magnetic sensor

The magnetic sensor addresses miniaturization challenges by using overlapping leads with a soft magnetic body to reduce wiring resistance, ensuring sensitivity is maintained.

JP7724248B2Active Publication Date: 2025-08-15TDK CORP
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Patent Information

Application Number
JP2023038569
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-03-13
Publication Date
2025-08-15
Estimated Expiration
2043-03-13

AI Technical Summary

Technical Problem

Magnetic sensors face challenges in miniaturization due to increased resistance in wiring that connects multiple magnetoresistive effect elements, particularly in configurations with serially connected elements along a long structure like a yoke, which affects sensitivity.

Method used

The magnetic sensor design includes a soft magnetic body with leads that overlap with the soft magnetic material, reducing the resistance value of the wiring by incorporating a portion that overlaps with the soft magnetic body when viewed perpendicularly.

Benefits of technology

This design effectively reduces wiring resistance, allowing for miniaturization while maintaining sensitivity by overlapping leads with the soft magnetic material, thus enhancing the magnetic sensor's performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

To realize a magnetic sensor that can reduce a resistance value of wiring.SOLUTION: A magnetic sensor 1 comprises: a soft magnetic material 30 having a first end face 30a and a second end face 30b located on the opposite sides; a first MR element 20A disposed near the first end face 30a; a second MR element 20B disposed near the second end face 30b; and a first lead 41 electrically connecting the first MR element 20A and the second MR element 20B, and including a portion overlapping with the soft magnetic material 30 when viewed from a second direction orthogonal to a first direction where the first MR element 20A and the second MR element 20B are arranged side by side.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates to a magnetic sensor including a soft magnetic material and a magnetoresistive element. [Background technology]

[0002] In recent years, magnetic sensors have been used in a variety of applications. Known magnetic sensors include those using spin-valve magnetoresistive elements provided on a substrate. A spin-valve magnetoresistive element includes a fixed magnetization layer having a fixed magnetization direction, a free layer having a magnetization whose direction can change depending on the direction of an applied magnetic field, and a gap layer disposed between the fixed magnetization layer and the free layer. Spin-valve magnetoresistive elements provided on a substrate are often configured to be sensitive to magnetic fields parallel to the surface of the substrate.

[0003] On the other hand, in a system including a magnetic sensor, it may be desirable to detect a magnetic field perpendicular to the surface of the substrate using a magnetoresistive element provided on the substrate. A known magnetic sensor that achieves this is one that includes one or more magnetic field transducers made of a soft magnetic material. The magnetic field transducers convert a magnetic field perpendicular to the surface of the substrate into a magnetic field parallel to the surface of the substrate, and apply the magnetic field to the magnetoresistive element. Such a magnetic sensor is described, for example, in Patent Document 1.

[0004] Patent Document 1 discloses a magnetic sensor including a magnetic field conversion unit, multiple magnetoresistive effect elements, and a wiring unit. The magnetic field conversion unit includes multiple yokes. Each of the multiple yokes is elongated in one direction and receives an input magnetic field to generate an output magnetic field. The multiple magnetoresistive effect elements are arranged on both sides of each of the multiple yokes. Each of the multiple magnetoresistive effect elements is elongated in the longitudinal direction of each of the multiple yokes. The wiring unit connects the multiple magnetoresistive effect elements arranged along the longitudinal direction of each of the multiple yokes in series. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Publication No. 2019-174196 Summary of the Invention [Problem to be solved by the invention]

[0006] Increasing the area occupied by the magnetoresistive effect element in the magnetic sensor is an effective way to increase the sensitivity of the magnetic sensor. Meanwhile, miniaturization of the magnetic sensor is also required as devices incorporating magnetic sensors become smaller. Increasing the area occupied by the magnetoresistive effect element or miniaturizing the magnetic sensor reduces the width of the wiring used to electrically connect multiple magnetoresistive effect elements. This results in an increase in the resistance of the wiring, which reduces the sensitivity of the magnetic sensor. This problem is particularly pronounced in magnetic sensors that include wiring that serially connects multiple magnetoresistive effect elements arranged along a structure that is long in one direction, such as a yoke.

[0007] The present invention has been made in view of the above problems, and its object is to provide a magnetic sensor that can reduce the resistance value of the wiring that electrically connects a plurality of magnetoresistive effect elements. [Means for solving the problem]

[0008] The magnetic sensor of the present invention comprises a soft magnetic body having a first end face and a second end face located opposite each other, a first magnetoresistance effect element arranged near the first end face, a second magnetoresistance effect element arranged near the second end face, and a first lead that electrically connects the first magnetoresistance effect element and the second magnetoresistance effect element and includes a portion that overlaps with the soft magnetic body when viewed from a second direction perpendicular to the first direction in which the first magnetoresistance effect element and the second magnetoresistance effect element are aligned. [Effects of the Invention]

[0009] In the magnetic sensor of the present invention, the first lead includes a portion that overlaps with the soft magnetic material, thereby achieving the effect of reducing the resistance value of the wiring that electrically connects the multiple magnetoresistive effect elements. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a plan view showing a magnetic sensor according to a first embodiment of the present invention. [Figure 2] 1 is a plan view schematically showing wiring and a plurality of element pairs of a magnetic sensor according to a first embodiment of the present invention. [Figure 3] 1 is a circuit diagram showing a circuit configuration of a magnetic sensor according to a first embodiment of the present invention. [Figure 4] 1 is a perspective view showing a part of a magnetic sensor according to a first embodiment of the present invention. [Figure 5] 1 is a side view showing a part of a magnetic sensor according to a first embodiment of the present invention. [Figure 6] FIG. 1 is a plan view showing a part of a magnetic sensor according to a first embodiment of the present invention. [Figure 7] 1 is a perspective view showing a magnetoresistive effect element according to a first embodiment of the present invention. [Figure 8] FIG. 10 is a plan view showing a part of a magnetic sensor of a comparative example. [Figure 9] FIG. 4 is a side view showing a part of a modified example of the magnetic sensor according to the first embodiment of the present invention. [Figure 10] FIG. 10 is a plan view schematically showing wiring and a plurality of element pairs of a magnetic sensor according to a second embodiment of the present invention. [Figure 11] FIG. 10 is a plan view schematically showing wiring and a plurality of element pairs of a magnetic sensor according to a third embodiment of the present invention. [Figure 12] FIG. 10 is a perspective view showing a magnetic sensor system according to a fourth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0011] [First embodiment] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. First, a schematic configuration of a magnetic sensor according to a first embodiment of the present invention will be described with reference to Figs. 1 to 3. Fig. 1 is a plan view showing a magnetic sensor 1 according to this embodiment. Fig. 2 is a plan view schematically showing wiring and multiple element pairs of the magnetic sensor 1 according to this embodiment. Fig. 3 is a circuit diagram showing the circuit configuration of the magnetic sensor 1 according to this embodiment.

[0012] The magnetic sensor 1 according to this embodiment is used, for example, as part of a geomagnetic sensor. The magnetic sensor 1 includes a power supply port V, a ground port G, a first output port E1, a second output port E2, a first resistor R1, a second resistor R2, a third resistor R3, and a fourth resistor R4. Each of the first to fourth resistors R1 to R4 includes a plurality of magnetoresistive elements (hereinafter referred to as MR elements).

[0013] As shown in FIG. 3, the first resistor R1 is provided between the power supply port V and the first output port E1 in the circuit configuration. The second resistor R2 is provided between the ground port G and the first output port E1 in the circuit configuration. The third resistor R3 is provided between the ground port G and the second output port E2 in the circuit configuration. The fourth resistor R4 is provided between the power supply port V and the second output port E2 in the circuit configuration. In this application, the expression "in the circuit configuration" is used to refer to the arrangement on a circuit diagram, not the arrangement in a physical configuration.

[0014] A voltage or current of a predetermined magnitude is applied to the power port V. The ground port G is connected to ground.

[0015] Any three ports among the power supply port V, the ground port G, the first output port E1, and the second output port E2 correspond to the "first port," "second port," and "third port" in the present invention. For example, the power supply port V and the ground port G may correspond to the "first port" and "third port," respectively. In this case, the first output port E1 may correspond to the "second port," and the second output port E2 may correspond to the "second port."

[0016] As shown in FIG. 2, the magnetic sensor 1 further includes wiring 40. The first resistor R1 is electrically connected to the power supply port V and the first output port E1 by the wiring 40. The second resistor R2 is electrically connected to the ground port G and the first output port E1 by the wiring 40. The third resistor R3 is electrically connected to the ground port G and the second output port E2 by the wiring 40. The fourth resistor R4 is electrically connected to the power supply port V and the second output port E2 by the wiring 40.

[0017] 1 and 2, the magnetic sensor 1 further includes a substrate 10. The substrate 10 includes a power supply port V, a ground port G, and a 1 The second output ports E1 and E2, the first to fourth resistor portions R1 to R4, and the wiring 40 are provided on the substrate 10.

[0018] Here, the X direction, Y direction, and Z direction are defined as shown in FIGS. 1 and 2. The X direction, Y direction, and Z direction are perpendicular to one another. The direction opposite the X direction is defined as the -X direction, the direction opposite the Y direction is defined as the -Y direction, and the direction opposite the Z direction is defined as the -Z direction. In this embodiment, the direction perpendicular to the surface of the substrate 10 is defined as the Z direction.

[0019] In the following, the position at the end of the Z direction relative to the reference position will be referred to as "above," and the position on the opposite side of the reference position from "above" will be referred to as "below." Furthermore, with regard to the components of the magnetic sensor 1, the surface located at the end of the Z direction will be referred to as the "top surface," and the surface located at the end of the -Z direction will be referred to as the "bottom surface." Furthermore, the expression "when viewed from the Z direction" means viewing the object from a position away in the Z direction.

[0020] 1 and 2 show an example of the arrangement of the first to fourth resistor portions R1 to R4 on the substrate 10. In this example, the first and second resistor portions R1 and R2 are aligned in a direction parallel to the X direction along the Y-direction edge of the substrate 10. The second resistor portion R2 is arranged ahead of the first resistor portion R1 in the X direction.

[0021] The third and fourth resistor portions R3 and R4 are aligned in a direction parallel to the X direction along the edge of the substrate 10 in the -Y direction. The fourth resistor portion R4 is disposed ahead of the third resistor portion R3 in the -X direction. The third resistor portion R3 is also disposed ahead of the second resistor portion R2 in the -Y direction. The fourth resistor portion R4 is also disposed ahead of the first resistor portion R1 in the -Y direction.

[0022] The arrangement of the first to fourth resistor portions R1 to R4 on the substrate 10 is not limited to the example shown in Figures 1 and 2. For example, the first to fourth resistor portions R1 to R4 may be arranged in a predetermined order in a direction parallel to the X direction or in a direction parallel to the Y direction.

[0023] Each of the first to fourth resistor sections R1 to R4 includes a plurality of soft magnetic structures each including a soft magnetic body 30, a plurality of element pairs each including a first MR element 20A, a second MR element 20B, and a first lead 41, and a plurality of second leads 42 that electrically connect the plurality of element pairs. The first and second leads 41 and 42 are shown in FIG. 5, which will be described later. The first and second leads 41 and 42 form part of the wiring 40.

[0024] 2, for convenience, the number of element pairs included in each of the first to fourth resistor sections R1 to R4 is three. However, the number of element pairs included in each of the first to fourth resistor sections R1 to R4 may be more than three. In each of the first to fourth resistor sections R1 to R4, the first MR element 20A and the second MR element 20B are electrically connected alternately by wiring 40 (first and second leads 41, 42).

[0025] Next, the soft magnetic body 30, the first and second MR elements 20A and 20B, and the first and second leads 41 and 42 will be described in detail with reference to Figures 4 to 6. Figure 4 is a perspective view showing a portion of the magnetic sensor 1. Figure 5 is a side view showing a portion of the magnetic sensor 1. Figure 6 is a plan view showing a portion of the magnetic sensor. Figures 4 to 6 show a portion of the first resistor R1 or a portion of the third resistor R3 as part of the magnetic sensor 1.

[0026] The soft magnetic body 30 is a yoke configured to receive an input magnetic field including an input magnetic field component parallel to the Z direction and generate an output magnetic field including an output magnetic field component parallel to the X direction. The soft magnetic body 30 has, for example, a rectangular parallelepiped shape that is elongated in the Y direction. In this embodiment, each of the multiple soft magnetic structures includes only the soft magnetic body 30. Note that each of the multiple soft magnetic structures may include a soft magnetic body other than the soft magnetic body 30. The other soft magnetic body may have the same shape as the soft magnetic body 30 or may have a different shape from the soft magnetic body 30.

[0027] The soft magnetic body 30 has a first end face 30a and a second end face 30b located on opposite sides. As shown in Fig. 5, in the first and third resistance portions R1 and R3, the first end face 30a is located at the end of the soft magnetic body 30 in the -X direction, and the second end face 30b is located at the end of the soft magnetic body 30 in the X direction. Although not shown, in the second and fourth resistance portions R2 and R4, the first end face 30a is located at the end of the soft magnetic body 30 in the X direction, and the second end face 30b is located at the end of the soft magnetic body 30 in the -X direction.

[0028] 5, in the first and third resistance portions R1 and R3, the first end face 30a may be located at the end of the soft magnetic material 30 in the X direction, and the second end face 30b may be located at the end of the soft magnetic material 30 in the −X direction. In this case, in the second and fourth resistance portions R2 and R4, the first end face 30a is located at the end of the soft magnetic material 30 in the −X direction, and the second end face 30b is located at the end of the soft magnetic material 30 in the X direction.

[0029] Each of the first and second MR elements 20A and 20B is disposed at a position where it can detect an output magnetic field component generated from the soft magnetic material 30. The first MR element 20A is disposed near a first end face 30a of the soft magnetic material 30. The second MR element 20B is disposed near a second end face 30b of the soft magnetic material 30. In particular, in this embodiment, the number of soft magnetic structures (soft magnetic materials 30) is the same as the number of element pairs. One soft magnetic material 30 is disposed between the first MR element 20A and the second MR element 20B that constitute one element pair. Each of the first and second MR elements 20A and 20B is disposed below the soft magnetic material 30. Each of the first and second MR elements 20A and 20B has a shape that is elongated in the Y direction.

[0030] The soft magnetic bodies 30 are arranged such that a plurality of them are lined up in each of the X and Y directions. The element pairs are arranged such that a plurality of them are lined up in each of the X and Y directions in accordance with the soft magnetic bodies 30.

[0031] Here, one element pair will be described with reference to Fig. 5. In one element pair, the first MR element 20A and the second MR element 20B are aligned in a direction parallel to the X direction. The first MR element 20A and the second MR element 20B are electrically connected by a first lead 41. In the example shown in Fig. 5, the first lead 41 is disposed at a position between the first lead 41 and the soft magnetic body 30 so as to sandwich the first and second MR elements 20A and 20B, and is connected to the bottom surface of the first MR element 20A and the bottom surface of the second MR element 20B.

[0032] The first lead 41 includes a portion that overlaps with the soft magnetic body 30 when viewed from the Z direction. That is, the first lead 41 extends to pass below the soft magnetic body 30 and connects the first MR element 20A and the second MR element 20B. In this embodiment, the first lead 41 particularly extends in the X direction.

[0033] Next, two element pairs adjacent in the X direction will be described with reference to Figure 5. Hereinafter, one of the two element pairs will be referred to as the first element pair, and the other of the two element pairs will be referred to as the second element pair. The second lead 42 electrically connects one of the first MR element 20A and the second MR element 20B of the first element pair to the second element pair without any intervening MR element.

[0034] In the example shown in FIG. 5, i.e., the first and third resistors R1 and R3, No. 2 Lead 42 electrically connects the first MR element 20A of the first element pair to the second MR element 20B of the second element pair adjacent to the first MR element 20A on the −X direction side without any intervening MR element. The second MR element 20B of the first element pair is not directly connected to the second element pair.

[0035] Also, other specific No. 2 Lead 42 electrically connects the second MR element 20B of a first element pair to the first MR element 20A of another second element pair adjacent to the second MR element 20B on the X-direction side without any intervening MR element. The first MR element 20A of the first element pair is not directly connected to the other second element pair.

[0036] The above description of the two element pairs adjacent in the X direction in the first and third resistor units R1 and R3 also applies to the second and fourth resistor units R2 and R4. If the first MR element 20A and the second MR element 20B are interchanged in the description of the two element pairs adjacent in the X direction in the first resistor unit R1 or the third resistor unit R3, the description becomes the two element pairs adjacent in the X direction in the second and fourth resistor units R2 and R4.

[0037] Next, the shape of the wiring 40 will be described with reference to Fig. 6. In each of the first to fourth resistance portions R1 to R4, a plurality of first leads 41 and a plurality of second leads 42 form part of the wiring 40. In the first to fourth resistance portions R1 to R4, the shape of the wiring 40 when viewed from the Z direction is a meander shape.

[0038] As shown in FIG. 6, the wiring 40 includes a plurality of first portions 40A and a plurality of second portions 40B. In FIG. 6, the boundary between the first portions 40A and the second portions 40B is indicated by a dotted line. Each of the plurality of first portions 40A extends in a direction parallel to the X direction. The plurality of first portions 40A are also arranged side by side in the Y direction. Each of the plurality of first portions 40A is composed of a plurality of first leads 41 and a plurality of second leads 42.

[0039] Each of the second portions 40B connects two first portions 40A adjacent to each other in the Y direction. Each of the second portions 40B is formed by a part of the second lead .

[0040] Next, two element pairs (a first element pair and a second element pair) adjacent in the Y direction will be described with reference to Figure 6. The first element pair located near one longitudinal end of the first portion 40A is connected to the second element pair located near one longitudinal end of the other first portion 40A. The second lead 42 (a part of the first portion 40A, a part of the other first portion 40A, and the second portion 40B) electrically connects one of the first MR element 20A and the second MR element 20B of the first element pair to the second element pair without any intervening MR element.

[0041] 6, i.e., in the first resistor section R1 or the third resistor section R3, a specific second lead 42 electrically connects a first MR element 20A of a first element pair located near one end on the −X direction side of a specific first portion 40A located in the center in the vertical direction in FIG. 6 to a first MR element 20A of a second element pair adjacent to the first MR element 20A on the −Y direction side, without any intervening MR element. The second MR element 20B of the first element pair is not directly connected to the second element pair.

[0042] Furthermore, another specific second lead 42 electrically connects the second MR element 20B of another first element pair located near one end of the specific first portion 40A in the X direction to the second MR element 20B of another second element pair adjacent to the second MR element 20B in the Y direction without any intervening MR element. The first MR element 20A of the other first element pair is not directly connected to the other second element pair.

[0043] At least one element pair other than the two element pairs located near both ends of the first portion 40A in the longitudinal direction is not directly connected to other element pairs adjacent thereto in the Y direction or the -Y direction.

[0044] 6 shows a portion of the first resistor portion R1, the above description may also apply to the third resistor portion R3. Alternatively, in the third resistor portion R3, a specific second lead 42 may electrically connect the first MR element 20A of a first element pair located near one end of the specific first portion 40A on the −X direction side to the first MR element 20A of a second element pair adjacent to the first MR element 20A on the Y direction side, and another specific second lead 42 may electrically connect the second MR element 20B of another first element pair located near one end of the specific first portion 40A on the X direction side to the second MR element 20B of another second element pair adjacent to the second MR element 20B on the −Y direction side.

[0045] The above description of the two element pairs adjacent in the Y direction in the first and third resistor units R1 and R3 also applies to the second and fourth resistor units R2 and R4. If the first MR element 20A and the second MR element 20B are interchanged in the description of the two element pairs adjacent in the Y direction in the first and third resistor units R1 and R3, the description becomes the two element pairs adjacent in the Y direction in the second and fourth resistor units R2 and R4.

[0046] Next, the shapes of the first MR element 20A, the second MR element 20B, and the wiring 40 (first and second leads 41, 42) will be described with reference to Fig. 6. The first MR element 20A, the second MR element 20B, and the wiring 40 each have a width that is a dimension in a direction parallel to the Y direction. The width of the first MR element 20A is also the dimension in the longitudinal direction of the first MR element 20A. The width of the second MR element 20B is also the dimension in the longitudinal direction of the second MR element 20B.

[0047] In each of the first to fourth resistor portions R1 to R4, the wiring 40 (first lead 41 and second lead 42) includes a portion where the width of the wiring 40 (the width of the first lead 41 and the width of the second lead 42) is equal to or greater than the width of each of the first MR element 20A and the second MR element 20B. As shown in FIG. 6, the width of the first portion 40A of the wiring 40 may be constant. Alternatively, the width of the first portion 40A of the wiring 40 may not be constant.

[0048] 6, for convenience, the dimension of the soft magnetic body 30 in the direction parallel to the Y direction is drawn to be smaller than the width of the wiring 40. However, the dimension of the soft magnetic body 30 may be equal to or larger than the width of the wiring 40.

[0049] Next, the configuration of the first and second MR elements 20A and 20B will be described with reference to Fig. 7. Fig. 7 is a perspective view showing the first and second MR elements 20A and 20B. The first and second MR elements 20A and 20B have the same configuration except for the magnetization direction of the magnetization fixed layer, which will be described later.

[0050] The first and second MR elements 20A and 20B are both spin-valve MR elements. Each of the first and second MR elements 20A and 20B includes a magnetization pinned layer 22 having a fixed magnetization direction, a free layer 24 having a magnetization direction that can be changed depending on the direction of an applied magnetic field, and a gap layer 23 disposed between the magnetization pinned layer 22 and the free layer 24. The first and second MR elements 20A and 20B may be TMR (tunneling magnetoresistance) elements or GMR (giant magnetoresistance) elements. In a TMR element, the gap layer 23 is a tunnel barrier layer. In a GMR element, the gap layer 23 is a nonmagnetic conductive layer. In the first and second MR elements 20A and 20B, the resistance value varies depending on the angle between the magnetization direction of the free layer 24 and the magnetization direction of the magnetization pinned layer 22. When the angle is 0°, the resistance value is minimum, and when the angle is 180°, the resistance value is maximum.

[0051] Each of the first and second MR elements 20A and 20B has a shape elongated in a direction parallel to the Y direction. As a result, the free layer 24 of each of the first and second MR elements 20A and 20B has shape anisotropy in which the magnetization easy axis direction is parallel to the Y direction. Therefore, in the absence of an applied magnetic field, the magnetization direction of the free layer 24 is parallel to the Y direction. When an output magnetic field component parallel to the X direction is present, the magnetization direction of the free layer 24 changes depending on the direction and strength of the output magnetic field component. Therefore, the angle between the magnetization direction of the free layer 24 and the magnetization direction of the magnetization fixed layer 22 changes depending on the direction and strength of the output magnetic field component received by each of the first and second MR elements 20A and 20B. Therefore, the resistance value of each of the first and second MR elements 20A and 20B corresponds to the output magnetic field component. The direction of the easy axis of magnetization can be set parallel to the Y direction by providing a magnet that applies a bias magnetic field to the free layer 24 without relying on shape anisotropy, that is, a bias magnetic field due to shape anisotropy.

[0052] Each of the first and second MR elements 20A and 20B further includes an antiferromagnetic layer 21. The antiferromagnetic layer 21, the magnetization pinned layer 22, the gap layer 23, and the free layer 24 are stacked in this order. The antiferromagnetic layer 21 is made of an antiferromagnetic material and generates exchange coupling with the magnetization pinned layer 22 to pin the magnetization direction of the magnetization pinned layer 22. The magnetization pinned layer 22 may be a so-called self-pinned type pinned layer (synthetic ferri-pinned layer, SFP layer). The self-pinned type pinned layer has a synthetic ferri-structure in which a ferromagnetic layer, a non-magnetic intermediate layer, and a ferromagnetic layer are stacked, and the two ferromagnetic layers are antiferromagnetically coupled. When the magnetization pinned layer 22 is a self-pinned type pinned layer, the antiferromagnetic layer 21 may be omitted.

[0053] The arrangement of the layers 21 to 24 in each of the first and second MR elements 20A and 20B may be upside down relative to the arrangement shown in FIG.

[0054] Next, the magnetization direction of the magnetization fixed layer 22 will be described with reference to FIGS. 2 and 3. The magnetization of the magnetization fixed layer 22 of the first MR element 20A includes a component in a first magnetization direction. The magnetization of the magnetization fixed layer 22 of the second MR element 20B includes a component in a second magnetization direction opposite to the first magnetization direction. In particular, in this embodiment, the first magnetization direction is the X direction, and the second magnetization direction is the −X direction. In FIGS. 2 and 3, the arrow drawn on the first MR element 20A represents the first magnetization direction, and the arrow drawn on the second MR element 20B represents the second magnetization direction.

[0055] When the magnetization of the magnetization fixed layer 22 includes a component in a specific magnetization direction, the component in the specific magnetization direction may be the main component of the magnetization of the magnetization fixed layer 22. Alternatively, the magnetization of the magnetization fixed layer 22 may not include a component in a direction perpendicular to the specific magnetization direction. In this embodiment, when the magnetization of the magnetization fixed layer 22 includes a component in a specific magnetization direction, the direction of the magnetization of the magnetization fixed layer 22 becomes the specific magnetization direction or approximately the specific magnetization direction.

[0056] Next, with reference to FIGS. 2 and 3, the arrangement order of the first and second MR elements 20A, 20B in each of the first to fourth resistor units R1 to R4 will be described. In the first and third resistor units R1, R3, the first MR element 20A and the second MR element 20B are arranged in this order in the X direction in each of the plurality of element pairs. In the second and fourth resistor units R2, R4, the first MR element 20A and the second MR element 20B are arranged in this order in the -X direction in each of the plurality of element pairs. That is, in this embodiment, the arrangement order of the first MR elements 20A and the second MR elements 20B in the plurality of element pairs in the first and third resistor units R1, R3 is opposite to the arrangement order of the first MR elements 20A and the second MR elements 20B in the plurality of element pairs in the second and fourth resistor units R2, R4 in the direction parallel to the X direction.

[0057] Next, at least one detection signal generated by the magnetic sensor 1 will be described in detail with reference to FIGS. 2 and 3. When there is no input magnetic field component and, as a result, no output magnetic field component, the magnetization direction of each free layer 24 of the first and second MR elements 20A and 20B is parallel to the Y direction. In the first and third resistors R1 and R3, when the input magnetic field component is in the Z direction, the output magnetic field component received by the first MR element 20A is in the X direction, and the output magnetic field component received by the second MR element 20B is in the −X direction. In this case, the magnetization direction of the free layer 24 of the first MR element 20A tilts from a direction parallel to the Y direction toward the X direction, and the magnetization direction of the free layer 24 of the second MR element 20B tilts from a direction parallel to the Y direction toward the −X direction. As a result, the resistance value of each of the first and second MR elements 20A and 20B decreases, and the resistance value of each of the first and third resistor sections R1 and R3 also decreases, compared to when no output magnetic field component is present.

[0058] In the second and fourth resistor units R2 and R4, when the direction of the input magnetic field component is the Z direction, the direction of the output magnetic field component received by the first MR element 20A is the −X direction, and the direction of the output magnetic field component received by the second MR element 20B is the X direction. In this case, the magnetization direction of the free layer 24 of the first MR element 20A tilts from a direction parallel to the Y direction toward the −X direction, and the magnetization direction of the free layer 24 of the second MR element 20B tilts from a direction parallel to the Y direction toward the X direction. As a result, compared to a state in which no output magnetic field component is present, the resistance values of each of the first and second MR elements 20A and 20B increase, and the resistance values of each of the second and fourth resistor units R2 and R4 also increase.

[0059] When the direction of the input magnetic field component is the -Z direction, the direction of the output magnetic field component and the change in the resistance value of each of the first to fourth resistors R1 to R4 are opposite to when the direction of the input magnetic field component is the Z direction.

[0060] The amount of change in the resistance value of each of the first and second MR elements 20A and 20B depends on the strength of the output magnetic field component received by each of the first and second MR elements 20A and 20B. As the strength of the output magnetic field component increases, the resistance value of each of the first and second MR elements 20A and 20B changes in a direction that increases the amount of increase or decreases, respectively. As the strength of the output magnetic field component decreases, the resistance value of each of the first and second MR elements 20A and 20B changes in a direction that decreases the amount of increase or decreases, respectively. The strength of the output magnetic field component depends on the strength of the input magnetic field component.

[0061] As described above, when the direction and intensity of the input magnetic field component change, the resistance values of the first through fourth resistors R1 through R4 change such that the resistance values of the first and third resistors R1 and R3 increase while the resistance values of the second and fourth resistors R2 and R4 decrease, or the resistance values of the first and third resistors R1 and R3 decrease while the resistance values of the second and fourth resistors R2 and R4 increase. This changes the potentials of the first and second output ports E1 and E2 shown in FIGS. 1 through 3 . The magnetic sensor 1 generates at least one detection signal, either two signals corresponding to the potentials of the first and second output ports E1 and E2, or a signal corresponding to the potential difference between the first and second output ports E1 and E2. The at least one detection signal changes depending on the angle between the magnetization direction of the free layer 24 and the magnetization direction of the magnetization fixed layer 22.

[0062] Next, a brief description will be given of other configurations of the magnetic sensor 1 according to this embodiment. Although not shown, the components of the magnetic sensor 1 except for the substrate 10 are stacked on the substrate 10 together with an insulating layer (not shown) that is arranged around the components of the magnetic sensor 1 except for the substrate 10. Furthermore, the power supply port V, the ground port G, and the first and second output ports E1 and E2 are formed so as to be exposed from the insulating layer (not shown).

[0063] Next, a brief description will be given of a method for manufacturing the magnetic sensor 1 according to this embodiment. The method for manufacturing the magnetic sensor 1 includes forming a plurality of first MR elements 20A and a plurality of second MR elements 20B on a substrate 10. 20B and a step of forming wiring 40.

[0064] In the process of forming the first MR elements 20A and the second MR elements 20B, first, a plurality of initial MR elements are formed, which will later become the first MR elements 20A and the second MR elements 20B. Each of the initial MR elements includes at least an initial magnetization fixed layer, which will later become the magnetization fixed layer 22, a free layer 24, and a gap layer 23.

[0065] Next, the magnetization direction of the initial magnetization fixed layer is fixed in the predetermined direction using a laser beam and an external magnetic field in a predetermined direction. For example, for the initial MR elements that will later become the first MR elements 20A, the initial MR elements are irradiated with laser beam while applying an external magnetic field in the first magnetization direction (X direction). When the irradiation of the laser beam is completed, the magnetization direction of the initial magnetization fixed layer is fixed in the first magnetization direction. As a result, the initial magnetization fixed layer becomes the magnetization fixed layer 22, and the initial MR elements become the first MR elements 20A.

[0066] Furthermore, in the other initial MR elements that will later become the second MR elements 20B, the direction of the external magnetic field is set to the second magnetization direction (-X direction), so that the magnetization direction of the initial magnetization pinned layer of each of the other initial MR elements can be fixed to the second magnetization direction. 20B is formed.

[0067] Next, the operation and effect of the magnetic sensor 1 according to this embodiment will be described. The magnetic sensor 1 according to this embodiment includes a soft magnetic body 30 having a first end face 30a and a second end face 30b located on opposite sides of each other, a first MR element 20A arranged near the first end face 30a, a second MR element 20B arranged near the second end face 30b, and a first lead 41 that electrically connects the first MR element 20A and the second MR element 20B. In this embodiment, the first lead 41 includes a portion that overlaps with the soft magnetic body 30 when viewed from the Z direction. As a result, according to this embodiment, the resistance value of the wiring 40 can be reduced compared to when the wiring 40 is formed so as not to overlap with the soft magnetic body 30.

[0068] Fig. 8 is a plan view showing a part of a magnetic sensor of a comparative example including a wiring 140 of the comparative example. Fig. 8 shows a part corresponding to a part of the first resistor portion R1 or a part of the third resistor portion R3 of the present embodiment. The shape of the wiring 140 of the comparative example when viewed from the Z direction is a meander shape.

[0069] The wiring 140 of the comparative example includes a plurality of first portions 140A electrically connecting a plurality of first MR elements 20A arranged in the Y direction, a plurality of second portions 140B electrically connecting a plurality of second MR elements 20B arranged in the Y direction, and a third portion 140C connecting the first portion 140A and the second portion 140B adjacent to each other in the X direction. In Fig. 8, the boundary between the first portion 140A and the third portion 140C and the boundary between the second portion 140B and the third portion 140C are indicated by dotted lines.

[0070] The width (short-side dimension) of each of the multiple first portions 140A is approximately equal to the short-side dimension of the first MR element 20A. The width (short-side dimension) of each of the multiple second portions 140B is approximately equal to the short-side dimension of the second MR element 20B. Therefore, in the magnetic sensor of the comparative example, the resistance of the wiring 140 is relatively high.

[0071] 6, the width (widthwise dimension) of the wiring 40 can be made substantially equal to the lengthwise dimension of each of the first and second MR elements 20A and 20B, i.e., the width of each of the first and second MR elements 20A and 20B. As a result, according to the present embodiment, the resistance value of the wiring 40 can be made smaller than in the comparative example.

[0072] Furthermore, according to the present embodiment, when the occupied areas of the first and second MR elements 20A and 20B in the magnetic sensor 1 are the same, the resistance value of the wiring 40 can be relatively reduced, thereby increasing the sensitivity of the magnetic sensor 1. Furthermore, according to the present embodiment, even if the occupied areas of the first and second MR elements 20A and 20B in the magnetic sensor 1 are reduced, an increase in the resistance value of the wiring 40 can be suppressed. Furthermore, according to the present embodiment, the resistance value of the wiring 40 can be reduced compared to the comparative example, and therefore the occupied areas of the first and second MR elements 20A and 20B can be reduced to miniaturize the magnetic sensor 1 while maintaining the sensitivity of the magnetic sensor 1.

[0073] [Variations] Next, a modified example of the magnetic sensor 1 according to the present embodiment will be described with reference to Fig. 9. Fig. 9 is a side view corresponding to Fig. 5. In this modified example, the first lead 41 is disposed between the soft magnetic body 30 and the first and second MR elements 20A and 20B, and is connected to the upper surface of the first MR element 20A and the upper surface of the second MR element 20B.

[0074] [Second embodiment] Next, a second embodiment of the present invention will be described with reference to Fig. 10. Fig. 10 is a plan view schematically showing wiring and a plurality of element pairs of a magnetic sensor according to this embodiment.

[0075] In this embodiment, the number of soft magnetic structures (soft magnetic bodies 30) is smaller than the number of element pairs. One soft magnetic body 30 is disposed between the first MR elements 20A and the second MR elements 20B that constitute the element pairs aligned in the Y direction.

[0076] Each of the first to fourth resistance portions R1 to R4 includes at least one soft magnetic body 30. When the at least one soft magnetic body 30 is a plurality of soft magnetic bodies 30, the plurality of soft magnetic bodies 30 may be arranged side by side in the X direction in each of the first to fourth resistance portions R1 to R4.

[0077] Other configurations, actions, and effects of this embodiment are the same as those of the first embodiment.

[0078] [Third embodiment] Next, a third embodiment of the present invention will be described with reference to Fig. 11. Fig. 11 is a plan view schematically showing wiring and a plurality of element pairs of a magnetic sensor according to this embodiment.

[0079] In this embodiment, the orientation of the soft magnetic structures (soft magnetic materials 30) and the orientation of the element pairs in each of the first to fourth resistor units R1 to R4 differs from that of the first embodiment. When viewed from the Z direction, the orientation of the soft magnetic structures (soft magnetic materials 30) and the orientation of the element pairs are rotated 90° clockwise from the orientation shown in the first embodiment.

[0080] In this embodiment, the soft magnetic body 30 is configured to receive an input magnetic field containing an input magnetic field component parallel to the Z direction and generate an output magnetic field containing an output magnetic field component parallel to the Y direction. The soft magnetic body 30 has, for example, a rectangular parallelepiped shape that is long in the X direction.

[0081] In the first and third resistance portions R1 and R3, the first end face 30a of the soft magnetic body 30 is located at the end of the soft magnetic body 30 in the -Y direction, and the second end face 30b of the soft magnetic body 30 is located at the end of the soft magnetic body 30 in the -Y direction. Y In the second and fourth resistance portions R2 and R4, the first end face 30a of the soft magnetic body 30 is located at the end of the soft magnetic body 30 in the Y direction, and the second end face 30b of the soft magnetic body 30 is located at the end of the soft magnetic body 30 in the -Y direction.

[0082] Each of the first and second MR elements 20A and 20B has a shape that is elongated in the X direction. In one element pair, the first MR element 20A and the second MR element 20B are aligned in a direction parallel to the Y direction. Although not shown, the first lead 41 extends in the Y direction.

[0083] In this embodiment, the first magnetization direction is the −Y direction, and the second magnetization direction is the Y direction. That is, in this embodiment, the magnetization of the magnetization fixed layer 22 of the first MR element 20A includes a component in the −Y direction, and the magnetization of the magnetization fixed layer 22 of the second MR element 20B includes a component in the Y direction.

[0084] In the first and third resistor units R1 and R3, in each of a plurality of element pairs, the first MR element 20A and the second MR element 20B are aligned in this order in the -Y direction. In the second and fourth resistor units R2 and R4, in each of a plurality of element pairs, the first MR element 20A and the second MR element 20B are aligned in this order in the Y direction.

[0085] The relationship between the direction of the output magnetic field component and the change in the resistance value of each of the first to fourth resistor portions R1 to R4 is the same as in the first embodiment.

[0086] Other configurations, actions, and effects of this embodiment are the same as those of the first embodiment.

[0087] [Fourth embodiment] Next, a fourth embodiment of the present invention will be described with reference to Fig. 12. Fig. 12 is a perspective view showing a magnetic sensor system according to this embodiment.

[0088] The magnetic sensor system 100 includes a magnetic sensor 1 and a magnetic field generating unit that generates a predetermined magnetic field.

[0089] In this embodiment, the magnetic field generating unit is a magnet 2 configured so that a partial magnetic field, which is a part of the magnetic field it generates, is applied to the magnetic sensor 1. This partial magnetic field includes a first magnetic field component Hz parallel to the Z direction and a second magnetic field component Hx parallel to the X direction.

[0090] The magnetization direction of magnet 2 is the X direction, and the direction of the second magnetic field component Hx is the -X direction. The direction of the first magnetic field component Hz becomes the Z direction when moving in the X direction from a given position, and becomes the -Z direction when moving in the -X direction from the given position.

[0091] The magnetic sensor 1 of the magnetic sensor system 100 may be the magnetic sensor 1 according to any one of the first to third embodiments. In this case, the magnetic sensor 1 is configured to detect the first magnetic field component Hz.

[0092] Other configurations, actions, and effects of this embodiment are the same as those of any of the first to third embodiments.

[0093] The present invention is not limited to the above-described embodiments and can be modified in various ways. For example, as long as the requirements of the claims are met, the shape, arrangement, and number of the soft magnetic body 30, the first MR element 20A, the second MR element 20B, the first lead 41, and the second lead 42 are not limited to the examples shown in the embodiments and can be arbitrarily selected.

[0094] Furthermore, the soft magnetic body 30 may be disposed below the first MR element 20A, the second MR element 20B, the first lead 41, and the second lead 42. In this case, the first lead 41 extends above the soft magnetic body 30 to straddle the soft magnetic body 30 and connect the first MR element 20A and the second MR element 20B.

[0095] As described above, the magnetic sensor of the present invention comprises a soft magnetic body having a first end face and a second end face located opposite each other, a first magnetoresistance effect element arranged near the first end face, a second magnetoresistance effect element arranged near the second end face, and a first lead that electrically connects the first magnetoresistance effect element and the second magnetoresistance effect element and includes a portion that overlaps with the soft magnetic body when viewed from a second direction perpendicular to the first direction in which the first magnetoresistance effect element and the second magnetoresistance effect element are aligned.

[0096] In the magnetic sensor of the present invention, each of the first magnetoresistive element and the second magnetoresistive element may include a magnetization fixed layer having magnetization in a predetermined direction and a free layer having magnetization whose direction is changeable in response to an applied magnetic field. The magnetization of the magnetization fixed layer of the first magnetoresistive element may include a component in a first magnetization direction. The magnetization of the magnetization fixed layer of the second magnetoresistive element may include a component in a second magnetization direction opposite to the first magnetization direction.

[0097] In the magnetic sensor of the present invention, each of the first magnetoresistance effect element and the second magnetoresistance effect element may have a shape that is elongated in a third direction that intersects with both the first direction and the second direction.

[0098] In addition, in the magnetic sensor of the present invention, each of the first magnetoresistance effect element and the second magnetoresistance effect element may include a magnetization fixed layer having magnetization in a predetermined direction and a free layer having magnetization whose direction can change depending on an applied magnetic field, and may be configured so that a bias magnetic field is applied to the free layer in a direction intersecting each of the first direction and the second direction.

[0099] In the magnetic sensor of the present invention, each of the first magnetoresistive element, the second magnetoresistive element, and the first lead may have a width that is a dimension in a third direction intersecting each of the first direction and the second direction. The first lead may include a portion whose width is equal to or greater than the width of each of the first magnetoresistive element and the second magnetoresistive element.

[0100] In addition, in the magnetic sensor of the present invention, the soft magnetic material may be a yoke configured to receive an input magnetic field including a component in a direction parallel to the second direction and generate an output magnetic field including a component in a direction parallel to the first direction.

[0101] In addition, in the magnetic sensor of the present invention, the first lead may be positioned between the soft magnetic material and the first and second magnetoresistance effect elements, or in a position where the first and second magnetoresistance effect elements are sandwiched between the first lead and the soft magnetic material.

[0102] Furthermore, the magnetic sensor of the present invention may further include a plurality of soft magnetic structures each including a soft magnetic material, a plurality of element pairs each including a first magnetoresistive element, a second magnetoresistive element, and a first lead, and a plurality of second leads electrically connecting the plurality of element pairs.

[0103] When the magnetic sensor of the present invention includes multiple soft magnetic structures, multiple element pairs, and multiple second leads, the multiple element pairs may include adjacent first and second element pairs. The multiple second leads may include a specific second lead that electrically connects one of the first and second magnetoresistive elements of the first element pair to the second element pair without any intervening magnetoresistive element. The other of the first and second magnetoresistive elements of the first element pair may be electrically connected to the second element pair via one of the first and second magnetoresistive elements of the first element pair. The first and second element pairs may be aligned in a first direction. The specific second lead may electrically connect the second magnetoresistive element of the first element pair to the first magnetoresistive element of the second element pair.

[0104] When the plurality of element pairs includes adjacent first and second element pairs, the first and second element pairs may be aligned in a third direction intersecting the first and second directions. A particular second lead may electrically connect the first magnetoresistive element of the first element pair to the first magnetoresistive element of the second element pair.

[0105] When the plurality of element pairs includes adjacent first and second element pairs, the plurality of soft magnetic structures may include a first soft magnetic material that is a soft magnetic material arranged between the first and second magnetoresistive elements of the first element pair, and a second soft magnetic material that is a soft magnetic material arranged between the first and second magnetoresistive elements of the second element pair. The first and second magnetoresistive elements of the first element pair may be arranged closer to the first soft magnetic material than the second soft magnetic material.

[0106] Furthermore, when the magnetic sensor of the present invention includes multiple soft magnetic structures, multiple element pairs, and multiple second leads, the magnetic sensor may further include a first port, a second port, and a third port. The multiple element pairs may include at least one first element pair arranged in a circuit configuration between the first port and the second port, and at least one second element pair arranged in a circuit configuration between the second port and the third port. Each of the first magnetoresistive element and the second magnetoresistive element may include a magnetization pinned layer having a magnetization in a predetermined direction and a free layer having a magnetization whose direction is changeable in response to an applied magnetic field. The magnetization of the magnetization pinned layer of the first magnetoresistive element may include a component in a first magnetization direction. The magnetization of the magnetization pinned layer of the second magnetoresistive element may include a component in a second magnetization direction opposite to the first magnetization direction. In the first direction, the order in which the first magnetoresistance effect element and the second magnetoresistance effect element of at least one first element pair are arranged may be opposite to the order in which the first magnetoresistance effect element and the second magnetoresistance effect element of at least one second element pair are arranged.

[0107] Furthermore, a method for manufacturing a magnetic sensor according to the present invention includes the steps of forming a first magnetoresistive element and a second magnetoresistive element. Each of the first magnetoresistive element and the second magnetoresistive element includes a magnetization fixed layer having a magnetization in a predetermined direction and a free layer having a magnetization whose direction is changeable in response to an applied magnetic field. The steps of forming the first magnetoresistive element and the second magnetoresistive element each include the steps of forming a plurality of initial magnetoresistive elements, each including an initial magnetization fixed layer that will later become the magnetization fixed layer, and a free layer, and the steps of using laser light and an external magnetic field to fix the magnetization direction of the initial magnetization fixed layer of one of the plurality of initial magnetoresistive elements that will later become the first magnetoresistive element and to fix the magnetization direction of the initial magnetization fixed layer of one of the plurality of initial magnetoresistive elements that will later become the second magnetoresistive element. [Explanation of symbols]

[0108] 1...magnetic sensor, 2...magnet, 10...substrate, 20A...first MR element, 20B...second MR element, 21...antiferromagnetic layer, 22...magnetization fixed layer, 23...gap layer, 24...free layer, 30...soft magnetic material, 30a...first end face, 30b...second end face, 40...wiring, 41...first lead, 42...second lead, 100...magnetic sensor system, R1...first resistor, R2...second resistor, R3...third resistor, R4...fourth resistor.

Claims

1. a soft magnetic body having a first end face and a second end face located opposite each other; a first magnetoresistive element disposed near the first end face; a second magnetoresistive element disposed near the second end face; a first lead that electrically connects the first magnetoresistive element and the second magnetoresistive element and includes a portion that overlaps with the soft magnetic material when viewed from a second direction that is perpendicular to a first direction in which the first magnetoresistive element and the second magnetoresistive element are aligned; a plurality of soft magnetic structures each including the soft magnetic material; a plurality of element pairs each including the first magnetoresistive element, the second magnetoresistive element, and the first lead; a plurality of second leads electrically connecting the plurality of element pairs; wiring, a portion of which is formed by the first leads and the second leads of the plurality of element pairs; Equipped with the wiring includes a plurality of first portions each extending in the first direction and arranged side by side in a third direction intersecting the first direction and the second direction, and a plurality of second portions each connecting two first portions adjacent to each other in the third direction among the plurality of first portions; A magnetic sensor characterized in that the multiple soft magnetic structures are arranged so that multiple soft magnetic structures are lined up in each of the first direction and the third direction, and overlap with the multiple first portions when viewed from the second direction.

2. each of the first magnetoresistive element and the second magnetoresistive element includes a magnetization fixed layer having a magnetization in a predetermined direction and a free layer having a magnetization whose direction is changeable in response to an applied magnetic field; the magnetization of the magnetization fixed layer of the first magnetoresistive element includes a component in a first magnetization direction, 2. The magnetic sensor according to claim 1, wherein the magnetization of the magnetization fixed layer of the second magnetoresistive element includes a component of a second magnetization direction opposite to the first magnetization direction.

3. 2. The magnetic sensor according to claim 1, wherein each of the first magnetoresistive element and the second magnetoresistive element has a shape that is elongated in the third direction.

4. The magnetic sensor according to claim 1, characterized in that each of the first magnetoresistive element and the second magnetoresistive element includes a magnetization fixed layer having a magnetization in a predetermined direction and a free layer having a magnetization whose direction can change depending on an applied magnetic field, and a bias magnetic field is applied to the free layer in a direction intersecting each of the first direction and the second direction.

5. each of the first magnetoresistive element, the second magnetoresistive element, and the first lead has a width that is a dimension in the third direction; 2. The magnetic sensor according to claim 1, wherein the first lead includes a portion where the width of the first lead is equal to or greater than the width of each of the first magnetoresistive element and the second magnetoresistive element.

6. 2. The magnetic sensor according to claim 1, wherein the soft magnetic material is a yoke configured to receive an input magnetic field having a component parallel to the second direction and generate an output magnetic field having a component parallel to the first direction.

7. 2. The magnetic sensor according to claim 1, wherein the first lead is positioned between the soft magnetic material and the first and second magnetoresistance effect elements, or in a position where the first and second magnetoresistance effect elements are sandwiched between the first lead and the soft magnetic material.

8. the plurality of element pairs includes adjacent first and second element pairs; the plurality of second leads include a specific second lead that electrically connects one of the first magnetoresistive element and the second magnetoresistive element of the first element pair to the second element pair without any intervening magnetoresistive element; 2. The magnetic sensor according to claim 1, wherein the other of the first magnetoresistive effect element and the second magnetoresistive effect element of the first element pair is electrically connected to the second element pair via the one of the first magnetoresistive effect element and the second magnetoresistive effect element of the first element pair.

9. 9. The magnetic sensor according to claim 8, wherein the first element pair and the second element pair are aligned in the first direction.

10. 10. The magnetic sensor according to claim 9, wherein the specific second lead electrically connects the second magnetoresistive element of the first element pair and the first magnetoresistive element of the second element pair.

11. A soft magnetic body having a first end face and a second end face located opposite each other; a first magnetoresistive element disposed near the first end face; a second magnetoresistive element disposed near the second end face; a first lead that electrically connects the first magnetoresistive element and the second magnetoresistive element and includes a portion that overlaps with the soft magnetic material when viewed from a second direction that is perpendicular to a first direction in which the first magnetoresistive element and the second magnetoresistive element are aligned; a plurality of soft magnetic structures each including the soft magnetic material; a plurality of element pairs each including the first magnetoresistive element, the second magnetoresistive element, and the first lead; a plurality of second leads electrically connecting the plurality of element pairs; Equipped with the plurality of element pairs includes adjacent first and second element pairs; the plurality of second leads include a specific second lead that electrically connects one of the first magnetoresistive element and the second magnetoresistive element of the first element pair to the second element pair without any intervening magnetoresistive element; the other of the first magnetoresistive element and the second magnetoresistive element of the first element pair is electrically connected to the second element pair via the one of the first magnetoresistive element and the second magnetoresistive element of the first element pair; The magnetic sensor, wherein the first element pair and the second element pair are aligned in a third direction that intersects with each of the first direction and the second direction.

12. 12. The magnetic sensor according to claim 11, wherein the specific second lead electrically connects the first magnetoresistive element of the first element pair and the first magnetoresistive element of the second element pair.

13. the plurality of soft magnetic structures include a first soft magnetic body that is the soft magnetic body arranged between the first magnetoresistive effect element and the second magnetoresistive effect element of the first element pair, and a second soft magnetic body that is the soft magnetic body arranged between the first magnetoresistive effect element and the second magnetoresistive effect element of the second element pair, The magnetic sensor according to claim 8, characterized in that the first magnetoresistive effect element and the second magnetoresistive effect element of the first element pair are positioned closer to the first soft magnetic material than to the second soft magnetic material.

14. A soft magnetic body having a first end face and a second end face located opposite each other; a first magnetoresistive element disposed near the first end face; a second magnetoresistive element disposed near the second end face; a first lead that electrically connects the first magnetoresistive element and the second magnetoresistive element and includes a portion that overlaps with the soft magnetic material when viewed from a second direction that is perpendicular to a first direction in which the first magnetoresistive element and the second magnetoresistive element are aligned; a plurality of soft magnetic structures each including the soft magnetic material; a plurality of element pairs each including the first magnetoresistive element, the second magnetoresistive element, and the first lead; a plurality of second leads electrically connecting the plurality of element pairs; a first port; a second port; and a third port; and Equipped with the plurality of element pairs includes at least one first element pair provided in a circuit configuration between the first port and the second port, and at least one second element pair provided in a circuit configuration between the second port and the third port.

15. each of the first magnetoresistive element and the second magnetoresistive element includes a magnetization fixed layer having a magnetization in a predetermined direction and a free layer having a magnetization whose direction is changeable in response to an applied magnetic field; the magnetization of the magnetization fixed layer of the first magnetoresistive element includes a component in a first magnetization direction, the magnetization of the magnetization fixed layer of the second magnetoresistive element includes a component of a second magnetization direction opposite to the first magnetization direction; 15. The magnetic sensor according to claim 14, wherein the order in which the first magnetoresistive element and the second magnetoresistive element of the at least one first element pair are arranged is opposite to the order in which the first magnetoresistive element and the second magnetoresistive element of the at least one second element pair are arranged in the first direction.

16. 2. A method for manufacturing the magnetic sensor according to claim 1, comprising the steps of: each of the first magnetoresistive element and the second magnetoresistive element includes a magnetization fixed layer having a magnetization in a predetermined direction and a free layer having a magnetization whose direction is changeable in response to an applied magnetic field; the manufacturing method includes forming the first magnetoresistive element and the second magnetoresistive element; The step of forming the first magnetoresistive element and the second magnetoresistive element includes: forming a plurality of initial magnetoresistive elements each including an initial magnetization fixed layer that will later become the magnetization fixed layer and the free layer; a step of using laser light and an external magnetic field to fix the direction of magnetization of the initial magnetization fixed layer of an initial magnetoresistive effect element among the plurality of initial magnetoresistive effect elements that will later become the first magnetoresistive effect element, and to fix the direction of magnetization of the initial magnetization fixed layer of an initial magnetoresistive effect element among the plurality of initial magnetoresistive effect elements that will later become the second magnetoresistive effect element.

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