Electronic device and method of operating the same

CN115300802BActive Publication Date: 2026-08-07INNOLUX CORP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
INNOLUX CORP
Filing Date
2021-12-07
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

然而,光疗装置提供固定强度的光至使用者的患部,并没有可以依据患部的状态调整发光组件的光的强度,如此可能会降使用上的便利性及治疗的效果

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Abstract

An electronic device and an operating method thereof are disclosed. The electronic device includes a plurality of treatment components. The treatment components include a first treatment component and a second treatment component, wherein the first treatment component and the second treatment component are independently controlled.
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Description

Technical Field

[0001] This disclosure relates to an electronic device, and more particularly to an electronic device and a method of operating the same. Background Technology

[0002] Known phototherapy devices use light-emitting components to deliver light to the user's affected area for treatment. However, these devices provide a fixed intensity of light without adjusting the intensity based on the condition of the affected area, potentially reducing ease of use and treatment effectiveness. Therefore, a new design is needed to address these issues. Summary of the Invention

[0003] This disclosure provides an electronic device including: a plurality of therapeutic components, including a first therapeutic component and a second therapeutic component, wherein the first therapeutic component and the second therapeutic component are independently controlled.

[0004] Alternatively, these multiple treatment components may be arranged in an array.

[0005] Optionally, it may further include multiple sensing components disposed adjacent to the multiple treatment components.

[0006] Optionally, the spacing between two adjacent therapeutic components is the same as the spacing between two adjacent sensing components.

[0007] Optionally, the spacing between two adjacent therapeutic components is different from the spacing between two adjacent sensing components.

[0008] Optionally, each of the plurality of sensing components includes a biosensor and an image sensor.

[0009] Optionally, it further includes a control circuit electrically connected to the plurality of therapeutic components and the plurality of sensing components.

[0010] Optionally, each of the plurality of treatment components includes a light-emitting component, a heating component, an ultrasound component, or an electrotherapy component.

[0011] This disclosure also provides a method of operating an electronic device, comprising: providing a substrate; and providing a plurality of therapeutic components on the substrate, the plurality of therapeutic components including a first therapeutic component and a second therapeutic component, wherein the first therapeutic component and the second therapeutic component simultaneously provide signals with different parameters.

[0012] Optionally, the substrate includes a first sub-region and a second sub-region, the first treatment component provides a first signal having a first parameter in the first sub-region, and the second treatment component provides a second signal having a second parameter in the second sub-region. Attached Figure Description

[0013] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings, wherein:

[0014] Figure 1 This is a schematic diagram of a portion of an electronic device according to an embodiment of the present disclosure.

[0015] Figure 2 This is a perspective view of an electronic device according to an embodiment of the present disclosure.

[0016] Figure 3 This is a perspective view of an electronic device according to another embodiment of the present disclosure.

[0017] Figure 4 This is a flowchart of an operation method of an electronic device according to an embodiment of the present disclosure.

[0018] Figure 5 for Figure 4 The detailed flowchart of step S406.

[0019] Figure 6 This is a schematic diagram of a sub-region of a target region according to an embodiment of the present disclosure.

[0020] Figure 7 This is a top view of a portion of an electronic device according to an embodiment of the present disclosure.

[0021] Figure 8 for Figure 7 A cross-sectional view of AA'.

[0022] Symbol Explanation

[0023] 100: Electronic devices

[0024] 110:Substrate

[0025] 120: Healing Components

[0026] 121, 122: Signal lines

[0027] 130: Sensing component

[0028] 131: Biosensors

[0029] 132: Image sensor

[0030] 140: Control Circuit

[0031] 150: Object

[0032] 710: Retaining Wall

[0033] 720: Metal layer

[0034] 730: Electrode

[0035] 740: Photoresist ink layer

[0036] 750: Lower electrode

[0037] 760: Semiconductor layer

[0038] 770: Upper electrode

[0039] A1, A2, A3: Subregions

[0040] D1, D2: Spacing

[0041] X, Y, Z: Direction

[0042] S402~S408, S502~S506: Steps Detailed Implementation

[0043] To make the purposes, features, and advantages of this disclosure more apparent, embodiments are described below in conjunction with the accompanying drawings. For ease of understanding and for the sake of brevity, many of the drawings in this disclosure may depict only a portion of the entire device, and specific components in the drawings are not drawn to scale.

[0044] This disclosure provides different embodiments to illustrate the technical features of different implementations of this disclosure. The configuration, quantity, and size of the components in the embodiments are for illustrative purposes only and are not intended to limit this disclosure. Furthermore, if component reference numerals appear repeatedly in the embodiments and accompanying drawings, it is for simplification and does not imply any correlation between different embodiments.

[0045] Furthermore, the use of ordinal numbers such as "first" and "second" in the specification and claims to modify the components of the claims does not imply or represent any prior ordinal number of the claimed component, nor does it represent the order of one claimed component with another, or the order of manufacturing methods. The use of these ordinal numbers is only to enable a claimed component with a certain name to be clearly distinguished from another claimed component with the same name.

[0046] In this disclosure, features of various embodiments can be arbitrarily combined and used as long as they do not violate the spirit of the invention or conflict with each other.

[0047] In some embodiments of this disclosure, the term "coupled" may include any direct and indirect electrical connection means unless specifically defined.

[0048] In this text, the terms "approximately" and "about" typically indicate that a given value or range is within 20%, 10%, 5%, 3%, 2%, 1%, or 0.5%. The given quantity is approximate; that is, even without specific mention of "approximately" or "about," the meaning of "approximately" or "about" can still be implied.

[0049] The term "comprising" as used throughout the specification and claims is an open-ended term and should therefore be interpreted as "comprising but not limited to".

[0050] Furthermore, "connection" and "coupling" herein include any direct and indirect means of connection. Therefore, when a component or membrane is described as "connected" to another component or membrane, it can be directly connected to this other component or membrane, or there may be an intercalating component or membrane between them. When a component is described as "directly connected" to another component or membrane, there is no intercalating component or membrane between them. If a first device in a circuit described herein is coupled to a second device, it means that the first device can be directly electrically connected to the second device. When the first device is directly electrically connected to the second device, the first device and the second device are connected only through wires or passive components (such as resistors, capacitors, etc.), and no other electronic components are connected between the first device and the second device.

[0051] In one embodiment, the electronic device may include a display device, a backlight device, an antenna device, a sensing device, a splicing device, or a therapeutic / diagnostic device, but is not limited thereto. The electronic device may be a bendable or flexible electronic device. The display device may be a non-emissive display device or a self-emissive display device. The antenna device may be a liquid crystal type antenna device or a non-liquid crystal type antenna device, and the sensing device may be a sensing device for sensing capacitance, light, heat, or ultrasound, but is not limited thereto. Electronic components may include passive and active components, such as capacitors, resistors, inductors, diodes, transistors, etc. Diodes may include light-emitting diodes or photodiodes. Light-emitting diodes may include, for example, organic light-emitting diodes (OLEDs), mini LEDs, micro LEDs, or quantum dot LEDs, but are not limited thereto. The splicing device may be, for example, a display splicing device or an antenna splicing device, but is not limited thereto. It should be noted that the electronic device may be any combination of the foregoing, but is not limited thereto. The following description will use a parameter adjustment device as an electronic device to illustrate the contents of this disclosure, but this disclosure is not limited thereto.

[0052] Figure 1 This is a schematic diagram of a portion of an electronic device according to an embodiment of the present disclosure. Figure 2This is a perspective view of an electronic device according to an embodiment of the present disclosure. Please refer to... Figure 1 and Figure 2 The electronic device 100 may include at least a substrate 110 and a plurality of therapeutic components 120.

[0053] In some embodiments, the substrate 110 may be glass, a flexible substrate, etc., but this disclosure is not limited thereto. The treatment component 120 may be disposed on the substrate 110. Further, the treatment component 120 may include a first treatment component and a second treatment component, and the first treatment component and the second treatment component can be controlled independently. For example, the first signal component and the second treatment component may be controlled respectively through different active components (e.g., thin-film transistors, TFTs) or through different signals provided by the control circuit 140. That is, in some embodiments, the first treatment component and the second treatment component may simultaneously provide signals with different parameters, but this disclosure is not limited thereto. In some embodiments, the first treatment component and the second treatment component may also simultaneously provide signals with the same parameters. In other embodiments, the second treatment component may not provide a signal when the first treatment component provides a signal, but this disclosure is not limited thereto. Additionally, the treatment component 120 may be arranged in an array on the substrate 110.

[0054] In some embodiments, the treatment component 120 may include a light-emitting component for providing light signals. The light-emitting component may be an organic light-emitting diode (OLED), a sub-millimeter light-emitting diode (mini LED), a micro LED, or a quantum dot LED, or a combination thereof, but this disclosure is not limited thereto. In some embodiments, the treatment component 120 may include a heating component for providing heat signals. The heating component may be a far-infrared ray generator, but this disclosure is not limited thereto. In some embodiments, the treatment component 120 may include an ultrasound component for providing ultrasound signals. The ultrasound component may be an ultrasound therapy device, but this disclosure is not limited thereto. In some embodiments, the treatment component 120 may include an electrotherapy component for providing electrical stimulation signals. The electrotherapy component may be an electrical stimulation therapy device, but this disclosure is not limited thereto. Furthermore, the treatment component 120 may include at least one of the above components or a combination thereof.

[0055] In this embodiment, the electronic device 100 may further include a plurality of signal lines 121, a plurality of signal lines 122, a plurality of sensing components 130, and a control circuit 140.

[0056] Signal lines 121 and 122 can be electrically connected to the treatment assembly 120. In this embodiment, signal lines 121 and 122 can be data lines or gate lines, but this disclosure is not limited thereto.

[0057] The sensing component 130 can be disposed on the substrate 110, and the sensing component 130 can be disposed adjacent to the treatment component 120. Additionally, the sensing component 130 can also be electrically connected to its corresponding signal line (not shown). Furthermore, the sensing components 130 can also be arranged in an array on the substrate 110. In this embodiment, the pitch D1 between two adjacent treatment components 120 can be approximately the same as the pitch D2 between two adjacent sensing components 130. However, this disclosure is not limited thereto. The distance D1 (or distance D2) can be measured, for example, as the distance from the center of one of the two adjacent treatment components 120 (or sensing components 130) to the center of the other of the two adjacent treatment components 120 (or sensing components 130), or the distance from the rightmost point of one of the two adjacent treatment components 120 (or sensing components 130) to the rightmost point of the other of the two adjacent treatment components 120 (or sensing components 130), or the distance from the leftmost point of one of the two adjacent treatment components 120 (or sensing components 130) to the leftmost point of the other of the two adjacent treatment components 120 (or sensing components 130).

[0058] The control circuit 140 may be disposed in the substrate 110. The control circuit 140 may be electrically connected to the treatment component 120 and the sensing component 130, so that the control circuit 140 can adjust the corresponding parameters of the treatment component 120 according to the sensing signal generated by the sensing component 130, so as to control the treatment component 120 to generate a signal with corresponding parameters. In this embodiment, the control circuit 140 may include a processor, a microcontroller unit (MCU), or an integrated circuit, but this disclosure is not limited thereto.

[0059] In some embodiments, the sensing component 130 may include a biosensor 131 and an image sensor 132, such as Figure 1 As shown. In addition, the biosensor 131 is used to detect physical quantities of an object 150 to generate physical quantity signals, and the physical quantities may include reflective light, pH value, humidity, temperature, inflammatory factors, toxins and enzymes secreted by bacteria, odor, etc., but this disclosure is not limited thereto.

[0060] Image sensor 132 is used to sense the image of object 150 to generate an image sensing signal. The image sensor can be a charge-coupled device (CCD), but this disclosure is not limited to this. That is, control circuit 140 can identify the target area of ​​object 150 based on the image sensing signal generated by image sensor 132, and identify the state of the target area based on the physical quantity signal generated by biosensor 131. In this embodiment, object 150 is, for example, a human body, and the target area is, for example, an affected part, but this disclosure is not limited to this. In some embodiments, control circuit 140 can identify the target area and non-target area based on the signal magnitude of the image sensing signal. In some embodiments, control circuit 140 can analyze pixels affecting the sensing signal to identify the target area and non-target area. Additionally, control circuit 140 can identify the state of a sub-region of the target area based on the physical quantity signal generated by biosensor 131. In some embodiments, taking temperature as an example, when the physical quantity signal received by control circuit 140 is high (e.g., the temperature is greater than a first default temperature), control circuit 140 can identify the state of a sub-region of the target area as a first state. When the physical quantity signal received by the control circuit 140 is higher (e.g., the temperature is higher than the second default temperature), the control circuit 140 can confirm that the state of the sub-region of the target area of ​​the biosensor 131 is the second state. The aforementioned second temperature is higher than the first temperature, and the first state is different from the second state.

[0061] In some embodiments, the sensing component 130 may include a biosensor 131 but not an image sensor 132. That is, the control circuit 140 can determine the size and state of the target area of ​​the object 150 based on the physical quantity signal generated by the biosensor 131. In some embodiments, taking temperature as an example, when the physical quantity signal received by the control circuit 140 is low (e.g., temperature less than or equal to a first default temperature), the control circuit 140 can determine that the location of the biosensor 131 belongs to a non-target area. When the physical quantity signal received by the control circuit 140 is high (e.g., temperature greater than the first default temperature), the control circuit 140 can determine that the location of the biosensor 131 belongs to the target area (e.g., the affected area), and the control circuit 140 can determine that the state of a sub-region of the target area is a first state. When the physical quantity signal received by the control circuit 140 is even higher (e.g., temperature greater than a second default temperature), the control circuit 140 can determine that the state of a sub-region of the target area of ​​the biosensor 131 is a second state. The second temperature is greater than the first temperature, and the first state is different from the second state.

[0062] Figure 3This is a perspective view of an electronic device according to another embodiment of the present disclosure. Figure 3 The electronic device 100 is roughly the same as Figure 1 and Figure 2 Electronic devices 100 similar to, identical or similar components and components may be referenced Figure 1 and Figure 2 The embodiments described herein will not be repeated here. Figure 3 In this process, the distance D1 between two adjacent treatment components 120 may differ from the distance D2 between two adjacent sensing components 130. For example, distance D1 may be smaller than distance D2, but this disclosure is not limited thereto. Furthermore, the density of sensing components 130 may be less than the density of treatment components 120. For example, in... Figure 3 In the area of ​​the array shown, the number of sensing components 130 is less than the number of treatment components 120. That is, the electronic device 100 can use a smaller number of sensing components 130 in combination with a larger number of treatment components 120.

[0063] Figure 4 This is a flowchart of an operation method of an electronic device according to an embodiment of the present disclosure. In step S402, it is confirmed whether a target area is sensed. That is, the control circuit 140 can confirm whether to control the sensing component 130 to sense the target area. When it is confirmed that the target area is sensed, the process proceeds to step S404, where the target area is sensed by the sensing component. That is, the control circuit 140 can control the treatment circuit 120 to generate first light that shines on the surface of the object 150, and control the image sensor 132 of the sensing component 130 to sense the second light reflected from the surface of the object 150 by the first light, so that the image sensor 132 of the sensing component 130 senses the second light and generates a sensing signal to the control circuit 140. Then, the control circuit 140 can calculate the target area based on the sensing signal generated by the image sensor 132. In this embodiment, the object 150 is, for example, a human body, and the target area is, for example, a affected area.

[0064] In step S406, a signal is generated through the treatment component. That is, after the control circuit 140 calculates the target area, the control circuit 140 can control the treatment component 120 corresponding to the target area to provide a corresponding signal, such as a light signal, but this disclosure is not limited thereto. In this way, a corresponding signal can be generated through the treatment component 120 to the target area (e.g., the affected area), so that the target area (e.g., the affected area) can receive the energy of the corresponding signal, for example, to provide corresponding treatment to the target area (e.g., the affected area).

[0065] On the other hand, following step S402, when it is confirmed that no sensing is performed on the target area, the process can directly proceed to step S406 to generate a signal through the treatment component. That is, the control circuit 140 can control the treatment component 120 to provide a signal corresponding to the default parameters, such as a light signal with default parameters, but this disclosure is not limited to this. In this way, a signal can be generated through the treatment component to the target area (e.g., the affected area), allowing the target area (e.g., the affected area) to receive the energy of the corresponding signal, for example, providing corresponding treatment to the target area (e.g., the affected area).

[0066] In step S408, it is confirmed whether to continue generating signals through the treatment component. If it is confirmed that signal generation through the treatment component will continue, the process returns to step S406, and the control circuit 140 will continue to control the treatment component to generate signals to the target area. If it is confirmed that signal generation through the treatment component will not continue, the operation of the electronic device 100 ends.

[0067] Figure 5 for Figure 4 A detailed flowchart of step S406 is provided. In step S502, the state of multiple sub-regions of the target area is confirmed. That is, the control circuit 140 can control the biosensor 131 of the sensing component 130 to sense physical quantities of multiple sub-regions of the target area to generate physical quantity signals corresponding to the aforementioned sub-regions. Then, the control circuit 140 can calculate the state of the sub-regions of the target area (e.g., the affected area) based on the physical quantity signals corresponding to the aforementioned sub-regions.

[0068] In this embodiment, the target region includes sub-regions such as sub-region A1, sub-region A2, and sub-region A3, for example... Figure 6 As shown. Furthermore, sub-regions A1, A2, and A3 each have different states. In some embodiments, sub-region A1 corresponds, for example, to an anti-inflammatory state, sub-region A2 corresponds, for example, to a granulation / cell proliferation state, and sub-region A3 corresponds, for example, to a remodeling state, but this disclosure is not limited thereto.

[0069] In step S504, the parameters of the treatment components for the corresponding sub-regions are obtained based on the state of the sub-regions of the target region. That is, after the control circuit 140 calculates the states of sub-regions A1, A2, and A3, the control circuit 140 can obtain the first parameter of the treatment component 120 for sub-region A1, the second parameter of the treatment component 120 for sub-region A2, and the third parameter of the treatment component 120 for sub-region A3 through a lookup table.

[0070] In this embodiment, the treatment component 120 is exemplified by a light-emitting component. The first parameter may include a first signal wavelength and a first signal intensity; the second parameter may include a second signal wavelength and a second signal intensity; and the third parameter may include a third signal wavelength and a third signal intensity. In some embodiments, the first signal wavelength is, for example, 405 nanometers (nm) to 470 nanometers, the second signal wavelength is, for example, 660 nanometers to 810 nanometers, and the third signal wavelength is, for example, 590 nanometers to 800 nanometers. The first, second, and third signal intensities are 0.1 mW / cm² to 150 mW / cm², but this disclosure is not limited thereto. In some embodiments, the first, second, and third signal intensities may be the same. In some embodiments, the first, second, and third signal intensities may be different. For example, the signal intensity may be proportional to the signal wavelength. For instance, when the signal wavelength increases, the signal intensity increases. Conversely, when the signal wavelength decreases, the signal intensity decreases.

[0071] In step S506, the treatment component of the corresponding sub-region is controlled to generate a signal based on the parameters of the treatment component of the corresponding sub-region. That is, the control circuit 140 can control the treatment component 120 of the corresponding sub-region A1 to generate a first signal with the first parameter based on the first parameter of the treatment component 120 of the corresponding sub-region A1. The control circuit 140 can control the treatment component 120 of the corresponding sub-region A2 to generate a second signal with the second parameter based on the second parameter of the treatment component 120 of the corresponding sub-region A2. The control circuit 140 can control the treatment component 120 of the corresponding sub-region A3 to generate a third signal with the third parameter based on the third parameter of the treatment component 120 of the corresponding sub-region A3. In this way, the treatment component 120 provides the first signal, the second signal, and the third signal to the target region (e.g., the affected area) sub-regions A1, A2, and A3 respectively, allowing sub-regions A1, A2, and A3 to receive energy from signals with different parameters, thus providing different treatments to sub-regions A1, A2, and A3.

[0072] Figure 7 This is a top view of a portion of an electronic device according to an embodiment of the present disclosure. Figure 8 for Figure 7 A cross-sectional view of AA'. Please refer to... Figure 7 and Figure 8 The electronic device 100 may include a substrate 110, a treatment component 120, a sensing component 130, a barrier 710, a metal layer 720, an electrode 730, and a photoresist ink layer 740.

[0073] A metal layer 720 is disposed on the substrate 110. In some embodiments, the material 720 of the metal layer may be copper (Cu), but this disclosure is not limited thereto. A sensing component 130 is disposed on the metal layer 720. The sensing component 130 can be electrically connected to the electrode 730 through the metal layer 720, so that the sensing component 130 can be connected to the control circuit (e.g., [missing information]) through the electrode 730. Figure 1 The sensing component 130 is electrically connected to the control circuit 140 so that the sensing component 130 can transmit sensing signals to the control circuit 140, or the control circuit can provide control signals to control the sensing component 130. Additionally, each sensing component 130 can be electrically connected to an active component (e.g., a thin-film transistor) for control via the active component. In some embodiments, the sensing components 130 in the Y direction can be electrically connected to the electrode 730 through the same metal layer 720, but this disclosure is not limited thereto. In some embodiments, the sensing components 130 in the Y direction can be electrically connected to the electrode 730 through different metal layers 720, but this disclosure is not limited thereto.

[0074] Furthermore, the sensing component 130 includes a lower electrode 750, a semiconductor layer 760, and an upper electrode 770. The lower electrode 750 is disposed on the metal layer 720. The semiconductor layer 760 is disposed on the lower electrode 750. The upper electrode 770 is disposed on the semiconductor layer 760. In some embodiments, the lower electrode 750 and the metal layer 720 can be in direct contact, the semiconductor layer 760 and the lower electrode 750 can be in direct contact, and the upper electrode 770 and the lower electrode 750 can be in direct contact, but this disclosure is not limited thereto. In some embodiments, the lower electrode 750 can be a multilayer structure, and the material of the lower electrode can be gold (Au) or nickel (Ni), but this disclosure is not limited thereto. In some embodiments, an intermediate layer may also be included between the lower electrode 750 and the metal layer 720 to increase the bonding effect between the lower electrode 750 and the metal layer 720.

[0075] Additionally, a photoresist ink layer 740 is disposed on the substrate 110. A signal generation component 120 is disposed on the photoresist ink layer 740. A barrier 710 is disposed on the photoresist ink layer 740 and is located between the treatment component 120 and the sensing component 130 in the X direction. In some embodiments, the height of the barrier is, for example, from 0.5 micrometers (µm) to 10 micrometers, or from 5 micrometers to 100 micrometers. Furthermore, in Figure 7 or Figure 8 In the diagram, two baffles 710 are shown between the treatment component 120 and the sensing component 130, but this disclosure is not limited to this; the number of baffles 710 may also be one, three, four, or five. This can improve the situation of material overflow in wet processing.

[0076] The treatment component 120 can also be electrically connected to electrodes (not shown) through a metal layer (not shown), allowing the treatment component 120 to be connected to control circuitry (e.g., through the electrodes). Figure 1 The treatment components 120 are electrically connected to a control circuit so that the control circuit can provide control signals to control the treatment components 120. Additionally, each treatment component 120 can be electrically connected to an active component (e.g., a thin-film transistor) for control via the active component. In some embodiments, the treatment components 120 in the Y direction can be electrically connected to the electrodes through the same metal layer, but this disclosure is not limited thereto. In some embodiments, the treatment components 120 in the Y direction can be electrically connected to the electrodes through different metal layers, but this disclosure is not limited thereto.

[0077] In summary, the electronic device and its operating method according to the embodiments of this disclosure, by setting multiple treatment components on a substrate, wherein the treatment components include a first treatment component and a second treatment component, and the first treatment component and the second treatment component are independently controlled and simultaneously provide signals with different parameters, furthermore, multiple sensing components and control circuits are set on the substrate, the sensing components are arranged adjacent to the treatment components in an array, and the control circuits adjust the parameters of the treatment components according to the sensing signals generated by the sensing components, so as to control the treatment components to generate signals with corresponding parameters. In this way, the convenience of use can be increased or the treatment effect on the target area can be improved.

[0078] Although this disclosure is provided above with reference to embodiments, it is not intended to limit the scope of this disclosure. Those skilled in the art can make some combinations, modifications and refinements without departing from the spirit and scope of this disclosure. Therefore, the scope of protection of this disclosure shall be determined by the appended claims.

Claims

1. An electronic device, characterized in that, include: Multiple treatment components, including a first treatment component and a second treatment component; A first sensing component is disposed between the first treatment component and the second treatment component; A retaining wall is disposed between the first treatment component and the first sensing component; and A photoresist ink layer, wherein the first treatment component, the second treatment component and the barrier are disposed on the photoresist ink layer, a portion of the first sensing component is disposed on the photoresist ink layer, and another portion of the first sensing component is disposed within the photoresist ink layer; The first treatment component and the second treatment component are controlled independently.

2. The electronic device as claimed in claim 1, characterized in that, The multiple treatment components are arranged in an array.

3. The electronic device as claimed in claim 1, characterized in that, It further includes a second sensing component, and the first sensing component and the second sensing component are disposed adjacent to the first treatment component and the second treatment component.

4. The electronic device as claimed in claim 3, characterized in that, The spacing between two adjacent first treatment components and the second treatment components is the same as the spacing between two adjacent first sensing components and the second sensing components.

5. The electronic device as claimed in claim 3, characterized in that, The spacing between two adjacent first treatment components and the second treatment components is different from the spacing between two adjacent first sensing components and the second sensing components.

6. The electronic device as claimed in claim 3, characterized in that, Each of the first sensing component and the second sensing component includes a biosensor and an image sensor.

7. The electronic device as claimed in claim 3, characterized in that, It also includes a control circuit that is electrically connected to the first treatment component, the second treatment component, the first sensing component, and the second sensing component.

8. The electronic device as claimed in claim 1, characterized in that, Each of the plurality of treatment components includes a light-emitting element, a heating element, an ultrasound element, or an electrotherapy element.

9. A method for operating an electronic device, characterized in that, include: Provide a substrate; Multiple treatment components are provided on the substrate, the multiple treatment components including a first treatment component and a second treatment component; A first sensing component is provided on the substrate and disposed between the first treatment component and the second treatment component; A barrier is provided on the substrate and disposed between the first treatment component and the first sensing component; and A photoresist ink layer is provided on the substrate, wherein the first treatment component, the second treatment component and the barrier are disposed on the photoresist ink layer, a portion of the first sensing component is disposed on the photoresist ink layer, and another portion of the first sensing component is disposed within the photoresist ink layer; The first treatment component and the second treatment component simultaneously provide signals with different parameters.

10. The method of operating the electronic device as described in claim 9, characterized in that, The substrate includes a first sub-region and a second sub-region. The first treatment component provides a first signal having a first parameter in the first sub-region, and the second treatment component provides a second signal having a second parameter in the second sub-region.

Citation Information

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