Physical Quantity Sensors and Inertial Measurement Units

The innovative sensor design addresses miniaturization challenges by arranging electrodes in orthogonal directions, enhancing sensitivity and reducing dead space, resulting in a compact and accurate acceleration detection system.

JP7793933B2Active Publication Date: 2026-01-06SEIKO EPSON CORP
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Patent Information

Application Number
JP2021177282
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-29
Publication Date
2026-01-06
Estimated Expiration
2041-10-29

AI Technical Summary

Technical Problem

Existing physical quantity sensors face challenges in miniaturization due to dead space created when multiple inertial sensors are arranged side by side, compromising sensitivity and size reduction.

Method used

A physical quantity sensor design featuring a first fixed electrode portion, a first movable electrode portion, a first support beam, a second support beam, and a connecting portion that arranges these elements in orthogonal directions, allowing for increased sensitivity while minimizing dead space through a one-sided seesaw structure and strategic electrode positioning.

Benefits of technology

The design enhances sensitivity to acceleration detection while achieving miniaturization by optimizing electrode arrangement and reducing unnecessary space, thereby improving detection accuracy and reducing sensor size.

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Abstract

To provide a physical quantity sensor that can achieve both size reduction and accuracy improvement.SOLUTION: A physical quantity sensor 1 includes: a first stationary electrode part 10; a first movable electrode part 20; a first stationary part 40 that is fixed to a substrate 2; a first support beam 42 that is connected with the first stationary part 40 at one end; a second support beam 43 that is connected with the first stationary part 40 at one end; and a first connection part 30 that connects the other end of the first support beam 42 and the other end of the second support beam 43 and the first movable electrode part 20 with each other. In plan view in a third direction DR3 orthogonal to the substrate 2, the first movable electrode part 20 and first stationary part 40 are arranged along a first direction DR1. The first support beam 42 and second support beam 43 are arranged along a second direction DR2. The first connection part 30 includes a first portion 31 that is arranged along the second direction DR2 side by side with the first support beam 42 and second support beam 43, and a second portion 32 that is connected with the first portion 31 and first movable electrode 20 and arranged along the first direction DR1.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a physical quantity sensor, an inertial measurement unit, and the like. [Background technology]

[0002] Physical quantity sensors that detect physical quantities such as acceleration have been known for some time. One such physical quantity sensor is disclosed in Patent Document 1. Patent Document 1 discloses a physical quantity sensor that includes two inertial sensors each having a fixed electrode and a movable electrode. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent Publication No. 2021-032820 Summary of the Invention [Problem to be solved by the invention]

[0004] The physical quantity sensor disclosed in Patent Document 1 includes multiple inertial sensors to detect physical quantities with high sensitivity. However, when multiple inertial sensors are arranged side by side in the Y direction within the physical quantity sensor, dead space tends to be created, making it difficult to miniaturize the physical quantity sensor. [Means for solving the problem]

[0005] One aspect of the present disclosure relates to a physical quantity sensor including: a first fixed electrode portion provided on a substrate; a first movable electrode portion provided such that a movable electrode faces the fixed electrode of the first fixed electrode portion; at least one first fixed portion fixed to the substrate; a first support beam having one end connected to the first fixed portion; a second support beam having one end connected to the first fixed portion; and a first connecting portion connecting the other end of the first support beam and the other end of the second support beam to the first movable electrode portion, wherein when three directions orthogonal to one another are defined as a first direction, a second direction, and a third direction, in a plan view in the third direction orthogonal to the substrate, the first movable electrode portion and the first fixed portion are arranged along the first direction, and the first support beam and the second support beam are arranged along the second direction, and the first connecting portion includes a first portion arranged alongside the first support beam and the second support beam along the second direction, and a second portion connected to the first portion and the first movable electrode portion and arranged along the first direction.

[0006] Another aspect of the present disclosure relates to an inertial measurement unit including the physical quantity sensor described above and a control unit that performs control based on a detection signal output from the physical quantity sensor. [Brief explanation of the drawings]

[0007] [Figure 1] 1 shows an example of the configuration of a physical quantity sensor according to the present embodiment. [Figure 2] FIG. 1 is an explanatory diagram of the layout of physical quantity sensors. [Figure 3] FIG. [Figure 4] FIG. [Figure 5] An explanatory diagram of rotational motion. [Figure 6] FIG. 10 is an explanatory diagram of a comparative example of the physical quantity sensor of the present embodiment. [Figure 7] FIG. 10 is a plan view showing another configuration example of the physical quantity sensor. [Figure 8] FIG. 10 is a plan view showing another configuration example of the physical quantity sensor. [Figure 9] FIG. 10 is a plan view showing another configuration example of the physical quantity sensor. [Figure 10] FIG. 10 is a plan view showing another configuration example of the physical quantity sensor. [Figure 11] FIG. 2 is a plan view showing a first detailed example of the physical quantity sensor. [Figure 12] FIG. 10 is a plan view showing another configuration example of the first detailed example of the physical quantity sensor. [Figure 13] FIG. 10 is a plan view showing a second detailed example of the physical quantity sensor. [Figure 14] FIG. 10 is an explanatory diagram of a second detailed example of the arrangement of the physical quantity sensor. [Figure 15] FIG. 10 is an explanatory diagram of the arrangement of a comparative example of the second detailed example of the physical quantity sensor. [Figure 16] FIG. 10 is a plan view showing a third detailed example of the physical quantity sensor. [Figure 17] FIG. 10 is a plan view showing a modified example of the third detailed example of the physical quantity sensor. [Figure 18] FIG. 10 is a plan view showing a modified example of the third detailed example of the physical quantity sensor. [Figure 19] FIG. 10 is a plan view showing a modified example of the third detailed example of the physical quantity sensor. [Figure 20] FIG. 1 is an exploded perspective view showing a schematic configuration of an inertial measurement unit having a physical quantity sensor. [Figure 21] FIG. 1 is a perspective view of a circuit board of a physical quantity sensor. DETAILED DESCRIPTION OF THE INVENTION

[0008] The present embodiment will be described below. Note that the present embodiment described below does not unduly limit the content of the claims. Furthermore, not all of the configurations described in the present embodiment are necessarily essential components.

[0009] 1. Physical quantity sensors An example of the configuration of the physical quantity sensor 1 of this embodiment will be described with reference to Fig. 1, taking an acceleration sensor that detects acceleration in the vertical direction as an example. Fig. 1 is a plan view of the physical quantity sensor 1 as seen in a direction perpendicular to the substrate 2. The physical quantity sensor 1 is a MEMS (Micro Electro Mechanical Systems) device, such as an inertial sensor.

[0010] For ease of explanation, in FIG. 1 and the following FIGS. 2 to 4 and 6 to 19, the dimensions of each component, the spacing between components, and the like are shown schematically, and not all components are shown. For example, electrode wiring, electrode terminals, and the like are not shown. In the following description, the physical quantity detected by the physical quantity sensor 1 is mainly acceleration. However, the physical quantity is not limited to acceleration and may be other physical quantities such as velocity, pressure, displacement, angular velocity, or gravity. The physical quantity sensor 1 may also be used as a pressure sensor or a MEMS switch. In FIG. 1, directions perpendicular to each other are designated as a first direction DR1, a second direction DR2, and a third direction DR3. The first direction DR1, the second direction DR2, and the third direction DR3 are, for example, the X-axis direction, the Y-axis direction, and the Z-axis direction, respectively, but are not limited thereto. For example, the third direction DR3, which corresponds to the Z-axis direction, is a direction perpendicular to the substrate 2 of the physical quantity sensor 1, e.g., the vertical direction. The first direction DR1 corresponding to the X-axis direction and the second direction DR2 corresponding to the Y-axis direction are perpendicular to the third direction DR3, and the XY plane, which is a plane along the first direction DR1 and the second direction DR2, is, for example, along the horizontal plane. Note that "perpendicular" includes not only cases where the two directions intersect at 90 degrees, but also cases where the two directions intersect at an angle slightly inclined from 90 degrees.

[0011] The substrate 2 is, for example, a silicon substrate made of semiconductor silicon or a glass substrate made of glass material such as borosilicate glass, etc. However, the constituent material of the substrate 2 is not particularly limited, and a quartz substrate, an SOI (Silicon On Insulator) substrate, etc. may also be used.

[0012] As shown in FIG. 1, the physical quantity sensor 1 of this embodiment includes a first fixed electrode portion 10, a first movable electrode portion 20, a first connecting portion 30, a first fixed portion 40, a first support beam 42, and a second support beam 43.

[0013] The first fixed electrode portion 10, the first movable electrode portion 20, the first connecting portion 30, the first fixed portion 40, the first support beam 42, and the second support beam 43 constitute a first detection element 100 of the physical quantity sensor 1. The first detection element 100 detects acceleration in a third direction DR3, which is, for example, the Z-axis direction, at detection portions Z1 and Z2.

[0014] The first fixed electrode portion 10 is provided on the substrate 2. Specifically, the first fixed electrode portion 10 is fixed to the substrate 2 by fixing portions 3 and 4. The first fixed electrode portion 10 includes a plurality of fixed electrodes. These multiple fixed electrodes extend along a first direction DR1, which is, for example, the X-axis direction. For example, the first fixed electrode portion 10 is a first fixed electrode group.

[0015] The first movable electrode section 20 is provided so that the movable electrode faces the fixed electrode of the first fixed electrode section 10. The first movable electrode section 20 includes a plurality of movable electrodes. These plurality of movable electrodes extend, for example, along a first direction DR1, which is the X-axis direction. For example, the first movable electrode section 20 is a first movable electrode group. Specifically, the first movable electrode 21 and the second movable electrode 22 of the first movable electrode section 20 face the first fixed electrode 11 and the second fixed electrode 12 of the first fixed electrode section 10 in a second direction DR2, which is the Y-axis direction.

[0016] For example, in Figure 1, the first movable electrode section 20 is a comb-tooth movable electrode group in which multiple movable electrodes are arranged in a comb-tooth pattern when viewed in a plane in the third direction DR3, and the first fixed electrode section 10 is a comb-tooth fixed electrode group in which multiple fixed electrodes are arranged in a comb-tooth pattern when viewed in a plane in the third direction DR3.

[0017] In the detection sections Z1 and Z2 of the first detection element 100, the movable electrodes of the comb-teeth movable electrode group of the first movable electrode section 20 and the fixed electrodes of the comb-teeth fixed electrode group of the first fixed electrode section 10 are arranged to alternately face each other.

[0018] The first fixed portion 40 is fixed to the substrate 2. One end of the first support beam 42 is connected to the first fixed portion 40, and one end of the second support beam 43 is also connected to the first fixed portion 40. For example, the first support beam 42 and the second support beam 43 are torsion springs. In FIG. 1 , two support beams are provided along the second direction DR2, with the first support beam 42 extending from the first fixed portion 40 in the opposite direction to the second direction DR2 and the second support beam 43 extending from the first fixed portion 40 in the second direction DR2.

[0019] The first fixed portion 40 is used as an anchor for the first movable body configured by the first movable electrode portion 20 and the first connecting portion 30. The first movable body having the first movable electrode portion 20 swings around a rotation axis along the second direction DR2, with the first fixed portion 40 as a fulcrum. For example, the first movable body swings around the rotation axis, with the first support beam 42 and the second support beam 43 along the second direction DR2 as the rotation axis, while torsionally deforming the first support beam 42 and the second support beam 43. This realizes the first detection element 100 with a one-sided seesaw structure.

[0020] The first connecting unit 30 has a first portion 31 that is arranged along the second direction DR2 alongside the first support beam 42 and the second support beam 43, and a second portion 32 that is connected to the first portion 31 and the first movable electrode unit 20 and that is arranged along the first direction DR1. As described above, one end of the first support beam 42 is connected to the first fixed portion 40, and one end of the second support beam 43 is also connected to the first fixed portion 40. The first portion 31 is connected to the other end of the first support beam 42 that is not connected to the first fixed portion 40 and the other end of the second support beam 43 that is not connected to the first fixed portion 40. One end of the second portion 32 is connected to the first portion 31, and the other end of the second portion 32 is connected to the first movable electrode unit 20. The first portion 31 and the second portion 32 of the first connecting unit 30 contribute to the moment of inertia I, which will be described later with reference to FIG. 5 .

[0021] As described above, the physical quantity sensor 1 of this embodiment includes the first fixed electrode unit 10 provided on the substrate 2, the first movable electrode unit 20 provided such that the movable electrode faces the fixed electrode of the first fixed electrode unit 10, at least one first fixed unit 40 fixed to the substrate 2, the first support beam 42 having one end connected to the first fixed unit 40, the second support beam 43 having one end connected to the first fixed unit 40, and the first connecting unit 3 connecting the other end of the first support beam 42 and the other end of the second support beam 43 to the first movable electrode unit 20. When the three directions orthogonal to one another are defined as the first direction DR1, the second direction DR2, and the third direction DR3, in a plan view in the third direction DR3 orthogonal to the substrate 2, the first movable electrode unit 20 and the first fixed unit 40 are arranged along the first direction DR1, and the first support beam 42 and the second support beam 43 are arranged along the second direction DR2. The first connecting portion 30 includes a first portion 31 arranged along the second direction DR2 alongside the first support beam 42 and the second support beam 43, and a second portion 32 connected to the first portion 31 and the first movable electrode portion 20 and arranged along the first direction DR1.

[0022] FIG. 2 shows the first movable electrode portion 20, the first connecting portion 30, and the first fixed portion 40 of the first detection element 100 of the physical quantity sensor 1, arranged in this order along the first direction DR1 in a plan view in the third direction DR3 perpendicular to the substrate 2. FIG. 3 is a diagram illustrating the structure of the electrodes of the detection portions Z1 and Z2 of the first detection element 100. As shown in FIG. 3, the movable electrodes and fixed electrodes of the detection portions Z1 and Z2 have different thicknesses in the third direction DR3. Specifically, as shown in FIG. 3, in the detection portion Z1, the thickness of the movable electrode 24 of the first movable electrode portion 20 in the third direction DR3 is greater than the thickness of the fixed electrode 14 of the first fixed electrode portion 10 in the third direction DR3. On the other hand, in the detection portion Z2, the thickness of the movable electrode 24 of the first movable electrode portion 20 in the third direction DR3 is smaller than the thickness of the fixed electrode 14 of the first fixed electrode portion 10 in the third direction DR3. Here, the movable electrode 24 in Fig. 3 corresponds to the first movable electrode 21 and the second movable electrode 22 in Fig. 1, and the fixed electrode 14 corresponds to the first fixed electrode 11 and the second fixed electrode 12.

[0023] 4 is an explanatory diagram of the operation of the detection units Z1 and Z2 in the first detection element 100. In FIG. 4, in the initial state, the fixed electrode 14 and the movable electrode 24 are flush with each other, with the ends of the movable electrode 24 and the fixed electrode 14 on the fourth direction DR4 side aligned in a side view in the second direction DR2 for both detection units Z1 and Z2. Here, the initial state is a stationary state. The fourth direction DR4 is opposite to the third direction DR3, for example, the negative direction in the Z-axis direction.

[0024] When acceleration in the third direction DR3 occurs from this initial state, the movable electrode 24 in each of the detection units Z1 and Z2 is displaced toward the fourth direction DR4, which is the opposite direction to the third direction DR3, as shown in Fig. 4. As a result, the opposing area between the movable electrode 24 and the fixed electrode 14 is maintained in the detection unit Z1, while the opposing area between the movable electrode 24 and the fixed electrode 14 decreases in the detection unit Z2. Therefore, by detecting the change in capacitance due to the decrease in the opposing area in the detection unit Z2, the acceleration in the third direction DR3 can be detected.

[0025] On the other hand, when acceleration in the fourth direction DR4 occurs from the initial state, the movable electrode 24 in each of the detection units Z1 and Z2 is displaced toward the third direction DR3, as shown in FIG. 4 . As a result, the opposing area between the movable electrode 24 and the fixed electrode 14 in the detection unit Z1 decreases, while the opposing area between the movable electrode 24 and the fixed electrode 14 is maintained in the detection unit Z2. Therefore, acceleration in the third direction DR3 can be detected by detecting a change in capacitance due to the decrease in the opposing area in the detection unit Z1. Therefore, acceleration in the third direction DR3 and the fourth direction DR4 can be detected by the detection units Z1 and Z2. The change in capacitance can be detected, for example, by connecting the first fixed electrode unit 10 of the detection unit Z1 to the first fixed electrode wiring LF1A and the pad PF1A, connecting the first fixed electrode unit 10 of the detection unit Z2 to the first fixed electrode wiring LF1B and the pad PF1B, and connecting the first movable electrode unit 20 to the first movable electrode wiring LV and the pad PV, to a differential amplifier circuit QV.

[0026] In the above description, an example has been given in which the rotation axis including the detection unit Z1, the detection unit Z2, the first fixed unit 40, etc. is arranged along the first direction DR1 in the following order in the physical quantity sensor 1. Here, the detection unit Z1 and the detection unit Z2 may be arranged so as to be aligned along the second direction DR2. That is, by changing the thicknesses of the fixed electrode 14 and the movable electrode 24 in the second direction DR2, the detection unit Z1 and the detection unit Z2 can also be arranged so as to be aligned along the second direction DR2.

[0027] Known Z-direction acceleration sensors include those that utilize the change in charge appearing on opposing electrodes, as described above. For example, the Z-direction acceleration sensor disclosed in Patent Document 1 can detect acceleration in the Z direction by detecting the change in charge as a result of the movable electrode swinging around a rotation axis that is set along the Y-axis when a force is applied in the Z direction, changing the opposing area between the electrode plate of the movable electrode and the electrode plate of the fixed electrode.

[0028] As described above, the physical quantity sensor 1 of this embodiment detects acceleration in the Z-axis direction by the rotational motion of the first movable electrode unit 20 around the Y-axis or X-axis. Here, we consider the rotational motion around the Y-axis. FIG. 5 shows a state in which a rigid body RB of mass m is connected to a torsion spring S arranged along the Y-axis direction by a rod of length r. As the torsion spring S twists around the Y-axis, the rigid body RB can move on a circular orbit in the XZ plane, spaced a distance of length r from the torsion spring S.

[0029] In the rotational motion system shown in Figure 5, the angular velocity of the rotational motion around the Y axis is ω (rad / sec), and the moment of inertia of the rigid body RB is I (kg m 2 ), the torque acting on the rigid body RB is T (N m), and the spring constant of the torsion spring S is k (N), the equation of motion in the initial state is expressed by equation (1). Note that the moment of inertia I is mr 2 is.

number

[0030] That is, in the initial state, the rigid body RB is tilted at an angle θ0 from the X axis, and is stationary with the torque due to the gravity component and the torque due to the torsion spring S component balanced. When torque is applied to the stationary rigid body RB, the equation of motion becomes equation (2).

number

[0031] That is, when the rigid body RB receives torque, it tilts by Δθ from its rest state and rotates with angular acceleration dω / dt. Here, when the angle Δθ is in the range close to zero, cos(θ0 + Δθ) can be approximated as cosθ0 - Δθ sinθ0, and equation (2) becomes approximately as equation (3).

number

[0032] When Δθ / (dω / dt), which indicates the sensitivity to angular acceleration, is solved from equation (3), the sensitivity to angular acceleration is given by equation (4).

number

[0033] From equation (4), when the angle θ0 in a stationary state is small, the longer the length r, which is the distance between the rotation axis and the rigid body RB, the greater the sensitivity to angular acceleration, and the greater the mass m of the rigid body RB, the greater the sensitivity to angular acceleration. Therefore, with regard to the sensitivity to acceleration in the Z direction, the greater the mass m of the electrode at the end of the seesaw, the greater the sensitivity to acceleration in the Z axis direction, and the greater the distance between the rotation axis and the electrode, etc., the greater the sensitivity to acceleration in the Z axis direction.

[0034] In this regard, the Z-axis direction physical quantity sensor disclosed in Patent Document 1 employs a structure that ensures a sufficient distance from the rotation axis of the movable electrode to the position where the fixed electrode and the movable electrode face each other. Therefore, by employing such a structure, it is possible to increase the length r in Equation (4), which shows the sensitivity to acceleration in the Z direction, and thereby improve the sensitivity to acceleration in the Z direction. Furthermore, by increasing this distance, it is possible to increase the mass of the movable body, including the movable electrode, in the rotational motion system centered on the rotation axis, thereby improving the sensitivity to acceleration in the Z direction. Furthermore, by employing a structure in which two detection units, each including a pair of movable and fixed electrodes, are provided in one physical quantity sensor, i.e., two one-sided seesaws, the sensitivity to acceleration in the Z direction can also be improved.

[0035] On the other hand, increasing the distance between the movable electrode and the rotation axis or providing multiple detection elements in one physical quantity sensor increases dead space. That is, by placing the movable electrode at a greater distance from the rotation axis, the detection sensitivity of acceleration in the Z-axis direction is improved, but the area from the rotation axis to the movable electrode increases, resulting in a larger acceleration sensor. Furthermore, providing two detection elements in one physical quantity sensor, as in Patent Document 1, can improve the sensitivity of acceleration in the Z-axis direction. However, in Patent Document 1, the detection elements are arranged side by side in the XY plane, which increases the layout area by the number of detection elements and increases the size of the physical quantity sensor. As described above, there is a problem in that it is not possible to achieve both improved acceleration detection sensitivity and miniaturization of the physical quantity sensor.

[0036] 1, the length r in the rotational motion system described in FIG. 5 corresponds to the distance from the rotation axis including the first fixed portion 40 to the first movable electrode portion 20. Therefore, as shown in this embodiment, by configuring the first connecting portion 30 to include the first portion 31 and the second portion 32 and lengthening the second portion 32 in the first direction DR1, it is possible to increase the length r in equation (4), and to improve the acceleration detection sensitivity of the physical quantity sensor 1.

[0037] Here, when the rotation axis including the first support beam 42 and the second support beam 43 is connected to the first movable electrode unit 20 by the second portion 32 of the first connecting unit 30, the mass m in equation (4) of the second portion 32 becomes smaller by the amount corresponding to the narrower width in the second direction DR2 of the second portion 32. As a result, the acceleration sensitivity decreases. However, because the second portion 32 is close to the rotation axis and has a small length r in equation (4), it has little effect on the rotational motion of the movable body including the first movable electrode unit 20. Therefore, it is possible to ensure the effective length r of the movable body while suppressing deterioration in acceleration sensitivity due to a decrease in the mass m of the second portion 32, and improve the detection sensitivity of the physical quantity sensor 1.

[0038] Furthermore, from the perspective of miniaturizing the physical quantity sensor 1, the first connecting portion 30 can also be configured as in the comparative example shown in Fig. 6, for example. Even when the first connecting portion 30 is configured in this manner, the distance between the rotation axis including the first fixed portion 40 and the first movable electrode portion 20 is increased, and an opening is provided, thereby preventing the occurrence of dead space and achieving both improved acceleration detection sensitivity and miniaturization of the physical quantity sensor 1. However, in this comparative example, one end of the first support beam 42 and one end of the second support beam 43 are connected at a position away from the rotation axis including the first fixed portion 40, which makes the rotation axis unstable and deteriorates the detection accuracy of acceleration in the third direction DR3.

[0039] Therefore, according to the present embodiment, the first portion 31 arranged along the second direction DR2 alongside the first support beam 42 and the second support beam 43 is provided in the first connecting portion 30, thereby making it possible to connect and hold the other ends of the first support beam 42 and the second support beam 43, one ends of which are connected to the first fixed portion 40, by the first portion 31 of the first connecting portion 30. This makes it possible to suppress oscillation of the rotation axis caused by the first support beam 42 and the second support beam 43 by utilizing the rigidity of the first portion 31. Furthermore, the second portion 32 connected to the first portion 31 and the first movable electrode portion 20 and arranged along the first direction DR1 is provided in the first connecting portion 30, thereby forming an opening in the region surrounded by the first portion 31 and the second portion 32, thereby making it possible to secure an empty space. This makes it possible to arrange other elements, etc. in the empty space and thereby achieve, for example, miniaturization of the physical quantity sensor 1. Furthermore, even if such an opening is formed in a movable body including the first movable electrode portion 20, the position of this opening is closer to the rotation axis formed by the first support beam 42 and the second support beam 43 than the first movable electrode portion 20, so a decrease in the sensitivity of the physical quantity sensor 1 can be suppressed.

[0040] In this embodiment, the first coupling portion 30 may also include a third portion 33 that is connected to the second portion 32 and is arranged alongside the first movable electrode portion 20 along the second direction DR2.

[0041] In this way, the third portion 33 of the first connecting portion 30, which functions as a mass portion, can be provided at a position distant from the rotation axis including the first support beam 42 and the second support beam 43. This allows the mass and distance from the rotation axis to be increased for the entire movable body including the first movable electrode portion 20. Therefore, the mass m and length r in equation (4), which indicates the acceleration sensitivity, can be increased, and the detection sensitivity for acceleration along the Z axis can be improved.

[0042] Furthermore, in the physical quantity sensor 1 of this embodiment, the fixed electrode 14 of the first fixed electrode portion 10 and the movable electrode 24 of the first movable electrode portion 20 can be provided so as to face each other in the second direction DR2.

[0043] In this configuration, when a voltage is applied between the fixed electrode 14 of the first fixed electrode unit 10 and the movable electrode 24 of the first movable electrode unit 20, which are arranged to face each other, charge accumulates in the facing portions of the two electrodes. When a force is applied in the Z direction, the first movable electrode unit 20 moves along the Z axis, changing the facing area of ​​the two electrodes and, accordingly, the amount of charge accumulated in the two electrodes. Furthermore, by arranging the fixed electrode 14 and the movable electrode 24 to face each other in the second direction DR2, when the first movable electrode unit 20 rotates around the rotation axis including the first support beam 42 and the second support beam 43, the fixed electrode 14 and the movable electrode 24 can move so that the facing area of ​​the two electrodes changes while maintaining a parallel facing state. Therefore, acceleration in the third direction DR3 can be detected by rotation of the movable body including the first movable electrode unit 20, etc.

[0044] Furthermore, in the physical quantity sensor 1 of this embodiment, the first movable electrode portion 20 includes a first base movable electrode 23, a first movable electrode 21 extending from the first base movable electrode 23 in the first direction DR1, and a second movable electrode 22 extending from the first base movable electrode 23 in the opposite direction to the first direction DR1, and the first fixed electrode portion 10 includes a first fixed electrode 11 facing the first movable electrode 21 and a second fixed electrode 12 facing the second movable electrode 22.

[0045] 1, in the first movable electrode unit 20, the first movable electrode 21 and the second movable electrode 22 extend from the first base movable electrode 23, which extends in the second direction DR2, on both sides along the first direction DR1. With this structure, for example, when acceleration occurs in the first direction DR1, which is the other axial direction, the facing area between the first fixed electrode 11 and the first movable electrode 21 decreases, while the facing area between the second fixed electrode 12 and the second movable electrode 22 increases. Therefore, with respect to the acceleration, the changes in the facing areas between the first fixed electrode 11 and the first movable electrode 21 and the second fixed electrode 12 and the second movable electrode 22 change so as to cancel each other out. Furthermore, when acceleration occurs in the direction opposite to the first direction DR1, the facing area between the first fixed electrode 11 and the first movable electrode 21 increases, while the facing area between the second fixed electrode 12 and the second movable electrode 22 decreases. Therefore, in response to the acceleration, the changes in the facing area between the first fixed electrode 11 and the first movable electrode 21 and the changes in the facing area between the second fixed electrode 12 and the second movable electrode 22 change so as to cancel each other out. In this way, in response to acceleration in the direction along the first direction DR1, the changes in the facing area between the fixed electrode 14 and the movable electrode 24 at the detection portion Z1 and the changes in the facing area between the fixed electrode 14 and the movable electrode 24 at the detection portion Z2 move so as to cancel each other out. Therefore, the facing area between the fixed electrode 14 and the movable electrode 24 does not change as a whole, including the detection portions Z1 and Z2, and it is possible to prevent a situation in which acceleration in a direction other than the third direction DR3, for example, in the first direction DR1, occurs and is mistakenly detected as acceleration in the third direction DR3. This makes it possible to prevent deterioration in the other-axis sensitivity of the physical quantity sensor 1.

[0046] FIG. 7 shows another configuration example of the physical quantity sensor 1 of this embodiment. The configuration example shown in FIG. 7 differs from the configuration example shown in FIG. 1 in the shapes and positional relationship of the first fixed electrode portion 10 and the first movable electrode portion 20. In the configuration example shown in FIG. 1, the first fixed electrode portion 10 and the first movable electrode portion 20 are arranged in the following order in the first direction DR1: first fixed electrode portion 10, first movable electrode portion 20, first fixed electrode portion 10. On the other hand, in the configuration example shown in FIG. 7, the first fixed electrode portion 10 and the first movable electrode portion 20 are arranged in the following order in the first direction DR1: first movable electrode portion 20, first fixed electrode portion 10, first movable electrode portion 20. That is, in the configuration example shown in FIG. 1, one first fixed electrode portion 20 is arranged between two first fixed electrode portions 10, whereas in the configuration example shown in FIG. 7, one first fixed electrode portion 10 is arranged between one first movable electrode portion 20 connected in the second direction DR2. 1 , fixed portion 4 is not present in the exemplary configuration shown in FIG. 7 . In addition, in the exemplary configuration shown in FIG. 7 , a first movable electrode portion 20 is provided to surround first fixed electrode portion 10. The first movable electrode portion 20 on the first direction DR1 side of first movable electrode portion 20 is integrated with third portion 33 of first connecting portion 30. That is, in physical quantity sensor 1 of this embodiment, first fixed electrode portion 10 includes first base fixed electrode 13, first fixed electrode 11 extending from first base fixed electrode 13 in first direction DR1, and second fixed electrode 12 extending from first base fixed electrode 13 in the opposite direction to first direction DR1, and first movable electrode portion 20 includes first movable electrode 21 facing first fixed electrode 11 and second movable electrode 22 facing second fixed electrode 12.

[0047] In this way, the first detection element 100 can be provided with a detection unit Z2 including a parallel plate capacitance having a first fixed electrode 11 extending from the first base fixed electrode 13 in the first direction DR1 and a first movable electrode 21 opposing the first fixed electrode 11, and a detection unit Z1 including a parallel plate capacitance having a second fixed electrode 12 extending from the first base fixed electrode 13 in the opposite direction to the first direction DR1 and a second movable electrode 22 opposing the first fixed electrode 12. That is, two detection units Z1 and Z2 can be configured using one first base fixed electrode 13 provided on the first fixed electrode unit 10. Therefore, as described above, for example, when acceleration is applied in the first direction DR1, the capacitance between the first fixed electrode 11 and the first movable electrode 21 increases, while the capacitance between the second fixed electrode 12 and the second movable electrode 22 decreases. Therefore, the capacitances of the detection units Z1 and Z2 provided in one one-sided seesaw structure move to cancel each other out, preventing deterioration of other-axis sensitivity.

[0048] FIG. 8 shows another configuration example of this embodiment. The configuration example shown in FIG. 8 differs from the configuration example shown in FIG. 1 in the configuration of the first fixed portion 40 and the shape of the first portion 31 of the first connecting portion 30. In the configuration example shown in FIG. 1, the first fixed portion 40 is a single fixed portion, whereas in the configuration example shown in FIG. 8, the first fixed portion 40 has first fixed portions 40A and 40B. Specifically, a movable body including the first movable electrode portion 20 and the first connecting portion 30 has one end fixed by two first fixed portions 40A and 40B provided in a direction along the second direction DR2. One end of the first support beam 42 is connected to the first fixed portion 40A, and one end of the second support beam 43 is connected to the first fixed portion 40B. In this way, in the configuration example shown in FIG. 8, the movable body including the first movable electrode portion 20 and the first connecting portion 30 is fixed by the two first fixed portions 40A and 40B. Therefore, the first portion 31 of the first connecting portion 30 connects the other end of the first support beam 42 that is not connected to the first fixed portion 40A and the other end of the second support beam 43 that is not connected to the first fixed portion 40B between the first fixed portion 40A and the first fixed portion 40B. That is, in the physical quantity sensor 1 of this embodiment, at least one first fixed portion 40 may include two fixed portions, and one end of the first support beam 42 may be connected to one fixed portion of the two fixed portions, and one end of the second support beam 43 may be connected to the other fixed portion of the two fixed portions.

[0049] In this way, the movable body including the first movable electrode portion 20 and the first connecting portion 30 is fixed to the substrate 2 by the two fixing portions, the first fixing portions 40A and 40B, and the first movable electrode portion 20 can swing around a rotation axis along the second direction DR2.

[0050] In the configuration examples shown in FIGS. 1 and 7, the first support beam 42 and the second support beam 43, which serve as the rotation axis of the movable body, are fixed to the substrate 2 by a single first fixed portion 40, making them prone to swinging. On the other hand, in the configuration example shown in FIG. 8, the rotation axis including the first support beam 42 and the second support beam 43 is fixed to the substrate 2 by the first fixed portion 40A and the first fixed portion 40B. In this configuration, the ease of swinging around the rotation axis including the first support beam 42 and the second support beam 43 remains unchanged, but the rigidity against swinging motion around the rotation axis in the second direction DR2 is increased even with the same spring dimensions. Therefore, when an impact is applied in the second direction DR2, the rotation axis including the first support beam 42 and the second support beam 43 is less likely to be displaced, improving impact resistance. This improves the detection accuracy of the physical quantity sensor 1 when detecting acceleration in the third direction DR3.

[0051] 9 and 10 show modified examples of the configuration example of the physical quantity sensor 1 shown in FIG. 9. The configuration example shown in FIG. 9 differs from the configuration example of FIG. 1 in the arrangement of the first portion 31 of the first connecting portion 30. That is, in the configuration example shown in FIG. 9, the first portion 31 of the first connecting portion 30 is provided on the first direction DR1 side of the first fixed portion 40 in a direction along the second direction DR2 in a plan view seen from the third direction DR3, and connects one end of the first support beam 42 and one end of the second support beam 43. Even in this configuration, the same effect as that of the physical quantity sensor 1 of the configuration example shown in FIG. 1 can be obtained.

[0052] 10, the first portion 31 of the first connecting portion 30 has first portions 31A and 31B. That is, one end of the first support beam 42 that is not connected to the first fixed portion 40 and one end of the second support beam 43 that is not connected to the first fixed portion 40 are connected by the first portion 31B on the first direction DR1 side of the first fixed portion 40, and are connected by the first portion 31A in the direction opposite to the first direction DR1 of the first fixed portion 40. Even in this configuration, the same effect as that of the physical quantity sensor 1 in the configuration example shown in FIG.

[0053] 1 and 7 to 10, the end portions of the fixed electrode 14 and the movable electrode 24 on the opposite side of the third direction DR3 in the initial state are flush with each other, as described with reference to FIG. 4. However, this embodiment is not limited to this. For example, taking the initial state of FIG. 4 as an example, in the detection unit Z1, one end of the movable electrode 24 may be offset from one end of the fixed electrode 14 on the third direction DR3 side, and there may be no offset between the fixed electrode 14 and the movable electrode 24 on the opposite side of the third direction DR3. However, there may be an offset between the fixed electrode 14 and the movable electrode 24 on the opposite side of the third direction DR3. In addition, in the detection unit Z2, one end of the fixed electrode 14 may be offset from one end of the movable electrode 24 on the third direction DR3 side, and there may be no offset between the fixed electrode 14 and the movable electrode 24 on the opposite side of the third direction DR3, but there may be an offset between the fixed electrode 14 and the movable electrode 24 on the opposite side of the third direction DR3. That is, in the initial state, in each of the detection units Z1 and Z2, one end of the fixed electrode 14 and the movable electrode 24 on the third direction DR3 side and one end on the opposite side of the third direction DR3 may not be flush with each other. In this way, for example, when acceleration occurs in the third direction DR3, the facing area of ​​the detection unit Z1 increases, increasing the capacitance, and the facing area of ​​the detection unit Z2 decreases, decreasing the capacitance. On the other hand, when acceleration occurs in the direction opposite to the third direction DR3, the facing area of ​​the detection unit Z1 decreases, decreasing the capacitance, and the facing area of ​​the detection unit Z2 increases, increasing the capacitance. This allows each of the detection units Z1 and Z2 to detect acceleration both in the third direction DR3 and in the direction opposite to the third direction DR3, thereby improving the acceleration detection sensitivity. Furthermore, by doing so, for example, the pair of first fixed electrode portion 10 and first movable electrode portion 20 included in detection portion Z1 can detect acceleration in both the third direction DR3 and the direction opposite to the third direction DR3, eliminating the need to provide two detection portions Z1 and Z2 as the detection portion. Therefore, according to this embodiment, acceleration can be detected with one detection portion, and the physical quantity sensor 1 can be made smaller.

[0054] 2. Detailed configuration example Next, a detailed configuration example of the physical quantity sensor 1 of this embodiment will be described. FIG. 11 shows a first detailed example of the physical quantity sensor 1 of this embodiment. Compared to the physical quantity sensor 1 shown in FIG. 1, the first detailed example has a second detection element 102 provided in an area surrounded by the first portion 31 and the second portion 32 of the first connecting portion 30. The second detection element 102 is, for example, an acceleration sensor that detects acceleration in a direction along the first direction DR1. That is, the physical quantity sensor 1 detects acceleration in a third direction DR3, which is a direction perpendicular to the plane of the substrate 2, using the first detection element 100, and detects acceleration in, for example, the first direction DR1 within the plane using the second detection element 102. The second detection element 102 may be an element that detects acceleration in a second direction DR2 instead of the acceleration in the first direction DR1.

[0055] That is, the physical quantity sensor 1 of this embodiment includes a first detection element 100 including a first fixed electrode portion 10, a first movable electrode portion 20, a first fixed portion 40, a first support beam 42, a second support beam 43, and a first connecting portion 30, and a second detection element 102, and the second detection element 102 may be arranged in an area surrounded by the first portion 31 and the second portion 32 of the first connecting portion 30.

[0056] In this way, the physical quantity sensor 1 shown in FIG. 1 can detect physical quantities such as acceleration in the first direction DR1 or the second direction DR2 in addition to acceleration in the third direction DR3.

[0057] 11 , a third portion 33 may be provided in the first connecting portion 30. That is, in the physical quantity sensor 1 of this embodiment, the first connecting portion 30 may include the third portion 33 that is connected to the second portion 32 and is arranged alongside the first movable electrode portion 20 along the second direction DR2, and the second detection element 102 may be arranged in a region surrounded by the first portion 31, the second portion 32, and the third portion 33 of the first connecting portion 30.

[0058] As explained in Figure 1, by doing this, the third part 33, which is located at a distance from the rotation axis including the first support beam 42 and the second support beam 43, functions as a mass in the rotational motion of the first movable electrode part 20, thereby improving the detection sensitivity of acceleration in the third direction DR3, i.e., the Z-axis direction.

[0059] 12, in the first detailed example of FIG. 11, etc., it is possible to provide first fixed electrode wirings LF1A and LF1B connected to the first fixed electrode portion 10, first movable electrode wiring LV connected to the first movable electrode portion 20, and a first wiring group L1 connected to the second detection element 102. The first wiring group L1 includes L11, L12, and L13. Note that it is sufficient if the first wiring group L1 includes either one of the wirings L12 and L13.

[0060] That is, in the present embodiment, the detection unit Z1 includes first fixed electrode wirings LF1A and LF1B connected to first fixed electrode portion 10, first movable electrode wiring LV connected to first movable electrode portion 20, and first wiring group L1 connected to second detection element 102, and the first fixed electrode wirings LF1A, LF1B, first movable electrode wiring LV, and first wiring group L1 may be wired along second direction DR2. In this way, the first fixed electrode portion 10 of detection unit Z1 is connected to a differential amplifier circuit QV (not shown) via the first fixed electrode wiring LF1A and pad PF1A, the first fixed electrode portion 10 of detection unit Z2 is connected to the first fixed electrode wiring LF1B and pad PF1B, and the first movable electrode portion 20 is connected to the first movable electrode wiring LV and pad PV, thereby enabling acceleration in a direction along third direction DR3 to be detected. Furthermore, by connecting the wires L11, L12, and L13 of the first wire group L1 to the differential amplifier circuit QV via the pads P1, P2, and P3, acceleration in the direction along the first direction DR1 can be detected. Furthermore, since multiple wires can be wired along the second direction DR2, the terminals connected to the wires can be concentrated on one side, which allows the physical quantity sensor 1 to be made smaller, etc.

[0061] In this embodiment, the first connecting portion 30 is not provided on the side of the space surrounded by the first portion 31, the second portion 32, and the third portion 33 of the first connecting portion 30 opposite the second direction DR2. The first fixed electrode wirings LF1A and LF1B connected to the first fixed electrode portion 10 and the first wiring group L1 connected to the second detection element 102 are routed along the second direction DR2, respectively. Therefore, the first wiring group L1 can be routed to the side opposite the second direction DR2 where the first connecting portion 30 is not provided. Therefore, according to this embodiment, the second portion 32 of the first connecting portion 30 is not disposed in the area where the first wiring group L1 is routed, and the first wiring group L1 can be routed without crossing the second portion 32. This prevents the generation of electrostatic capacitance between the first wiring group L1 and the second portion 32, and allows the second detection element 102 to be provided without degrading the accuracy of acceleration detection in the third direction DR3.

[0062] 13 shows a second detailed example of the physical quantity sensor 1 of this embodiment. The second detailed example differs from the configuration example shown in FIG. 1 in the configuration of the first detection element 100. That is, the first detection element 100 of the second detailed example has a first element portion 91 and a second element portion 92.

[0063] The first element portion 91 has the same configuration as the first detection element 100 of the physical quantity sensor 1 shown in Fig. 1. That is, it includes a first fixed electrode portion 10, a first movable electrode portion 20, a first connecting portion 30, a first fixed portion 40, a first support beam 42, and a second support beam 43. Here, the first fixed electrode portion 10, the first movable electrode portion 20, the first connecting portion 30, the first fixed portion 40, the first support beam 42, and the second support beam 43 are as described in Fig. 1.

[0064] The second element portion 92 also includes a second fixed electrode portion 50, a second movable electrode portion 60, a second connecting portion 70, a second fixed portion 80, a third support beam 82, and a fourth support beam 83. Here, the second fixed electrode portion 50, the second movable electrode portion 60, the second connecting portion 70, the second fixed portion 80, the third support beam 82, and the fourth support beam 83 of the second element portion 92 correspond to the first fixed electrode portion 10, the first movable electrode portion 20, the first connecting portion 30, the first fixed portion 40, the first support beam 42, and the second support beam 43 of the first element portion 91, respectively. The third fixed electrode 51, the fourth fixed electrode 52, the second base fixed electrode 53, and the fixed electrode 54 of the second element portion 92 correspond to the first fixed electrode 11, the second fixed electrode 12, the first base fixed electrode 13, and the fixed electrode 14 of the first element portion 91, respectively, and the third movable electrode 61, the fourth movable electrode 62, the second base movable electrode 63, and the movable electrode 64 of the second element portion 92 correspond to the first movable electrode 21, the second movable electrode 22, the first base movable electrode 23, and the movable electrode 24 of the first element portion 91, respectively. The fourth portion 71 and the fifth portion 72 of the second connecting portion 70 of the second element portion 92 correspond to the first portion 31 and the second portion 32 of the first connecting portion 30 of the first element portion 91, respectively.

[0065] 14 , in the first element portion 91 of the physical quantity sensor 1, the first movable electrode portion 20, the first connecting portion 30, the first fixed portion 40, etc. are arranged along the first direction DR1 in the order of the first movable electrode portion 20, the first connecting portion 30, the first fixed portion 40, etc., when viewed in a plane in the third direction DR3 orthogonal to the substrate 2. In the second detection element 102, the second movable electrode portion 60, the second connecting portion 70, the second fixed portion 80, etc. are arranged along the first direction DR1 in the order of the second fixed portion 80, etc., the second connecting portion 70, the second movable electrode portion 60, when viewed in a plane in the third direction DR3. The first element portion 91 and the second element portion 92 are arranged along the first direction DR1 in the order of the first element portion 91, the second element portion 92, when viewed in a plane in the third direction DR3 orthogonal to the substrate 2.

[0066] That is, the physical quantity sensor 1 of this embodiment includes a second fixed electrode portion 50 provided on the substrate 2, a second movable electrode portion 60 provided so that the movable electrode 64 faces the fixed electrode 54 of the second fixed electrode portion 50, at least one second fixed portion 80 fixed to the substrate 2, a third support beam 82 having one end connected to the second fixed portion 80, a fourth support beam 83 having one end connected to the second fixed portion 80, and a second connecting portion 70 connecting the other end of the third support beam 82 and the other end of the fourth support beam 83 to the second movable electrode portion 60. In a planar view, the second fixed portion 80 and the second movable electrode portion 60 are arranged along the first direction DR1, the third support beam 82 and the fourth support beam 83 are arranged along the second direction DR2, and the second connecting portion 70 may include a fourth portion 71 arranged along the second direction DR2 alongside the third support beam 82 and the fourth support beam 83, and a fifth portion 72 connected to the fourth portion 71 and the second movable electrode portion 60 and arranged along the first direction DR1.

[0067] In this manner, similar to the configuration example of FIG. 1 , acceleration in the third direction DR3 and the fourth direction DR4 can be detected by the first element portion 91 of the first detection element 100. Furthermore, in the second element portion 92 of the first detection element 100, a movable body including the second movable electrode portion 60 swings along the third direction DR3 with the third support beam 82 and the fourth support beam 84 acting as torsion springs, thereby enabling detection of acceleration in the third direction DR3 or the fourth direction DR4. That is, the detection portion Z1 of the second element portion 92 can detect acceleration in the fourth direction DR4, and the detection portion Z2 can detect acceleration in the third direction DR3. Therefore, according to this embodiment, acceleration in the third direction DR3 and the fourth direction DR4 can be detected by both the first element portion 91 and the second element portion 92, and acceleration in the third direction DR3 and the fourth direction DR4 can be detected with high sensitivity.

[0068] FIG. 15 is a diagram illustrating a comparative example of this embodiment. Similar to the case of FIG. 14 , FIG. 15 is a plan view of the physical quantity sensor 1 of this embodiment in the third direction DR3 perpendicular to the substrate 2. In this comparative example, the first fixed portion 40, the first connecting portion 30, the first movable electrode portion 20, the second movable electrode portion 60, the second connecting portion 70, and the second fixed portion 80 are arranged in this order along the first direction DR1 in the plan view from the third direction DR3. In this comparative example, the first fixed portion 40 and the second fixed portion 80 are located farther apart than in the second detailed example illustrated in FIGS. 13 and 14 . Therefore, if the substrate 2 warps due to stress, the effects of the warpage manifest differently in the first fixed portion 40 and the second fixed portion 80, resulting in a deterioration in the accuracy of acceleration detection in the third direction DR3. Therefore, the comparative example illustrated in FIG. 15 has a problem in that the acceleration detection sensitivity is easily affected by warpage of the substrate 2 due to thermal stress or external stress. In other words, in an acceleration sensor in the Z-axis direction, which is the third direction DR3, if two seesaw-shaped detection elements are provided, and the fixed parts of the seesaw are positioned apart for each detection element, the sensor will be more susceptible to warping of the substrate 2, etc., making it difficult to detect acceleration with high accuracy.

[0069] In this regard, according to the second detailed example shown in Fig. 13, it is possible to arrange the first fixing portion 40 of the first element portion 91 and the second fixing portion 80 of the second element portion 92 close to each other. Therefore, even if warping occurs in the substrate 2 of the physical quantity sensor 1, it is possible to suppress deterioration in the accuracy of acceleration detection due to the warping. Note that although the above description has been given of a case where there are two detection elements with a seesaw structure, the same applies to a case where there are three or more detection elements.

[0070] 16 shows a third detailed example of the physical quantity sensor 1 of this embodiment. In addition to the configuration of the second detailed example, the physical quantity sensor 1 of the third detailed example has a second detection element 102 and a third detection element 104. The second detection element 102 is an acceleration sensor in a direction other than the third direction DR3, for example, the first direction DR1. The third detection element 104 is an acceleration sensor in a direction other than the third direction DR3, for example, the second direction DR2.

[0071] That is, the physical quantity sensor 1 of this embodiment includes a first detection element 100 including a first fixed electrode portion 10, a first movable electrode portion 20, a first fixed portion 40, a first support beam 42, a second support beam 43, a first connecting portion 30, a second fixed electrode portion 50, a second movable electrode portion 60, a second fixed portion 80, a third support beam 82, a fourth support beam 83, and a second connecting portion 70, a second detection element 102, and a third detection element 104. The second detection element 102 may be disposed in a region surrounded by the first portion 31 and the second portion 32 of the first connecting portion 30, and the third detection element 104 may be disposed in a region surrounded by the fourth portion 71 and the fifth portion 72 of the second connecting portion 70.

[0072] 16, the physical quantity sensor 1 has a second detection element 102 and a third detection element 104. Therefore, the second detection element 102 can detect acceleration in the first direction DR1, and the third detection element 104 can detect acceleration in the second direction DR2. Therefore, the physical quantity sensor 1 can detect acceleration in the first direction DR1 and the second direction DR2, as well as acceleration in the third direction DR3.

[0073] Furthermore, according to the third detailed example, in a plan view in the third direction DR3 orthogonal to the substrate 2, the second detection element 102 is disposed in a region surrounded by the first portion 31 and the second portion 32 of the first connecting portion 30 and the first fixed electrode portion 10, and the third detection element 104 is disposed in a region surrounded by the fourth portion 71 and the fifth portion 72 of the second connecting portion 70 and the second fixed electrode portion 50. Therefore, in a plan view in the third direction DR3 orthogonal to the substrate 2, the first element portion 91, the second element portion 92, the second detection element 102, and the third detection element 104 can be disposed side by side within a rectangular region of the substrate 2. This allows these elements to be provided without generating dead space, and the physical quantity sensor 1 can be made smaller.

[0074] 16 , the first element portion 91 may include a third portion 33 in the first connecting portion 30, and the second element portion 92 may include a sixth portion 73 in the second connecting portion 70. Here, the third portion 33 of the first connecting portion 30 is the same as the third portion 33 described in FIG. 1 . Furthermore, the sixth portion 73 of the second connecting portion 70 in the second element portion 92 is a portion corresponding to the third portion 33 of the first connecting portion 30 in the first element portion 91.

[0075] That is, in the physical quantity sensor 1 of this embodiment, the first connecting portion 30 includes a third portion 33 connected to the second portion 32 and arranged alongside the first movable electrode portion 20 along the second direction DR2. The second connecting portion 70 includes a sixth portion 73 connected to the fifth portion 72 and arranged alongside the second movable electrode portion 60 along the second direction DR2. The second detecting element 102 may be arranged in a region surrounded by the first portion 31, the second portion 32, and the third portion 33 of the first connecting portion 30, and the third detecting element 104 may be arranged in a region surrounded by the fourth portion 71, the fifth portion 72, and the sixth portion 73 of the second connecting portion 70.

[0076] As described above, by providing the third portion 33 of the first connecting portion 30, which functions as a mass portion, at a position distant from the rotation axis including the first support beam 42 and the second support beam 43, it is possible to increase the mass of the entire movable body including the first movable electrode portion 20 and the distance from the rotation axis. Therefore, it is possible to improve the detection sensitivity of acceleration in the Z axis. Similarly, for the sixth portion 73 of the second connecting portion 70, it is possible to increase the mass of the entire movable body including the second movable electrode portion 60 and the distance from the rotation axis including the third support beam 82 and the fourth support beam 83, thereby improving the detection sensitivity of acceleration in the Z axis.

[0077] 16, there may be provided first fixed electrode wirings LF1A and LF1B connected to first fixed electrode portion 10, first movable electrode wiring LV connected to first movable electrode portion 20, a first wiring group L1 connected to second detection element 102, second fixed electrode wirings LF2A and LF2B connected to second fixed electrode portion 50, second movable electrode wiring LV connected to second movable electrode portion 60, and a second wiring group L2 connected to third detection element 104. Here, the first fixed electrode wirings LF1A and LF1B, first movable electrode wiring LV, and first wiring group L1 are as described in FIG. 12. The second fixed electrode wirings LF2A and LF2B, second movable electrode wiring LV, and second wiring group L2 are wirings corresponding to the second element portion 92 side of the first fixed electrode wiring LF1A and LF1B, first movable electrode wiring LV, and first wiring group L1, respectively. 12, the first fixed electrode wirings LF1A, LF1B and the first movable electrode wiring LV are connected via pads PF1A, PF1B and PV, respectively, to a differential amplifier circuit QV provided outside the physical quantity sensor 1. Furthermore, the second fixed electrode wirings LF2A, LF2B and the second movable electrode wiring LV are connected via pads PF2A, PF2B and PV, respectively, to the differential amplifier circuit QV.

[0078] That is, physical quantity sensor 1 of the present embodiment may include first fixed electrode wirings LF1A and LF1B connected to first fixed electrode portion 10, a first movable electrode wiring LV connected to first movable electrode portion 20, a second fixed electrode wiring LF2 connected to second fixed electrode portion 50, a second movable electrode wiring LV connected to second movable electrode portion 60, a first wiring group L1 connected to second detection element 102, and a second wiring group L2 connected to third detection element 104. The first fixed electrode wirings LF1A and LF1B, the first movable electrode wiring LV, the second fixed electrode wirings LF2A and LF2B, the second movable electrode wiring LV, the first wiring group L1, and the second wiring group L2 may be wired along second direction DR2. In this way, acceleration in directions along third direction DR3 and first direction DR1 can be detected, as in the case of FIG. 12 . Furthermore, the second fixed electrode portion 50 of the detection unit Z1 is connected to the differential amplifier circuit QV via the second fixed electrode wiring LF2A and the pad PF2A, the second fixed electrode portion 50 of the detection unit Z2 is connected to the second fixed electrode wiring LF2B and the pad PF2B, and the second movable electrode portion 60 is connected to the second movable electrode wiring LV and the pad PV, thereby enabling detection of acceleration in the direction along the third direction DR3. The second wiring group L2 is connected to the differential amplifier circuit QV via the pads P4, P5, and P6, thereby enabling detection of acceleration in the direction along the second direction DR2. Furthermore, according to this embodiment, multiple wirings can be routed along the second direction DR2, allowing the pads connected to the wiring to be concentrated on one side, thereby enabling the physical quantity sensor 1 to be miniaturized, for example.

[0079] 12 , according to this embodiment, the second portion 32 of the first coupling portion 30 is not disposed in the region where the first wiring group L1 is wired, and the first wiring group L1 can be wired so as not to straddle the second portion 32, thereby preventing the generation of capacitance between the first wiring group L1 and the second portion 32. Similarly, for the third detection element 104, the second wiring group L2 can be wired so as not to straddle the fifth portion 72, thereby preventing the generation of capacitance between the second wiring group L2 and the fifth portion 72. Therefore, the second detection element 102 and the third detection element 104 can be provided without degrading the accuracy of acceleration detection in the third direction DR3.

[0080] 16, the detection units Z1 and Z2 of the first element unit 91 may be arranged side by side along the second direction DR2, and the detection units Z1 and Z2 of the second element unit 92 may also be arranged side by side along the second direction DR2. For example, by changing the thicknesses of the fixed electrode 14 and the movable electrode 24 of the first element unit 91 in the second direction DR2 and also changing the thicknesses of the fixed electrode 54 and the movable electrode 64 of the second element unit 92 in the second direction DR2, the detection units Z1 and Z2 can be arranged side by side along the second direction DR2 in each of the first element unit 91 and the second element unit 92.

[0081] 17 and 18 are modified examples of the third detailed example shown in FIG. 16 . The modified example shown in FIG. 17 differs from the third detailed example in the arrangement of the first element portion 91 and the second element portion 92. Specifically, in the modified example shown in FIG. 17 , the first element portion 91 and the second element portion 92 are arranged side by side along the second direction DR2, with the second element portion 92 followed by the first element portion 91. Similarly to FIG. 17 , FIG. 18 also shows the first element portion 91 and the second element portion 92 arranged side by side along the second direction DR2. The difference from FIG. 17 is that the fixed portions 3 and 4 of the first element portion 91 are provided on the second direction DR2 side, and the fixed portions 5 and 6 of the second element portion 92 are also provided on the second direction DR2 side. The first connecting portion 30 and the first movable electrode portion 20 are arranged in an S-shape via the third portion 33 of the first connecting portion 30. Similarly, the second element portion 92 is arranged such that the second connecting portion 70 and the second movable electrode portion 60 are connected in an S-shape via the sixth portion 73 of the second connecting portion 70. The same effect as in the third detailed example can be obtained by the modified examples shown in Figures 17 and 18.

[0082] FIG. 19 shows another variation of the third detailed example shown in FIG. 16. The variation shown in FIG. 19 differs from the third detailed example in the arrangement of the detectors Z1 and Z2. In the variation shown in FIG. 19, the first element unit 91 has the detector Z1, and the second element unit 92 has the detector Z2. That is, in the variation shown in FIG. 19, the first element unit 91 and the second element unit 92 do not have both the detectors Z1 and Z2. In this case, as described in FIG. 4, the first element unit 91 can detect acceleration in the fourth direction DR4 using the detector Z1, and the second element unit 92 can detect acceleration in the third direction DR3 using the detector Z2. Therefore, the first detector 100 having the first element unit 91 and the second element unit 92 can detect acceleration in the third direction DR3 and the fourth direction DR4. Even when the detectors Z1 and Z2 are provided in this manner, the same effect as the third detailed example can be obtained.

[0083] 3. Inertial Measurement Unit Next, an example of an inertial measurement unit 2000 according to this embodiment will be described with reference to Fig. 20 and Fig. 21. The inertial measurement unit 2000 (IMU) shown in Fig. 20 is a device that detects inertial momentum such as the attitude and behavior of a moving body such as an automobile or a robot. The inertial measurement unit 2000 is a so-called six-axis motion sensor that includes acceleration sensors that detect accelerations ax, ay, and az in directions along three axes, and angular velocity sensors that detect angular velocities ωx, ωy, and ωz about the three axes.

[0084] The inertial measurement unit 2000 has a rectangular parallelepiped shape with a substantially square planar shape. Screw holes 2110 serving as mounts are formed near two diagonal vertices of the square. Two screws can be inserted into these two screw holes 2110 to secure the inertial measurement unit 2000 to the mounting surface of a mounting body such as an automobile. By selecting appropriate parts and modifying the design, it is possible to reduce the size of the inertial measurement unit 2000 to a size that can be mounted in a smartphone or digital camera, for example.

[0085] Inertial measurement unit 2000 has outer case 2100, joining member 2200, and sensor module 2300, and is configured such that sensor module 2300 is inserted into outer case 2100 with joining member 2200 interposed therebetween. Sensor module 2300 has inner case 2310 and circuit board 2320. Inner case 2310 is formed with recess 2311 for preventing contact with circuit board 2320 and opening 2312 for exposing connector 2330, which will be described later. Circuit board 2320 is bonded to the bottom surface of inner case 2310 via adhesive.

[0086] 21, a connector 2330, an angular velocity sensor 2340z that detects angular velocity around the Z axis, and an acceleration sensor unit 2350 that detects acceleration in the directions of the X, Y, and Z axes are mounted on the top surface of circuit board 2320. Furthermore, an angular velocity sensor 2340x that detects angular velocity around the X axis and an angular velocity sensor 2340y that detects angular velocity around the Y axis are mounted on the side surface of circuit board 2320.

[0087] The acceleration sensor unit 2350 includes at least the physical quantity sensor 1 for measuring acceleration in the Z-axis direction described above, and can detect acceleration in one axis direction, or in two or three axes directions as necessary. Note that the angular velocity sensors 2340x, 2340y, and 2340z are not particularly limited, but for example, vibration gyro sensors that utilize the Coriolis force can be used.

[0088] A control IC 2360 is mounted on the underside of the circuit board 2320. The control IC 2360, which serves as a control unit that performs control based on the detection signal output from the physical quantity sensor 1, is, for example, an MCU (Micro Controller Unit), and has a built-in storage unit including a nonvolatile memory, an A / D converter, and the like, and controls each unit of the inertial measurement unit 2000. Note that a plurality of other electronic components are also mounted on the circuit board 2320.

[0089] As described above, the inertial measurement unit 2000 of this embodiment includes the physical quantity sensor 1 and the control IC 2360 as a control unit that performs control based on the detection signal output from the physical quantity sensor 1. This inertial measurement unit 2000 uses the acceleration sensor unit 2350 that includes the physical quantity sensor 1, and therefore it is possible to provide an inertial measurement unit 2000 that can enjoy the effects of the physical quantity sensor 1 and achieve high accuracy, etc.

[0090] 20 and 21. For example, inertial measurement unit 2000 may be configured to include only physical quantity sensor 1 as an inertial sensor, without including angular velocity sensors 2340x, 2340y, and 2340z. In this case, inertial measurement unit 2000 may be realized by housing physical quantity sensor 1 and control IC 2360 that realizes a control unit in a package that is a housing container.

[0091] As described above, the physical quantity sensor of this embodiment relates to a physical quantity sensor including: a first fixed electrode portion provided on a substrate; a first movable electrode portion provided such that a movable electrode faces the fixed electrode of the first fixed electrode portion; at least one first fixed portion fixed to the substrate; a first support beam having one end connected to the first fixed portion; a second support beam having one end connected to the first fixed portion; and a first coupling portion coupling the other end of the first support beam and the other end of the second support beam to the first movable electrode portion. When three mutually orthogonal directions are defined as a first direction, a second direction, and a third direction, in a plan view in the third direction orthogonal to the substrate 2, the first movable electrode portion and the first fixed portion are arranged along the first direction, and the first support beam and the second support beam are arranged along the second direction, and the first coupling portion includes a first portion arranged alongside the first support beam and the second support beam along the second direction, and a second portion connected to the first portion and the first movable electrode portion and arranged along the first direction.

[0092] According to this embodiment, by forming an opening in the movable body having the first movable electrode portion, the first movable electrode portion, which is the mass portion, can be separated by the width of this opening, thereby improving the sensitivity of the physical quantity sensor.

[0093] In this embodiment, the first connecting portion may include a third portion connected to the second portion and disposed alongside the first movable electrode portion along the second direction.

[0094] In this way, the third part of the first connecting part, which functions as a mass part, can be provided at a position away from the rotation axis including the first support beam and the second support beam, thereby improving the detection sensitivity of the physical quantity sensor.

[0095] In this embodiment, the fixed electrode of the first fixed electrode portion and the movable electrode of the first movable electrode portion may be provided so as to face each other in the second direction.

[0096] In this way, when a force is applied in the third direction, the first movable electrode unit can rotate around the second direction as the rotation axis while maintaining the fixed electrode and the movable electrode facing each other in parallel, thereby changing the facing area between the fixed electrode and the movable electrode and enabling detection of a physical quantity in the third direction.

[0097] In this embodiment, the first movable electrode portion may include a first base movable electrode, a first movable electrode extending from the first base movable electrode in a first direction, and a second movable electrode extending from the first base movable electrode in a direction opposite to the first direction, and the first fixed electrode portion may include a first fixed electrode facing the first movable electrode and a second fixed electrode facing the second movable electrode.

[0098] In this way, when a physical quantity in another axis direction changes, for example, one of the opposing areas between the first movable electrode and the first fixed electrode and the opposing area between the second movable electrode and the second fixed electrode will decrease, while the other opposing area will increase, thereby making it possible to suppress deterioration of other axis sensitivity, etc.

[0099] In addition, in this embodiment, the first fixed electrode portion includes a first base fixed electrode, a first fixed electrode extending from the first base fixed electrode in a first direction, and a second fixed electrode extending from the first base fixed electrode in a direction opposite to the first direction, and the first movable electrode portion includes a first movable electrode facing the first fixed electrode and a second movable electrode facing the second fixed electrode.

[0100] In this way, when a physical quantity in another axis direction changes, for example, one of the opposing areas between the first movable electrode and the first fixed electrode and the opposing area between the second movable electrode and the second fixed electrode will decrease, while the other opposing area will increase, thereby making it possible to suppress deterioration of other axis sensitivity, etc.

[0101] In addition, in this embodiment, at least one first fixed portion may include two fixed portions, and one end of the first support beam may be connected to one of the two fixed portions, and one end of the second support beam may be connected to the other of the two fixed portions.

[0102] In this way, the movable body including the first movable electrode portion and the first connecting portion is fixed to the substrate by two fixing portions, thereby stabilizing the position of the rotation axis including the first support beam and the second support beam on the substrate.

[0103] In addition, this embodiment includes a first detection element including a first fixed electrode portion, a first movable electrode portion, a first fixed portion, a first support beam, a second support beam, and a first connecting portion, and a second detection element, and the second detection element may be arranged in an area surrounded by the first part and the second part of the first connecting portion.

[0104] In this way, the second detection element can be disposed using the area surrounded by the first portion and the second portion of the first connecting portion, and the physical quantity sensor can be made smaller.

[0105] In addition, in this embodiment, the first connecting portion may include a third portion connected to the second portion and arranged along the second direction alongside the first movable electrode portion, and the second detection element may be arranged in an area surrounded by the first portion of the first connecting portion, the second portion, and the third portion.

[0106] In this way, the third part, which is located at a distance from the rotation axis including the first support beam and the second support beam, functions as a mass in the rotational motion of the first movable electrode part, thereby improving the detection sensitivity of the physical quantity sensor.

[0107] In addition, this embodiment includes a first fixed electrode wiring connected to the first fixed electrode portion, a first movable electrode wiring connected to the first movable electrode portion, and a first wiring group connected to the second detection element, and the first fixed electrode wiring, the first movable electrode wiring, and the first wiring group may be wired along the second direction.

[0108] In this way, multiple wirings can be wired in the second direction, so that pads connected to the wirings can be concentrated on one side, thereby enabling the physical quantity sensor to be made smaller.

[0109] In this embodiment, the optical element includes a second fixed electrode portion provided on the substrate, a second movable electrode portion provided such that a movable electrode faces the fixed electrode of the second fixed electrode portion, at least one second fixed portion fixed to the substrate, a third support beam having one end connected to the second fixed portion, a fourth support beam having one end connected to the second fixed portion, and a second connecting portion connecting the other end of the third support beam and the other end of the fourth support beam to the second movable electrode portion. In a plan view, the second fixed portion and the second movable electrode portion are arranged along the first direction, and the third support beam and the fourth support beam are arranged along the second direction. The second connecting portion includes a fourth portion arranged along the second direction alongside the third support beam and the fourth support beam, and a fifth portion connected to the fourth portion and the second movable electrode portion and arranged along the first direction.

[0110] In this way, by arranging the first fixed portion of the first detection element and the second fixed portion of the second detection element close to each other, even if warping or the like occurs in the substrate of the physical quantity sensor, it is possible to suppress the deterioration of the accuracy of acceleration detection due to this influence.

[0111] Furthermore, in this embodiment, the sensor may include a first detection element including a first fixed electrode portion, a first movable electrode portion, a first fixed portion, a first support beam, a second support beam, a first connecting portion, a second fixed electrode portion, a second movable electrode portion, a second fixed portion, a third support beam, a fourth support beam, and a second connecting portion, a second detection element, and a third detection element. The second detection element may be disposed in a region surrounded by the first and second portions of the first connecting portion, and the third detection element may be disposed in a region surrounded by the fourth and fifth portions of the second connecting portion.

[0112] In this way, the second detection element and the third detection element can be effectively provided in the dead space that occurs as the sensitivity of the physical quantity sensor increases, and the physical quantity in the first direction or the second direction can be detected in addition to the physical quantity in the third direction.

[0113] In this embodiment, the first coupling portion may include a third portion connected to the second portion and arranged alongside the first movable electrode portion along the second direction, and the second coupling portion may include a sixth portion connected to the fifth portion and arranged alongside the second movable electrode portion along the second direction. The second detection element may be arranged in a region surrounded by the first, second, and third portions of the first coupling portion 30, and the third detection element may be arranged in a region surrounded by the fourth, fifth, and sixth portions of the second coupling portion.

[0114] In this way, the third portion of the first connecting portion that functions as a mass portion can be provided at a position distant from the rotation axis including the first support beam and the second support beam, and the mass of the entire movable body including the first movable electrode portion and the distance from the rotation axis can be increased, thereby improving the detection sensitivity of the physical quantity sensor. Similarly, for the sixth portion of the second connecting portion, the mass of the entire movable body including the second movable electrode portion and the distance from the rotation axis can be increased, thereby improving the detection sensitivity of acceleration in the third direction.

[0115] Furthermore, this embodiment may include a first fixed electrode wiring connected to the first fixed electrode portion, a first movable electrode wiring connected to the first movable electrode portion, a second fixed electrode wiring connected to the second fixed electrode portion, a second movable electrode wiring connected to the second movable electrode portion, a first wiring group connected to the second detection element, and a second wiring group connected to the third detection element. The first fixed electrode wiring, the first movable electrode wiring, the second fixed electrode wiring, the second movable electrode wiring, the first wiring group, and the second wiring group may be wired along the second direction.

[0116] In this way, multiple wirings can be wired in the second direction, so that pads connected to the wirings can be concentrated on one side, thereby enabling the physical quantity sensor to be made smaller.

[0117] This embodiment also relates to an inertial measurement unit including a control unit that performs control based on detection signals output from the physical quantity sensors.

[0118] Although the present embodiment has been described in detail above, it will be readily apparent to those skilled in the art that many modifications are possible without substantially departing from the novel features and advantages of the present disclosure. Therefore, all such modifications are intended to be included within the scope of the present disclosure. For example, a term described at least once in the specification or drawings together with a different term having a broader or equivalent meaning may be replaced with that different term anywhere in the specification or drawings. Furthermore, all combinations of the present embodiment and modifications are also included within the scope of the present disclosure. Furthermore, the configurations and operations of the physical quantity sensor and the inertial measurement unit are not limited to those described in the present embodiment, and various modifications are possible. [Explanation of symbols]

[0119] 1...physical quantity sensor, 2...substrate, 3...fixed portion, 4...fixed portion, 10...first fixed electrode portion, 11...first fixed electrode, 12...second fixed electrode, 13...first base fixed electrode, 14...fixed electrode, 20...first movable electrode portion, 21...first movable electrode, 22...second movable electrode, 23...first base movable electrode, 24...movable electrode, 30...first connecting portion, 31...first portion, 31A...first portion, 31B...first portion, 32...second portion, 33...third portion, 40...first fixed portion, 40A...first fixed portion, 40B...first fixed portion, 42...first support beam, 43...second support beam, 50...second fixed electrode pole portion, 51...third fixed electrode, 52...fourth fixed electrode, 53...second base fixed electrode, 54...fixed electrode, 60...second movable electrode portion, 61...third movable electrode, 62...fourth movable electrode, 63...second base movable electrode, 64...movable electrode, 70...second connecting portion, 71...fourth portion, 72...fifth portion, 73...sixth portion, 80...second fixed portion, 82...third support beam, 83...fourth support beam, 84...fourth support beam, 91...second element portion, 92...second element portion, 92...second detection element, 100...first detection element, 102...second detection element, 104...third detection element, 2000...inertial measurement unit, 2 100...outer case, 2110...screw hole, 2200...joint member, 2300...sensor module, 2310...inner case, 2311...recess, 2312...opening, 2320...circuit board, 2330...connector, 2340x...angular velocity sensor, 2340y...angular velocity sensor, 2340z...angular velocity sensor, 2350...acceleration sensor unit, DR1...first direction, DR2...second direction, DR3...third direction, DR4...fourth direction, I...moment of inertia, IC2360...control, L1...first wiring group, L2...second wiring group, L11 to L1 3...wiring, L21 to L23...wiring, LV...first movable electrode wiring, LV...second movable electrode wiring, LF1A...first fixed electrode wiring, LF1B...first fixed electrode wiring, LF2A...second fixed electrode wiring, LF2B...second fixed electrode wiring, P1 to P6...pad, PF1A...pad, PF1B...pad, PF2A...pad, PF2B...pad, PV...pad, QV...differential amplifier circuit, RB...rigid body, S...torsion spring, Z1...detection unit, Z2...detection unit, ax...acceleration, ay...acceleration, az...acceleration, m...mass, Δθ...angle, θ0...angle, ω...angular velocity, ωx...angular velocity

Claims

1. a first fixed electrode portion provided on the substrate; a first movable electrode portion provided such that a movable electrode faces a fixed electrode of the first fixed electrode portion; At least one first fixed portion fixed to the substrate; a first support beam having one end connected to the first fixed portion; a second support beam having one end connected to the first fixed portion; a first connecting portion that connects the other end of the first support beam and the other end of the second support beam to the first movable electrode portion; Including, When three directions orthogonal to one another are defined as a first direction, a second direction, and a third direction, the position of the first movable electrode portion and the position of the first fixed portion are arranged side by side along the first direction in a plan view in the third direction orthogonal to the substrate, the first support beam and the second support beam are arranged along the second direction, The first connecting portion is a first portion disposed along the second direction alongside the first support beam and the second support beam; a second portion connected to the first portion and the first movable electrode portion and disposed along the first direction; A physical quantity sensor comprising:

2. 2. The physical quantity sensor according to claim 1, The first connecting portion is A physical quantity sensor comprising: a third portion connected to the second portion and arranged alongside the first movable electrode portion along the second direction.

3. The physical quantity sensor according to claim 1 or 2, The physical quantity sensor, wherein the fixed electrode of the first fixed electrode portion and the movable electrode of the first movable electrode portion face each other in the second direction.

4. The physical quantity sensor according to claim 1 , the first movable electrode portion includes a first base movable electrode, a first movable electrode extending from the first base movable electrode in the first direction, and a second movable electrode extending from the first base movable electrode in a direction opposite to the first direction, The physical quantity sensor, wherein the first fixed electrode portion includes a first fixed electrode facing the first movable electrode and a second fixed electrode facing the second movable electrode.

5. The physical quantity sensor according to claim 1 , the first fixed electrode portion includes a first base fixed electrode, a first fixed electrode extending from the first base fixed electrode in the first direction, and a second fixed electrode extending from the first base fixed electrode in a direction opposite to the first direction, The physical quantity sensor, wherein the first movable electrode portion includes a first movable electrode facing the first fixed electrode and a second movable electrode facing the second fixed electrode.

6. The physical quantity sensor according to any one of claims 1 to 5, A physical quantity sensor characterized in that at least one of the first fixed portions includes two fixed portions, one end of the first support beam is connected to one of the two fixed portions, and one end of the second support beam is connected to the other of the two fixed portions.

7. The physical quantity sensor according to claim 1 , a first detection element including the first fixed electrode portion, the first movable electrode portion, the first fixed portion, the first support beam, the second support beam, and the first connecting portion; A second detection element; Including, The physical quantity sensor, characterized in that the second detection element is disposed in a region surrounded by the first portion and the second portion of the first connecting portion.

8. The physical quantity sensor according to claim 7, The first connecting portion is a third portion connected to the second portion and arranged alongside the first movable electrode portion along the second direction; The physical quantity sensor, characterized in that the second detection element is disposed in a region surrounded by the first portion, the second portion, and the third portion of the first connecting portion.

9. The physical quantity sensor according to claim 7 or 8, a first fixed electrode wiring connected to the first fixed electrode portion; a first movable electrode wiring connected to the first movable electrode portion; a first wiring group connected to the second detection element; Including, The physical quantity sensor is characterized in that the first fixed electrode wiring, the first movable electrode wiring, and the first wiring group are wired along the second direction.

10. The physical quantity sensor according to claim 1 , a second fixed electrode portion provided on the substrate; a second movable electrode portion provided such that the movable electrode faces the fixed electrode of the second fixed electrode portion; At least one second fixed portion fixed to the substrate; a third support beam having one end connected to the second fixed portion; a fourth support beam having one end connected to the second fixed portion; a second connecting portion connecting the other end of the third support beam and the other end of the fourth support beam to the second movable electrode portion; Including, In the plan view, the second fixed portion and the second movable electrode portion are arranged along the first direction, the third support beam and the fourth support beam are arranged along the second direction, The second connecting portion is a fourth portion disposed along the second direction alongside the third support beam and the fourth support beam; a fifth portion connected to the fourth portion and the second movable electrode portion and disposed along the first direction; A physical quantity sensor comprising:

11. The physical quantity sensor according to claim 10, a first detection element including the first fixed electrode portion, the first movable electrode portion, the first fixed portion, the first support beam, the second support beam, the first connecting portion, the second fixed electrode portion, the second movable electrode portion, the second fixed portion, the third support beam, the fourth support beam, and the second connecting portion; A second detection element; a third detection element; and Including, the second detection element is disposed in a region surrounded by the first portion and the second portion of the first connection portion, The physical quantity sensor, wherein the third detection element is disposed in a region surrounded by the fourth portion and the fifth portion of the second connection portion.

12. The physical quantity sensor according to claim 11, The first connecting portion is a third portion connected to the second portion and arranged alongside the first movable electrode portion along the second direction; The second connecting portion is a sixth portion connected to the fifth portion and arranged alongside the second movable electrode portion along the second direction; the second detection element is disposed in a region surrounded by the first portion, the second portion, and the third portion of the first connection portion, The physical quantity sensor, characterized in that the third detection element is disposed in a region surrounded by the fourth portion, the fifth portion, and the sixth portion of the second connection portion.

13. The physical quantity sensor according to claim 11 or 12, a first fixed electrode wiring connected to the first fixed electrode portion; a first movable electrode wiring connected to the first movable electrode portion; a second fixed electrode wiring connected to the second fixed electrode portion; a second movable electrode wiring connected to the second movable electrode portion; a first wiring group connected to the second detection element; a second wiring group connected to the third detection element; Including, A physical quantity sensor characterized in that the first fixed electrode wiring, the first movable electrode wiring, the second fixed electrode wiring, the second movable electrode wiring, the first wiring group, and the second wiring group are wired along the second direction.

14. The physical quantity sensor according to any one of claims 1 to 13; a control unit that performs control based on a detection signal output from the physical quantity sensor; 1. An inertial measurement unit comprising:

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