Sensors and Electronics

The sensor improves detection accuracy by using a movable member and differential circuit to suppress noise and enhance sensitivity and linearity in detecting vibrations and resonant frequencies.

JP7680389B2Active Publication Date: 2025-05-20KK TOSHIBA
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Patent Information

Application Number
JP2022035890
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-09
Publication Date
2025-05-20
Estimated Expiration
2042-03-09

AI Technical Summary

Technical Problem

Existing sensors face challenges in achieving high sensitivity, linearity, and noise suppression in detecting vibrations and resonant frequencies.

Method used

The sensor incorporates a first detection element with a movable member, detection electrodes, and a differential circuit that outputs signals based on capacitance differences between these components, allowing for high sensitivity and linearity in detecting vibrations and resonant frequencies.

Benefits of technology

The solution enables improved detection characteristics by suppressing noise and enhancing sensitivity and linearity, enabling accurate detection of external forces and vibrations.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a sensor and an electronic device whose characteristics can be improved.SOLUTION: According to an embodiment, a sensor includes a first detection element and a controller. The first detection element includes a base, a first support, a first movable member, a first detection electrode, and a first opposing detection electrode. The first support part is fixed to the base. The first movable member is supported by the first support part. The first detection electrode and the first opposing detection electrode are fixed to the base. A first movable part of the first movable member includes a first beam, a first conductive extension part, and a first connection part. The first conductive extension part includes a first extension portion, another first extension portion, and a first extension intermediate portion. The first connecting part connects the first extension intermediate portion to the first beam. The first extension portion is between the first detection electrode and the first opposing detection electrode. A first differential circuit of the controller can output a signal according to the difference in capacitance between the first detection electrode and the first extension portion and capacitance between the first opposing detection electrode and the first extension portion.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] FIELD OF THE DISCLOSURE Embodiments of the present invention relate to sensors and electronic devices. [Background technology]

[0002] For example, there is a sensor that uses a MEMS structure, and it is desirable to improve the characteristics of the sensor. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent Publication No. 2022-1828 Summary of the Invention [Problem to be solved by the invention]

[0004] The embodiments provide sensors and electronic devices that can have improved performance. [Means for solving the problem]

[0005] According to an embodiment, the sensor includes a first detection element and a control unit. The first detection element includes a base, a first support, a first movable member, a first detection electrode, and a first opposing detection electrode. The first support is fixed to the base. The first movable member is supported by the first support. A first gap is provided between the base and the first movable member. The first detection electrode is fixed to the base. The first opposing detection electrode is fixed to the base. The first movable member includes a first movable part. The first movable part includes a first beam, a first conductive extension, and a first connection part. The first beam includes a first beam end part, a first beam other end part, and a first beam intermediate part provided between the first beam end part and the first beam other end part. A second direction from the first beam end part to the first beam other end part intersects with a first direction from the base to the first support part. The first conductive extension portion includes a first extension portion, a first extension other portion, and a first extension intermediate portion provided between the first extension portion and the first extension other portion. A direction from the first extension portion to the first extension other portion is along the second direction. The first connection portion connects the first extension intermediate portion to the first beam intermediate portion. The first extension portion is between the first detection electrode and the first opposing detection electrode in a third direction. The third direction intersects with a plane including the first direction and the second direction. The control unit includes a first differential circuit. The first differential circuit is capable of outputting a signal according to a difference between a capacitance between the first detection electrode and the first extension portion and a capacitance between the first opposing detection electrode and the first extension portion. [Brief description of the drawings]

[0006] [Figure 1] FIG. 1 is a schematic view illustrating the sensor according to the first embodiment. [Diagram 2] 2(a) and 2(b) are schematic views illustrating the sensor according to the first embodiment. [Diagram 3] 3(a) to 3(c) are schematic views illustrating the sensor according to the first embodiment. [Figure 4] FIG. 4 is a schematic plan view illustrating the sensor according to the first embodiment. [Diagram 5]FIG. 5 is a schematic cross-sectional view illustrating the sensor according to the second embodiment. As shown in FIG. [Figure 6] FIG. 6 is a schematic view illustrating an electronic device according to the third embodiment. [Figure 7] 7(a) to 7(h) are schematic diagrams illustrating applications of electronic devices. [Figure 8] 8(a) and 8(b) are schematic views illustrating the sensor according to the fourth embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0007] Hereinafter, embodiments of the present invention will be described with reference to the drawings. The drawings are schematic or conceptual, and the relationship between the thickness and width of each part, the size ratio between parts, etc. are not necessarily the same as those in reality. Even when the same part is shown, the dimensions and ratios of each part may be different depending on the drawing. In this specification and each drawing, elements similar to those described above with reference to the previous drawings are given the same reference numerals and detailed descriptions thereof will be omitted as appropriate.

[0008] (First embodiment) FIGS. 1, 2(a), 2(b), and 3(a) to 3(c) are schematic views illustrating the sensor according to the first embodiment. Fig. 2(a) is a plan view. Fig. 2(b) is a cross-sectional view taken along line X1-X2 in Fig. 2(a). Fig. 1 is a plan view showing an enlarged example of a portion of Fig. 2(a). Fig. 3(a) is a cross-sectional view taken along line A1-A2 in Fig. 1. Fig. 3(b) is a cross-sectional view taken along line B1-B2 in Fig. 1. Fig. 3(c) is a cross-sectional view taken along line C1-C2 in Fig. 1.

[0009] As shown in FIG. 1, a sensor 110 according to the embodiment includes a first detection element 10U and a control unit .

[0010] As shown in Figures 2(a) and 2(b), the first detection element 10U includes a base body 50S, a first support portion 50A, a first movable member 10, a first detection electrode 61a, and a first opposing detection electrode 61b. The first support portion 50A is fixed to the base body 50S. The first movable member 10 is supported by the first support portion 50A. A first gap 10Z is provided between the base body 50S and the first movable member 10.

[0011] The first detection electrode 61a is fixed to the base body 50S. The first opposing detection electrode 61b is fixed to the base body 50S (see FIG. 3(a)).

[0012] A first direction D1 from the base 50S to the first support portion 50A is defined as a Z-axis direction. A direction perpendicular to the Z-axis direction is defined as an X-axis direction. A direction perpendicular to the Z-axis direction and the X-axis direction is defined as a Y-axis direction.

[0013] As shown in Fig. 2(b), the base body 50S includes a first surface 50Sf. The first surface 50Sf is along the XY plane. The first movable member 10 extends along the first surface 50Sf. As shown in Fig. 2(a), the first movable member 10 includes a first movable portion 11M.

[0014] As shown in FIG. 1, the first movable portion 11M includes a first beam 11, a first conductive extension portion 21, and a first connection portion 11N.

[0015] The first beam 11 includes a first beam end portion 11e, a first beam other end portion 11f, and a first beam middle portion 11g. The first beam middle portion 11g is provided between the first beam end portion 11e and the first beam other end portion 11f. A second direction D2 from the first beam end portion 11e to the first beam other end portion 11f intersects with the first direction D1. The second direction D2 is, for example, the X-axis direction.

[0016] The first conductive extension portion 21 includes a first extension portion 21e, a first other extension portion 21f, and a first intermediate extension portion 21g. The first intermediate extension portion 21g is provided between the first extension portion 21e and the first other extension portion 21f. The direction from the first extension portion 21e to the first other extension portion 21f is along the second direction D2.

[0017] The first connection portion 11N connects the first extending intermediate portion 21g to the first beam intermediate portion 11g. The first connection portion 11N extends along the Y-axis direction. The length (width) of the first connection portion 11N along the X-axis direction is shorter than the length of the first beam 11 along the X-axis direction. The length (width) of the first connection portion 11N along the X-axis direction is shorter than the length of the first conductive extension portion 21 along the X-axis direction.

[0018] 1, the first extension portion 21e is between the first detection electrode 61a and the first opposing detection electrode 61b in the third direction D3. The third direction D3 intersects with a plane including the first direction D1 and the second direction D2. The third direction D3 is, for example, the Y-axis direction.

[0019] 1, the control unit 70 includes a first differential circuit 71. The first differential circuit 71 can output a signal according to the difference between the capacitance between the first detection electrode 61a and the first extension portion 21e and the capacitance between the first opposing detection electrode 61b and the first extension portion 21e.

[0020] For example, the first beam 11 is capable of vibrating. In response to the vibration of the first beam 11, the first conductive extension 21 is displaced along the third direction D3. In response to the displacement, a first distance between the first extension 21e and the first detection electrode 61a changes. In response to the displacement, a second distance between the first extension 21e and the first opposing detection electrode 61b changes. When the first distance increases, the second distance decreases. When the first distance decreases, the second distance increases.

[0021] A change in the first distance causes a change in a first capacitance between the first extension portion 21e and the first detection electrode 61a. A first electrical signal corresponding to the change in the first capacitance is obtained from the first detection electrode 61a. A change in the second distance causes a second capacitance between the first extension portion 21e and the first opposing detection electrode 61b to change. A second electrical signal corresponding to the change in the second capacitance is obtained from the first opposing detection electrode 61b. When the first capacitance increases, the second capacitance decreases. When the first capacitance decreases, the second capacitance increases.

[0022] The first differential circuit 71 outputs a signal corresponding to the difference between the first electrical signal and the second electrical signal. This signal makes it possible to detect the vibration state of the first beam 11 with high efficiency. For example, common-mode noise is removed. For example, high sensitivity is obtained. For example, good linearity is obtained. According to the embodiment, it is possible to provide a sensor with improved characteristics.

[0023] As shown in Fig. 1, the first detection element 10U may include a first driving electrode 51. The first driving electrode 51 is fixed to a base body 50S (see Fig. 3(b)). As shown in Fig. 1, the first driving electrode 51 faces the first extending intermediate portion 21g. For example, the first extending intermediate portion 21g is between the first beam 11 and the first driving electrode 51 in the third direction D3.

[0024] As shown in FIG. 1, the control unit 70 may include a first drive circuit 76. The first drive circuit 76 is No. 1 A drive signal SD1 can be supplied to the first drive circuit 76. For example, one terminal of the first drive circuit 76 is electrically connected to an electrode 10E (see FIG. 2(b)) provided on the first support portion 50A. The electrode 10E is electrically connected to the first movable member 10. Another terminal of the first drive circuit 76 is electrically connected to the first 2 It is electrically connected to the drive electrode 52. The first beam 11 is capable of vibrating in response to a first drive signal SD1.

[0025] For example, the first drive signal SD1 includes an AC component. The first conductive extension 21 is capacitively coupled to the first drive electrode 51. Due to the capacitive coupling, the first conductive extension 21 vibrates in response to the first drive signal SD1. For example, the first beam 11 resonates. For example, when an external force is applied to the first movable member 10, stress is applied to the first beam 11. The resonant frequency of the first beam 11 changes in response to the stress. The applied external force can be detected by processing a signal corresponding to the change in the resonant frequency.

[0026] In the embodiment, the displacement of the first extension portion 21e in response to the vibration of the first beam 11 is differentially detected by the first detection electrode 61a and the first opposing detection electrode 61b. This allows the vibration state of the first beam 11 to be detected with higher accuracy. For example, noise is suppressed, and detection with high sensitivity and good linearity is possible. This allows the change in the resonant frequency to be grasped more appropriately. For example, the applied external force can be detected more appropriately.

[0027] As shown in FIG. 1, the first detection element 10U may include a first other detection electrode 61c and a first other opposing detection electrode 61d. The first other detection electrode 61c is fixed to the base body 50S. 1 d is fixed to a base body 50S (see FIG. 3(c)).

[0028] As shown in FIG. 1, the first extending other portion 21f is located between the first other detection electrode 61c and the first other opposing detection electrode 61d in the third direction D3.

[0029] The first differential circuit 71 can output a signal according to the difference between the capacitance between the first other detection electrode 61c and the first extending other portion 21f and the capacitance between the first other opposing detection electrode 61d and the first extending other portion 21f. For example, due to the influence of parasitic capacitance caused by wiring, etc., No. 1 Noise due to the drive signal SD1 may occur in the detection signal. The noise may deteriorate the detection characteristics of the change in the resonance frequency. In the embodiment, for example, the noise is further suppressed, and detection with higher sensitivity and better linearity is possible.

[0030] 1, the first other detection electrode 61c may be electrically connected to the first detection electrode 61a, and the first other opposing detection electrode 61d may be electrically connected to the first opposing detection electrode 61b.

[0031] The position of the first other detection electrode 61c in the third direction D3 is between the position of the first beam other end 11f in the third direction D3 and the position of the first other opposing detection electrode 61d in the third direction D3.

[0032] The position of the first detection electrode 61a in the third direction D3 is between the position of the first beam end 11e in the third direction D3 and the position of the first opposing detection electrode 61b in the third direction D3.

[0033] As shown in Fig. 2(a), the first movable member 10 may include a first movable base 10A, a connecting base 10P, and a second movable base 10B. As shown in Fig. 2(b), the first movable base 10A is supported by a first support portion 50A. The connecting base 10P is supported by the first movable base 10A. The second movable base 10B is supported by the connecting base 10P. The direction from the first movable base 10A to the second movable base 10B is along a second direction D2.

[0034] The first beam end 11e is connected to the first movable base 10 A. The first beam other end 11f is connected to the second movable base 10 B. The first beam 11 is, for example, a doubly supported beam.

[0035] The width of the connecting base 10P along the third direction D3 is shorter than the width of the first movable base 10A along the third direction D3. The width of the connecting base 10P along the third direction D3 is shorter than the width of the second movable base 10B along the third direction D3. For example, when an external force is applied, the second movable base 10B can be displaced along a rotation direction centered on the connecting base 10P. This displacement applies a compressive stress or a tensile stress to the first beam 11. The resonant frequency of the first beam 11 changes depending on the stress. The external force can be detected by detecting the change in the resonant frequency.

[0036] 2(a) and 2(b), the first movable member 10 may include a movable weight portion 10X. The movable weight portion 10X is supported by a second movable base portion 10B. In the second direction D2, the second movable base portion 10B is located between the first movable base portion 10A and the movable weight portion 10X.

[0037] When an external force is applied, the movable weight portion 10X is displaced along the direction of rotation about the connection base portion 10P. A large displacement is easily obtained. This increases the stress applied to the first beam 11. Higher sensitivity is obtained.

[0038] 1, the first movable member 10 may include a second movable portion 12M. The second movable portion 12M includes a second beam 12, a second conductive extension portion 22, and a second connection portion 12N.

[0039] The second beam 12 includes a second beam end portion 12e, a second beam other end portion 12f, and a second beam middle portion 12g. The second beam middle portion 12g is provided between the second beam end portion 12e and the second beam other end portion 12f. The direction from the second beam end portion 12e to the second beam other end portion 12f is along the second direction D2.

[0040] The second conductive extension portion 22 includes a second extension portion 22e, a second other extension portion 22f, and a second intermediate extension portion 22g. The second intermediate extension portion 22g is provided between the second extension portion 22e and the second other extension portion 22f. The direction from the second extension portion 22e to the second other extension portion 22f is along the second direction D2.

[0041] The second connection portion 12N connects the second extending middle portion 22g to the second beam middle portion 12g. The second connection portion 12N extends along the third direction D3.

[0042] The second extension portion 22e is located between the second detection electrode 62a and the second opposing detection electrode 62b in the third direction D3.

[0043] The second beam end portion 12e is connected to the first movable base portion 10A. The second beam other end portion 12f is connected to the second movable base portion 10B. The connection base portion 10P is between the second beam 12 and the first beam 11 in the third direction D3.

[0044] The control unit 70 includes a second differential circuit 72. The second differential circuit 72 can output a signal according to the difference between the capacitance between the second detection electrode 62a and the second extension portion 22e and the capacitance between the second opposing detection electrode 62b and the second extension portion 22e. For example, noise is further suppressed, and detection with higher sensitivity and better linearity is possible.

[0045] As shown in Fig. 1, the first detection element 10U may include a second drive electrode 52. As shown in Fig. 3(b), the second drive electrode 52 is fixed to the base body 50S. The second drive electrode 52 faces the second extending intermediate portion 22g. In the third direction D3, the second extending intermediate portion 22g is between the second drive electrode 52 and the second beam 12.

[0046] The first drive circuit 76 is capable of supplying a second drive signal SD2 to the second drive electrode 52. The second beam 12 is capable of vibrating in response to the second drive signal SD2.

[0047] For example, when an external force is applied and the movable weight portion 10X is displaced, one of compressive stress and tensile stress is applied to the first beam 11. At this time, the other of compressive stress and tensile stress is applied to the second beam 12. The resonant frequency of the first beam 11 changes either increasing or decreasing. The resonant frequency of the second beam 12 changes either increasing or decreasing. Signals corresponding to the vibration of these beams are obtained by the detection electrodes. By performing differential processing on the signal obtained from the first movable portion 11M and the signal obtained from the second movable portion 12M, the change in the resonant frequency can be detected with higher accuracy.

[0048] In the embodiment, a differential signal between the signal from the first detection electrode 61a and the signal from the first opposing detection electrode 61b constitutes at least a part of the signal obtained from the first movable part 11M. A differential signal between the signal from the second detection electrode 62a and the signal from the second opposing detection electrode 62b constitutes at least a part of the signal obtained from the second movable part 12M.

[0049] As shown in FIG. 1, for example, the control unit 70 may include a processing unit 77. The processing unit 77 can output a signal corresponding to the difference between the resonant frequency of the first beam 11 and the resonant frequency of the second beam 12 based on the output signal of the first differential circuit 71 and the output signal of the second differential circuit 72. As already described, an AC signal is supplied from the first driving circuit 76 to the first driving electrode 51 and the second driving electrode 52. The processing unit 77 may perform processing synchronized with the AC signal. For example, synchronous detection processing may be performed in the processing unit 77. For example, filtering processing may be performed in the processing unit 77. For example, the processing unit 77 may detect a C / V (Capacitance / Voltage) ratio and output a signal corresponding to the difference between the resonant frequency of the first beam 11 and the resonant frequency of the second beam 12. ) Conversion processing may be performed. C / V conversion processing may be performed, for example, in at least one of the first differential circuit 71 and the second differential circuit 72. For example, AD conversion processing may be performed in the processing unit 77. For example, PLL (Phase Locked Loop) processing may be performed in the processing unit 77. For example, DA conversion processing may be performed in the processing unit 77. For example, FFT (Fast Fourier Transform) processing may be performed in the processing unit 77.

[0050] As shown in Fig. 1, the first detection element 10U includes a second other detection electrode 62c and a second other opposing detection electrode 62d. The second other detection electrode 62c is fixed to the base body 50S. The second other opposing detection electrode 62d is fixed to the base body 50S (see Fig. 3(c)). As shown in Fig. 1, the second extending other portion 22f is located between the second other detection electrode 62c and the second other opposing detection electrode 62d in the third direction D3.

[0051] The second differential circuit 72 is capable of outputting a signal according to the difference between the electrostatic capacitance between the second other detection electrode 62c and the second extending other portion 22f and the electrostatic capacitance between the second other opposing detection electrode 62d and the second extending other portion 22f.

[0052] The position of the second other detection electrode 62c in the third direction D3 is between the position of the second beam other end 12f in the third direction D3 and the position of the second other opposing detection electrode 62d in the third direction D3.

[0053] The position of the second detection electrode 62a in the third direction D3 is between the position of the second beam end portion 12e in the third direction D3 and the position of the second opposing detection electrode 62b in the third direction D3.

[0054] 2(a) and 2(b), in the XY plane, a structure 59 may be provided around the first movable member 10. At least a part of the structure 59 may function as a stopper for the first movable member 10.

[0055] FIG. 4 is a schematic plan view illustrating the sensor according to the first embodiment. 4, a sensor 111 according to the embodiment also includes a first detection element 10U and a control unit 70. In the sensor 111, a first movable part 11M provided in the first detection element 10U includes a plurality of first conductive extension parts 21 and a plurality of first connection parts 11N. One of the plurality of first connection parts 11N connects one of the plurality of first conductive extension parts 21 to another one of the plurality of first conductive extension parts 21.

[0056] The first detection element 10U includes a plurality of first detection electrodes (the first detection electrode 61a and the detection electrode 66a) and a plurality of first opposing detection electrodes (the first opposing detection electrode 61b and the detection electrode 66b). A portion of one of the plurality of first conductive extensions 21 is between one of the plurality of first detection electrodes (for example, the detection electrode 66a) and one of the plurality of first opposing detection electrodes (for example, the detection electrode 66b) in the third direction D3.

[0057] The first detection element 10U may include a plurality of first other detection electrodes (the first other detection electrode 61c and the detection electrode 66c) and a plurality of first other opposing detection electrodes (the first other opposing detection electrode 61d and the detection electrode 66d). Another part of one of the plurality of first conductive extensions 21 is between one of the plurality of first other detection electrodes (for example, the detection electrode 66c) and one of the plurality of first other opposing detection electrodes (for example, the detection electrode 66d) in the third direction D3.

[0058] One of the multiple first conductive extensions 21 is between the first beam 11 and another of the multiple first conductive extensions 21 in the third direction D3. The length of the one of the multiple first conductive extensions 21 in the second direction D2 is longer than the length of the other one of the multiple first conductive extensions 21 in the second direction D2. The length (length along the second direction D2) of the first conductive extension 21 closer to the first beam 11 is longer than the length (length along the second direction D2) of the first conductive extension 21 farther from the first beam 11. For example, when the first movable part 11M is displaced so as to rotate, it becomes difficult for the first movable part 11M to come into contact with other members.

[0059] 4, in the sensor 111, the second movable portion 12M provided in the first detection element 10U may include a plurality of second conductive extensions 22 and a plurality of second connection portions 12N. One of the plurality of second connection portions 12N connects one of the plurality of second conductive extensions 22 to another of the plurality of second conductive extensions 22.

[0060] The first detection element 10U may include a plurality of second detection electrodes (the second detection electrode 62a and the detection electrode 67a) and a plurality of second opposing detection electrodes (the second opposing detection electrode 62b and the detection electrode 67b). A portion of one of the plurality of second conductive extensions 22 is between one of the plurality of second detection electrodes (for example, the detection electrode 67a) and one of the plurality of second opposing detection electrodes (for example, the detection electrode 67b) in the third direction D3.

[0061] The first detection element 10U may include a plurality of second other detection electrodes (the second other detection electrode 62c and the detection electrode 67c) and a plurality of second other opposing detection electrodes (the second other opposing detection electrode 62d and the detection electrode 67d). Another part of one of the plurality of second conductive extensions 22 is between one of the plurality of second other detection electrodes (for example, the detection electrode 67c) and one of the plurality of second other opposing detection electrodes (for example, the detection electrode 67d) in the third direction D3.

[0062] One of the multiple second conductive extensions 22 is between the second beam 12 and another of the multiple second conductive extensions 22 in the third direction D3. The length of the one of the multiple second conductive extensions 22 in the second direction D2 is longer than the length of the other one of the multiple second conductive extensions 22 in the second direction D2. The length (length along the second direction D2) of the second conductive extension 22 closer to the second beam 12 is longer than the length (length along the second direction D2) of the second conductive extension 22 farther from the second beam 12. For example, when the second movable part 12M is displaced so as to rotate, it becomes difficult for the second movable part 12M to come into contact with other members.

[0063] In the embodiment, the number of the first conductive extension parts 21 and the number of the second conductive extension parts 22 are arbitrary.

[0064] The sensor according to the embodiment (sensor 110 or 111) can be applied to, for example, a DRA (Differential Resonant Accelerometer). In one example of the embodiment, a plurality of extended conductive parts are provided. This forms a "tree-type electrode." The plurality of extended conductive parts are connected to a plurality of movable beams (two resonant beams). This provides high capacitance sensitivity. For example, it is easy to reduce phase noise in a PLL circuit. For example, it is easy to achieve high accuracy (for example, low drift). In the two resonant beams, the temperature coefficients of the resonant frequencies are maintained substantially the same, and high temperature stability is obtained by, for example, differential processing.

[0065] Second embodiment FIG. 5 is a schematic cross-sectional view illustrating the sensor according to the second embodiment. As shown in FIG. As shown in FIG. 5, the sensor 120 according to the embodiment includes a second detection element 10V in addition to the first detection element 10U described in relation to the first embodiment. The second detection element 10V includes, for example, a second support 50B and a second movable member 10S. The second support 50B is fixed to the base 50S. The second movable member 10S is supported by the second support 50B and is separated from the base 50S. The sensor 120 can detect the angle of the sensor 120 by a signal corresponding to the movement of the second movable member 10S. For example, at least a part of the second movable member 10S is vibrated. The angle can be detected by detecting the vibration state that changes according to the change in angle. For example, the angle is detected based on the principle of Foucault's pendulum. The second movable member 10S is, for example, a rate integrating gyroscope (RIG). The sensor 120 is, for example, an inertial measurement unit (IMU).

[0066] In the sensor 120, the configurations of the base body 50S, the first support portion 50A, the first movable member 10, etc. can be the same as those described in relation to the first embodiment.

[0067] As shown in FIG. 5, the sensor 120 may be provided with a lid portion 10R. The lid portion 10R is connected to a base body 50S. Between the base body 50S and the lid portion 10R, there are a first support portion 50A, a first movable member 10, a second support portion 50B, and a second movable member 10S. For example, a space SP surrounded by the base body 50S and the lid portion 10R is less than 1 atmosphere. By reducing the pressure of the space SP, more accurate detection can be performed. The space SP is, for example, 0.1 Pa or less.

[0068] As shown in FIG. 5, an electrical signal obtained from the first movable member 10 and an electrical signal obtained from the second movable member 10S may be supplied to a processing circuit 75. For example, the first movable member 10 and the processing circuit 75 are electrically connected by a wiring 78a. The second movable member 10S and the processing circuit 75 are electrically connected by a wiring 78b. The processing circuit 75 is, for example, a PLL circuit. The processing circuit 75 is, for example, included in the control unit 70. The processing circuit 75 can detect a change in the resonance frequency obtained from the first movable member 10. This allows, for example, acceleration and temperature to be detected. The processing circuit 75 can detect a change in the resonance frequency obtained from the second movable member 10S. This allows, for example, an angle to be detected. Angular velocity may also be detected. A small sensor is obtained.

[0069] Third embodiment The third embodiment relates to an electronic device. FIG. 6 is a schematic view illustrating an electronic device according to the third embodiment. As shown in FIG. 6, an electronic device 310 according to the third embodiment includes a sensor according to the first or second embodiment and a circuit processing unit 170. In the example of FIG. 6, a sensor 110 is depicted as the sensor. The circuit processing unit 170 can control a circuit 180 based on a signal S1 obtained from the sensor. The circuit 180 is, for example, a control circuit for a driving device 185. According to the embodiment, the circuit 180 for controlling the driving device 185 can be controlled with high accuracy based on a highly accurate detection result.

[0070] 7(a) to 7(h) are schematic diagrams illustrating applications of electronic devices. As shown in FIG. 7(a), the electronic device 310 may be at least a part of a robot. As shown in FIG. 7(b), the electronic device 310 may be at least a part of a machine robot installed in a manufacturing factory or the like. As shown in FIG. 7(c), the electronic device 310 may be at least a part of an automatic guided vehicle in a factory or the like. As shown in FIG. 7(d), the electronic device 310 may be at least a part of a drone (unmanned aerial vehicle). As shown in FIG. 7(e), the electronic device 310 may be at least a part of an airplane. As shown in FIG. 7(f), the electronic device 310 may be at least a part of a ship. As shown in FIG. 7(g), the electronic device 310 may be at least a part of a submarine. As shown in FIG. 7(h), the electronic device 310 may be at least a part of a car. The electronic device 310 according to the third embodiment may include, for example, at least one of a robot and a moving object.

[0071] (Fourth embodiment) 8(a) and 8(b) are schematic views illustrating the sensor according to the fourth embodiment. As shown in Fig. 8(a), a sensor 430 according to the embodiment includes the above-described sensor according to the embodiment and a transmitting / receiving unit 420. In the example of Fig. 8(a), the sensor 110 is depicted as the sensor. The transmitting / receiving unit 420 can transmit a signal obtained from the sensor 110, for example, by at least one of a wireless and a wired method. The sensor 430 is provided, for example, on a slope surface 410 of a road 400 or the like. The sensor 430 can monitor, for example, the state of a facility (for example, infrastructure) or the like. The sensor 430 may be, for example, a state monitoring device.

[0072] For example, the sensor 430 detects a change in the condition of the slope surface 410 of the road 400 with high accuracy. The change in the condition of the slope surface 410 includes, for example, at least one of a change in the inclination angle and a change in the vibration state. A signal (inspection result) obtained from the sensor 110 is transmitted by the transceiver unit 420. The condition of a facility (e.g., infrastructure) can be monitored, for example, continuously.

[0073] As shown in FIG. 8(b), the sensor 430 is provided, for example, in a part of a bridge 460. The bridge 460 is provided on a river 470. For example, the bridge 460 includes at least one of a main girder 450 and a pier 440. The sensor 430 is provided in at least one of the main girder 450 and the pier 440. For example, due to deterioration or the like, the angle of at least one of the main girder 450 and the pier 440 may change. For example, the vibration state of at least one of the main girder 450 and the pier 440 may change. The sensor 430 detects these changes with high accuracy. The detection result can be transmitted to any location by the transmitting / receiving unit 420. Anomalies can be effectively detected.

[0074] The embodiment may include the following configurations (e.g., technical solutions). (Configuration 1) A first detection element; A control unit; Equipped with The first detection element is A substrate; A first support portion fixed to the base; a first movable member supported by the first support portion, the first movable member having a first gap between the base and the first movable member; A first detection electrode fixed to the substrate; A first opposing detection electrode fixed to the substrate; Including, the first movable member includes a first movable portion, the first movable portion including a first beam, a first conductive extension portion, and a first connection portion; the first beam includes a first beam end portion, a first beam other end portion, and a first beam intermediate portion provided between the first beam end portion and the first beam other end portion, a second direction from the first beam end portion to the first beam other end portion intersects with a first direction from the base to the first support portion, the first conductive extension portion includes a first extension portion, a first extension other portion, and a first extending intermediate portion provided between the first extension portion and the first extension other portion, the direction from the first extension portion to the first extension other portion being along the second direction, The first connection portion is The above A first extending intermediate portion is connected to the first beam intermediate portion; the first extension portion is between the first detection electrode and the first opposing detection electrode in a third direction, the third direction intersecting a plane including the first direction and the second direction; The control unit includes a first differential circuit, The sensor, wherein the first differential circuit is capable of outputting a signal according to the difference between a capacitance between the first detection electrode and the first extension portion and a capacitance between the first opposing detection electrode and the first extension portion.

[0075] (Configuration 2) the first detection element includes a first drive electrode fixed to the substrate; The sensor of configuration 1, wherein the first drive electrode faces the first extended intermediate portion.

[0076] (Configuration 3) The sensor of configuration 2, wherein the first extended intermediate portion is between the first beam and the first drive electrode in the third direction.

[0077] (Configuration 4) The control unit includes a first drive circuit, the first drive circuit is capable of supplying a first drive signal to the first drive electrode; The sensor of configuration 2 or 3, wherein the first beam is vibrable in response to the first drive signal.

[0078] (Configuration 5) The first detection element is A first other detection electrode fixed to the substrate; a first other opposing detection electrode fixed to the base; Further comprising: the first extending other portion is located between the first other detection electrode and the first other opposing detection electrode in the third direction, The sensor described in configuration 4, wherein the first differential circuit is capable of outputting a signal corresponding to the difference between the capacitance between the first other detection electrode and the first extending other portion and the capacitance between the first other opposing detection electrode and the first extending other portion.

[0079] (Configuration 6) the first other detection electrode is electrically connected to the first detection electrode; The sensor of configuration 5, wherein the first other opposing detection electrode is electrically connected to the first opposing detection electrode.

[0080] (Configuration 7) The sensor of configuration 5 or 6, wherein the position of the first other detection electrode in the third direction is between the position of the other end of the first beam in the third direction and the position of the first other opposing detection electrode in the third direction.

[0081] (Configuration 8) The sensor of any one of configurations 5 to 7, wherein the position of the first detection electrode in the third direction is between the position of the first beam end in the third direction and the position of the first opposing detection electrode in the third direction.

[0082] (Configuration 9) The first movable member is A first movable base supported by the first support; A connection base supported by the first movable base; A second movable base supported by the connection base; Including, a direction from the first movable base to the second movable base is along the second direction; The first beam end is connected to the first movable base, The other end of the first beam is connected to the second movable base. The sensor according to any one of configurations 4 to 8.

[0083] (Configuration 10) the first movable member includes a movable weight portion supported by the second movable base portion, 10. The sensor of claim 9, wherein in the second direction, the second movable base is between the first movable base and the movable weight portion.

[0084] (Configuration 11) the first sensing element further includes a second sensing electrode and a second opposing sensing electrode; The first movable member includes a second movable portion, the second movable portion includes a second beam, a second conductive extension portion, and a second connection portion; The second beam includes a second beam end portion, a second beam other end portion, and a second beam intermediate portion provided between the second beam end portion and the second beam other end portion. Department and , and the direction from the second beam end to the second beam other end is along the second direction; the second conductive extension portion includes a second extension portion, a second extension other portion, and a second extension intermediate portion provided between the second extension portion and the second extension other portion, the direction from the second extension portion to the second extension other portion being along the second direction, The second connection portion is The above A second extending intermediate portion is connected to the second beam intermediate portion; the second extension portion is located between the second detection electrode and the second opposing detection electrode in the third direction, The second beam end is connected to the first movable base, The other end of the second beam is connected to the second movable base, the connection base is located between the second beam and the first beam in the third direction, The control unit includes a second differential circuit, The second differential circuit detects a capacitance between the second detection electrode and the second extension portion, and a capacitance between the second opposing detection electrode and the second extension portion. Capacitance The sensor according to configuration 9 or 10, capable of outputting a signal according to the difference between and .

[0085] (Configuration 12) the first detection element includes a second drive electrode fixed to the substrate; 12. The sensor of claim 11, wherein the second drive electrode faces the second extended intermediate portion.

[0086] (Configuration 13) the first drive circuit is capable of supplying a second drive signal to the second drive electrode; 13. The sensor of claim 12, wherein the second beam is capable of vibrating in response to the second drive signal.

[0087] (Configuration 14) The first detection element is A second other detection electrode fixed to the substrate; A second other opposing detection electrode fixed to the base; Further comprising: the second extending other portion is located between the second other detection electrode and the second other opposing detection electrode in the third direction, The sensor of any one of configurations 11 to 13, wherein the second differential circuit is capable of outputting a signal corresponding to the difference between the capacitance between the second other detection electrode and the second extending other portion and the capacitance between the second other opposing detection electrode and the second extending other portion.

[0088] (Configuration 15) The sensor of configuration 14, wherein the position of the second other detection electrode in the third direction is between the position of the other end of the second beam in the third direction and the position of the second other opposing detection electrode in the third direction.

[0089] (Configuration 16) The sensor of any one of configurations 11 to 15, wherein the position of the second detection electrode in the third direction is between the position of the second beam end in the third direction and the position of the second opposing detection electrode in the third direction.

[0090] (Configuration 17) The control unit includes a processing unit, The sensor of any one of configurations 11 to 16, wherein the processing unit is capable of outputting a signal corresponding to a difference between the resonant frequency of the first beam and the resonant frequency of the second beam based on the output signal of the first differential circuit and the output signal of the second differential circuit.

[0091] (Configuration 18) the first movable portion includes a plurality of the first conductive extension portions and a plurality of the first connection portions, one of the plurality of first connection portions connects one of the plurality of first conductive extension portions to another of the plurality of first conductive extension portions; the first detection element includes a plurality of the first detection electrodes and a plurality of the first opposing detection electrodes; A sensor described in any one of configurations 1 to 17, wherein a portion of one of the plurality of first conductive extension portions is between one of the plurality of first detection electrodes and one of the plurality of first opposing detection electrodes in the third direction.

[0092] (Configuration 19) the one of the plurality of first conductive extension parts is between the first beam and the other one of the plurality of first conductive extension parts in the third direction; The sensor of configuration 18, wherein the length of one of the plurality of first conductive extension portions in the second direction is longer than the length of another of the plurality of first conductive extension portions in the second direction.

[0093] (Configuration 20) A sensor according to any one of configurations 1 to 19, a circuit processing unit capable of controlling a circuit based on a signal obtained from the sensor; An electronic device comprising:

[0094] According to the embodiment, a sensor and an electronic device can be provided that can improve characteristics.

[0095] The above describes the embodiment of the present invention with reference to specific examples. However, the present invention is not limited to these specific examples. For example, the specific configurations of each element included in the sensor, such as the base, support, movable part, and processing part, are included in the scope of the present invention as long as a person skilled in the art can implement the present invention in a similar manner and obtain similar effects by appropriately selecting them from the known range.

[0096] Furthermore, any combination of two or more elements of each of the specific examples, within the scope of technical feasibility, is also included within the scope of the present invention as long as it includes the gist of the present invention.

[0097] In addition, all sensors and electronic devices that can be implemented by a person skilled in the art by making appropriate design modifications based on the sensors and electronic devices described above as embodiments of the present invention also fall within the scope of the present invention as long as they include the gist of the present invention.

[0098] In addition, within the scope of the concept of the present invention, a person skilled in the art may conceive of various modifications and alterations, and it will be understood that these modifications and alterations also fall within the scope of the present invention.

[0099] Although some embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These novel embodiments can be implemented in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention. These embodiments and their modifications are included in the scope and spirit of the invention, and are included in the scope of the invention and its equivalents described in the claims. [Explanation of symbols]

[0100] 10...first movable member, 10A...first movable base, 10B...second movable base, 10E...electrode, 10P...connection base, 10R...cover, 10S...second movable member, 10U...first detection element, 10V...second detection element, 10X...movable weight portion, 10Z...first gap, 11, 12...first and second beams, 11M, 12M...first and second movable portions, 11N, 12N...first and second connection portions, 11e, 12e...first and second beam ends, 11f, 12f...first and second beam other ends, 11g, 12g...first and second beam intermediate portions, 21, 22...first and second conductive extension portions, 21e, 22e...first and second extension portions, 21f, 22f...first and second other extended portions; 21g, 22g...first and second intermediate extended portions; 50A, 50B...first and second support portions; 50S...base body; 50Sf...first surface; 51, 52...first and second drive electrodes; 59...structure; 61a, 62a...first and second detection electrodes; 61b, 62b...first and second opposing detection electrodes; 61c, 62c...first and second other detection electrodes; 61d, 62d...first and second other opposing detection electrodes; 66a to 55d, 67a to 67d...detection electrodes; 70...control unit; 71, 72...first and second differential circuits; 75...processing circuit; 76...first drive circuit; 77...processing unit; 78a, 78b...wiring; 110, 111, 120...sensor, 170...circuit processing unit, 180...circuit, 185...driving device, 310...electronic device, 410...slope surface, 420...transmitting / receiving unit, 430...sensor, 440...pier, 450...main girder, 460...bridge, 470...river, D1~D3...first to third directions, S1...signal, SD1, SD2...first and second driving signals, SP...space

Claims

1. A first detection element; A control unit; Equipped with The first detection element is A substrate; A first support portion fixed to the base body; a first movable member supported by the first support portion, the first movable member having a first gap between the base and the first movable member; A first detection electrode fixed to the substrate; A first opposing detection electrode fixed to the substrate; Including, the first movable member includes a first movable portion, the first movable portion including a first beam, a first conductive extension portion, and a first connection portion; the first beam includes a first beam end portion, a first beam other end portion, and a first beam intermediate portion provided between the first beam end portion and the first beam other end portion, a second direction from the first beam end portion to the first beam other end portion intersects with a first direction from the base to the first support portion, the first conductive extension portion includes a first extension portion, a first extension other portion, and a first extension intermediate portion provided between the first extension portion and the first extension other portion, the direction from the first extension portion to the first extension other portion being along the second direction, The first connection portion connects the first extending intermediate portion to the first beam intermediate portion, the first extension portion is between the first detection electrode and the first opposing detection electrode in a third direction, the third direction intersecting a plane including the first direction and the second direction; the control unit includes a first differential circuit, the first differential circuit is capable of outputting a signal according to a difference between a capacitance between the first detection electrode and the first extension portion and a capacitance between the first opposing detection electrode and the first extension portion, the first detection element includes a first drive electrode fixed to the substrate; The first drive electrode faces the first extending intermediate portion.

2. The control unit includes a first drive circuit, the first drive circuit is capable of supplying a first drive signal to the first drive electrode; The sensor of claim 1 , wherein the first beam is vibrable in response to the first drive signal.

3. The first detection element is A first other detection electrode fixed to the substrate; a first other opposing detection electrode fixed to the base; Further comprising: the first extending other portion is located between the first other detection electrode and the first other opposing detection electrode in the third direction, 3. The sensor according to claim 2, wherein the first differential circuit is capable of outputting a signal corresponding to a difference between a capacitance between the first other detection electrode and the first extending other portion and a capacitance between the first other opposing detection electrode and the first extending other portion.

4. The first movable member is A first movable base supported by the first support; A connection base supported by the first movable base; A second movable base supported by the connection base; Including, a direction from the first movable base to the second movable base is along the second direction; The first beam end is connected to the first movable base, The other end of the first beam is connected to the second movable base.

4. The sensor according to claim 2 or 3.

5. the first sensing element further includes a second sensing electrode and a second opposing sensing electrode; The first movable member includes a second movable portion, the second movable portion includes a second beam, a second conductive extension portion, and a second connection portion; The second beam includes a second beam end portion, a second beam other end portion, and a second beam intermediate portion provided between the second beam end portion and the second beam other end portion, and a direction from the second beam end portion to the second beam other end portion is along the second direction, the second conductive extension portion includes a second extension portion, a second other extension portion, and a second intermediate extension portion provided between the second extension portion and the second other extension portion, the direction from the second extension portion to the second other extension portion being along the second direction, The second connection portion connects the second extending intermediate portion to the second beam intermediate portion, the second extension portion is located between the second detection electrode and the second opposing detection electrode in the third direction, The second beam end is connected to the first movable base, The other end of the second beam is connected to the second movable base, the connection base is located between the second beam and the first beam in the third direction, the control unit includes a second differential circuit, 5. The sensor according to claim 4, wherein the second differential circuit is capable of outputting a signal according to a difference between a capacitance between the second detection electrode and the second extension portion and a capacitance between the second opposing detection electrode and the second extension portion.

6. the first detection element includes a second drive electrode fixed to the substrate; The sensor of claim 5 , wherein the second drive electrode faces the second extending intermediate portion.

7. The control unit includes a processing unit, 7. The sensor according to claim 5, wherein the processing unit is capable of outputting a signal corresponding to a difference between a resonant frequency of the first beam and a resonant frequency of the second beam based on an output signal of the first differential circuit and an output signal of the second differential circuit.

8. the first movable portion includes a plurality of the first conductive extension portions and a plurality of the first connection portions, one of the plurality of first connection portions connects one of the plurality of first conductive extension portions to another of the plurality of first conductive extension portions; the first detection element includes a plurality of the first detection electrodes and a plurality of the first opposing detection electrodes, A sensor according to any one of claims 1 to 7, wherein a portion of one of the plurality of first conductive extensions is between one of the plurality of first detection electrodes and one of the plurality of first opposing detection electrodes in the third direction.

9. A sensor according to any one of claims 1 to 8; a circuit processing unit capable of controlling a circuit based on a signal obtained from the sensor; An electronic device comprising:

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