conductive film, VCOM2: conductive film, VCP: conductive film, VIV: conductive film, VLEN: conductive film, VPI: conductive film, VR: conductive film, WX: conductive film, 30: subject, 200: information processing device, 210: arithmetic unit, 211: arithmetic unit, 212: memory unit, 213: artificial intelligence unit, 214: transmission line, 215: Input / output interface, 220: Input / output device, 230: Display unit, 231: Area, 233: Timing controller, 234: Expansion circuit, 235: Image processing circuit, 238: Control unit, 240: Input unit, 241: Detection area, 243: Control circuit, 250: Detection unit, 290: Communication unit, 501C: Insulating film, 501D: Insulating film, 504: Conductive film, 506: Insulating film, 508: Semiconductor film, 508A: Area, 508B: Area, 508C: Area, 510: Substrate, 512A: Conductive film, 512B: Conductive film, 512C: Conductive film, 512D: Conductive film, 512E: Conductive film, 512F: Conductive Film, 516: insulating film, 516A: insulating film, 516B: insulating film, 518: insulating film, 519B: terminal, 520: functional layer, 521: insulating film, 521A: insulating film, 521B: insulating film, 524: conductive film, 528: insulating film, 530G: pixel circuit, 530RS: pixel circuit, 550G: device, 550RS: optical functional device, 551G: electrode, 551RS: electrode, 552: electrode, 553G: layer, 553R: layer, 553RS: optical functional layer, 553S: layer, 573: insulating film, 573A: insulating film, 573B: insulating film, 591G: aperture, 591RS: aperture, 700: functional panel,700TP: Function panel, 702B: Pixel, 702G: Pixel, 702RS: Pixel, 703: Pixel, 705: Encapsulating material, 720: Function layer, 770: Substrate, 770P: Function film, 771: Insulating film, 802: Detector, 5200B: Information processing unit, 5210: Processing unit, 5220: Input / output device, 5230: Display unit, 5240: Input unit, 5250: Detection unit, 5290: Communication unit,

Claims

1. It has a pixel circuit and an optical functional device, The pixel circuit has a transistor, The optical functional device comprises a first electrode, a second electrode, and an optical functional layer located between the first electrode and the second electrode. The optical functional layer comprises a first layer and a second layer. The first layer emits light including the first light, The second layer has an area that overlaps with the first layer, The second layer has a light-absorbing material, The aforementioned optical functional device has a light-emitting function and a photoelectric conversion function. The optical functional device is electrically connected to the transistor, The light-emitting function converts electrical energy into the first light, The first light comprises a first emission spectrum, The first emission spectrum shows a maximum peak at a first wavelength. The aforementioned maximum peak shows the first value, The first emission spectrum has an intensity of 80% of the first value at the second wavelength. The aforementioned photoelectric conversion function has spectral sensitivity characteristics, The spectral sensitivity characteristics show maximum sensitivity in the range of 420 nm to 720 nm at a third wavelength. The third wavelength is shorter than the first wavelength. The spectral sensitivity characteristics have a sensitivity of 80% of the maximum sensitivity at the fourth wavelength. The third wavelength is located on the side of the first wavelength where the second wavelength is located. The fourth wavelength is located on the side of the third wavelength where the first wavelength is located. The light-absorbing material has a first absorption spectrum, The first absorption spectrum is a functional panel having a region that overlaps with the spectral sensitivity characteristics.

2. In claim 1, The second wavelength is shorter than the first wavelength. The fourth wavelength is longer than the third wavelength. The fourth wavelength is shorter than the second wavelength, and this is a functional panel.

3. It has a pixel circuit and an optical functional device, The pixel circuit has a transistor, The optical functional device comprises a first electrode, a second electrode, and an optical functional layer located between the first electrode and the second electrode. The optical functional layer comprises a first layer and a second layer. The first layer emits light including the first light, The second layer has an area that overlaps with the first layer, The second layer has a light-absorbing material, The aforementioned optical functional device has a light-emitting function and a photoelectric conversion function. The optical functional device is electrically connected to the transistor, The aforementioned light-emitting function converts electrical energy into a first light, The first light comprises a first emission spectrum, The first emission spectrum shows a maximum peak at a first wavelength. The aforementioned photoelectric conversion function has spectral sensitivity characteristics, The spectral sensitivity characteristics show maximum sensitivity in the range of 420 nm to 720 nm at a third wavelength. The third wavelength is located in a wavelength range of 420 nm or more and shorter than the first wavelength. The light-absorbing material has a first absorption spectrum, The first absorption spectrum is a functional panel having a region that overlaps with the spectral sensitivity characteristics.

4. In any one of claims 1 to 3, It has the function of emitting red light, A functional panel having the function of converting green light into photoelectric energy.

5. In any one of Claims 1 to 4, A functional panel in which 50% or more of the area of ​​the normalized first absorption spectrum overlaps with the normalized spectral sensitivity characteristics.

6. In any one of Claims 1 to 5, The second layer is a functional panel comprising at least one of a fullerene derivative, a perylene derivative, a compound having a dicyanomethyleneindanone group, a tetracene derivative, and a rubrene derivative.

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