magnetic sensor

By embedding AC electrical wiring in the substrate and optimizing DC wiring arrangement, the magnetic sensor reduces power consumption and maintains sensitivity, addressing the heat and resistance issues in existing magnetic sensors.

JP7723830B2Active Publication Date: 2025-08-14ALPS ALPINE CO LTD
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Patent Information

Application Number
JP2024505957
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-03-09
Filing Date
2023-02-07
Publication Date
2025-08-14
Estimated Expiration
2043-02-07

AI Technical Summary

Technical Problem

Magnetic sensors with AC electrical wiring generate Joule heat, increasing resistance and power consumption, which reduces sensitivity and detection performance.

Method used

The AC electrical wiring is embedded in the substrate, allowing for efficient heat dissipation and reduced resistivity, while the DC electrical wiring is also embedded or arranged in parallel to reduce power consumption and maintain detection performance.

Benefits of technology

The magnetic sensor achieves high magnetic resolution with reduced power consumption by effectively dissipating heat and minimizing resistance, maintaining sensitivity and detection accuracy.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A magnetic sensor 10 according to the present invention comprises a substrate 13, a magnetic sensing element 11 which is formed on the substrate 13 with an insulating layer 14 interposed therebetween, and which has an output signal characteristic, with respect to a magnetic field having a sensing axis in an X-axis direction along an in-plane direction of the substrate 13, that is an even function, an alternating current electric wire 12AC capable of applying an alternating current magnetic field to the magnetic sensing element 11, and a direct current electric wire 12DC capable of applying a direct current magnetic field to the magnetic sensing element 11, wherein the magnetic sensing element 11, the alternating current electric wire 12AC and the direct current electric wire 12DC are insulated from another, and at least a portion of the alternating current electric wire 12AC is formed by being embedded in the substrate 13, and thus an increase in power consumption due to an increase in a resistance of the alternating current electric wire when an alternating current is supplied is suppressed, and magnetic resolution is high.
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Description

[Technical Field]

[0001] The present invention relates to a magnetic sensor with reduced power consumption that is equipped with AC electrical wiring and DC electrical wiring and that can apply an AC magnetic field to a magnetic detection element with high efficiency. [Background technology]

[0002] In order to enable highly sensitive magnetic field detection, a magnetic sensor has been proposed that includes a magnetic detection element and AC electrical wiring that applies an AC magnetic field to the magnetic detection element. Patent Document 1 describes a magnetic measurement device that includes a magnetic sensor whose output characteristics of output voltage relative to a magnetic field are an even function, and a modulation coil that applies a modulated AC magnetic field to the magnetic sensor, and discloses that AC and DC magnetic fields are generated by passing AC and DC currents through wiring near a GMR element. Patent Document 2 describes a magnetic sensor including a first magnetic layer, a current flowing through a first wiring, and a first electrical resistance of a first sensor element that changes depending on a magnetic field to be detected applied to the first sensor element, and describes supplying an AC current to the first wiring. Patent Document 3 describes a magnetic sensor including wiring that supplies an AC current to a magnetic detection element. The magnetic sensors described in these documents can accurately detect an external magnetic field by modulation with an AC magnetic field. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-3336 [Patent Document 2] Japanese Patent Application Publication No. 2018-155719 [Patent Document 3] Japanese Patent Application Publication No. 2019-207167 DISCLOSURE OF THE INVENTION [Problem to be solved by the invention]

[0004] In a magnetic sensor equipped with a magnetic detection element and AC electrical wiring that generates an AC magnetic field, supplying an AC current that applies an AC magnetic field to the magnetic detection element generates Joule heat in the AC electrical wiring, which increases the resistance and increases the power consumption of the AC electrical wiring. Another problem is that the heat generated by the AC electrical wiring reduces the sensitivity of the magnetic detection element, thereby reducing the detection performance of the magnetic sensor. An object of the present invention is to provide a magnetic sensor with high magnetic resolution in which an increase in power consumption due to an increase in resistance of AC electrical wiring when AC current is supplied is suppressed. [Means for solving the problem]

[0005] The present invention has the following configuration as a means for solving the above-mentioned problems. a magnetic sensor comprising: a substrate; a magnetic sensor element formed on the substrate via an insulating layer, the magnetic sensor element having an output signal characteristic that is an even function with respect to a magnetic field having a sensing axis along an in-plane direction of the substrate; AC electrical wiring capable of applying an AC magnetic field to the magnetic sensor element; and DC electrical wiring capable of applying a DC magnetic field to the magnetic sensor element, the magnetic sensor element, the AC electrical wiring, and the DC electrical wiring being insulated from one another, and at least a portion of the AC electrical wiring being formed so as to be embedded in the substrate.

[0006] By embedding the AC electrical wiring in the substrate, Joule heat generated in the AC electrical wiring can be efficiently dissipated to the substrate, making it less likely that the resistance of the AC electrical wiring will increase. Furthermore, since the AC electrical wiring can have a larger cross-sectional area than when the AC electrical wiring is formed in an insulating film, the resistivity of the AC electrical wiring can be reduced. Furthermore, by embedding the AC electrical wiring in the substrate, the distance between the magnetic sensor element and the AC electrical wiring can be reduced. This allows the magnetic field applied to the magnetic sensor element to be increased without increasing the amount of current flowing through the AC electrical wiring.

[0007] The magnetic sensor may be formed by embedding at least a portion of the DC electrical wiring in the substrate. With this configuration, just as with AC electrical wiring, the effects of efficient heat dissipation, reduced resistivity, and shorter distance can also be achieved for DC electrical wiring, making it possible to reduce the power consumption of both AC electrical wiring and DC electrical wiring.

[0008] The AC electrical wiring may be disposed between the magnetic sensor element and the DC electrical wiring when viewed from a direction perpendicular to the normal direction of the substrate and the direction of the sensing axis of the magnetic sensor element. By arranging the AC electrical wiring in the vicinity of the magnetic detection element, it is possible to reduce the current flowing through the AC electrical wiring to which current is continuously applied, thereby reducing the power consumption of the entire magnetic sensor.

[0009] The DC electrical wiring may be formed in parallel to the AC electrical wiring when viewed from a direction perpendicular to the normal direction of the substrate and the direction of the sensing axis of the magnetic sensing element. By arranging the DC electrical wiring and the AC electrical wiring in parallel, it is possible to manufacture at least a portion of the two types of electrical wiring in the same wiring formation process.

[0010] When the AC electrical wiring and the magnetic detector element are formed in parallel, the AC electrical wiring may be arranged so as to have a portion overlapping with the magnetic detector element when viewed from the normal direction of the substrate. In the parallel arrangement, by arranging the AC electrical wiring closer to the magnetic detection element than the DC electrical wiring, the magnetic field from the AC electrical wiring, which may consume relatively large amounts of power, can be applied to the magnetic detection element most efficiently. Therefore, the current flowing through the AC electrical wiring, which is continuously applied with current, can be reduced. magnetic sensor The overall power consumption can be reduced.

[0011] The DC electrical wiring may be disposed between the magnetic sensor element and the AC electrical wiring when viewed from a direction perpendicular to the normal to the substrate and the direction of the sensing axis of the magnetic sensor element. The above configuration allows the magnetic field from the AC electrical wiring to be applied to the magnetic detection element most efficiently, thereby reducing the current flowing through the DC electrical wiring.

[0012] When viewed from a direction normal to the substrate and perpendicular to the direction of the detection axis of the magnetic detection element, the cross-sectional area of the AC electrical wiring is preferably larger than the cross-sectional area of the DC electrical wiring. With the above configuration, the power consumption of the AC electrical wiring to which current is continuously applied is reduced with priority, thereby reducing the power consumption of the entire magnetic sensor.

[0013] The magnetic sensor may have a plurality of the magnetic detection elements, and may include a bridge circuit formed including the plurality of the magnetic detection elements. By using a bridge circuit, noise that is applied to the entire magnetic detection element can be removed, thereby improving the measurement accuracy of the magnetic sensor.

[0014] The magnetic sensor may have a soft magnetic material provided on the insulating layer farther from the substrate than the magnetic detection element. The soft magnetic material can amplify the magnetic field to be measured, thereby improving the measurement accuracy of the magnetic sensor.

[0015] In the magnetic sensor, the substrate may be a silicon substrate, and the AC electrical wiring may be formed by a damascene process. In the damascene process, a thermal oxide layer is formed on the silicon substrate, ensuring insulation between the AC electrical wiring and the silicon substrate. In addition, the damascene process allows deep trenches to be formed in the silicon substrate, enabling the formation of electrical wiring with large cross-sectional areas. [Effects of the Invention]

[0016] The magnetic sensor of the present invention has at least a portion of the AC electrical wiring embedded in the substrate, thereby suppressing heat generation in the AC electrical wiring when an AC current is supplied, thereby reducing the power consumption of the magnetic sensor without reducing detection performance. Therefore, it is possible to provide a magnetic sensor with high magnetic resolution and good detection performance, while suppressing an increase in power consumption. [Brief explanation of the drawings]

[0017] [Figure 1A] FIG. 1 is a plan view schematically showing a magnetic sensor including a bridge circuit. [Figure 1B] 1B is a plan view schematically showing a bridge circuit constituting the magnetic sensor of FIG. 1A. FIG. [Figure 1C] 1B is a plan view schematically showing electrical wiring for applying an AC magnetic field that constitutes the magnetic sensor of FIG. 1A. FIG. [Figure 1D] 1B is a plan view schematically showing electrical wiring for applying a DC magnetic field that constitutes the magnetic sensor of FIG. 1A. FIG. [Figure 2] FIG. 10 is a cross-sectional view of a magnetic sensor according to a reference example. [Figure 3] 1A and 1B are diagrams illustrating the measurement principle of a magnetic sensor according to the present invention. [Figure 4] 1 is a graph showing the magnetic field strength measured by the magnetic sensor resolved by frequency. [Figure 5] 1 is a graph showing the magnetic field strength measured by the magnetic sensor when a disturbance magnetic field is applied, resolved by frequency. [Figure 6] 1 is a cross-sectional view of a magnetic sensor according to a first embodiment. [Figure 7] FIG. 4 is a cross-sectional view of a magnetic sensor according to a modified example of the first embodiment. [Figure 8] FIG. 10 is a cross-sectional view of a magnetic sensor according to a second embodiment. [Figure 9] FIG. 10 is a cross-sectional view of a magnetic sensor according to a modified example of the second embodiment. [Figure 10A] 5A to 5C are schematic diagrams illustrating a method for manufacturing a magnetic sensor according to the present invention. [Figure 10B] 5A to 5C are schematic diagrams illustrating a method for manufacturing a magnetic sensor according to the present invention. [Figure 10C] 5A to 5C are schematic diagrams illustrating a method for manufacturing a magnetic sensor according to the present invention. [Figure 10D] 5A to 5C are schematic diagrams illustrating a method for manufacturing a magnetic sensor according to the present invention. [Figure 10E] FIG. 10B is a plan view of a magnetic sensor manufactured by the manufacturing method of FIGS. 10A to 10D. [Figure 11A] FIG. 2 is a plan view illustrating the configuration of a soft magnetic material of the magnetic sensor according to the embodiment. [Figure 11B] 2A to 2C are cross-sectional views illustrating the configuration of each part of the magnetic sensor according to the embodiment. [Figure 11C] FIG. 2 is a plan view illustrating the configuration of AC electrical wiring of the magnetic sensor according to the embodiment. [Figure 11D] FIG. 2 is a plan view illustrating the configuration of DC electrical wiring of the magnetic sensor according to the embodiment. BEST MODE FOR CARRYING OUT THE INVENTION

[0018] The following describes embodiments of the present invention with reference to the drawings. The same components are designated by the same reference numerals in the drawings, and the description thereof will be omitted as appropriate. The coordinates shown in the drawings are for reference purposes only.

[0019] First Embodiment FIG. 1A is a plan view schematically showing a magnetic sensor 1 including a bridge circuit 2 formed including a plurality of magnetic detection elements 11. FIG. 1B is a plan view schematically showing the bridge circuit 2 constituting the magnetic sensor 1 of FIG. 1A. FIG. 1C is a plan view schematically showing electrical wiring 12AC for applying an AC magnetic field constituting the magnetic sensors 1, 10 of FIG. 1A. FIG. 1D is a plan view schematically showing electrical wiring 12DC for applying a DC magnetic field constituting the magnetic sensors 1, 10 of FIG. 1A.

[0020] For ease of explanation, the soft magnetic material 15 in the magnetic sensor 10 is omitted in FIGS. 1A and 1B, and each component is simplified and illustrated in FIGS. 1A, 1B, 1C, and 1D. Therefore, the magnetic sensor 10 shown in FIG. 1A differs from the magnetic sensor 10 shown in FIGS. 6 and 10E in the relative positional relationship and size of the components. In FIG. 1A, the electrical wiring 12 is shown in bold to enhance its distinction from the bridge circuit 2. In FIG. 1B, the bridge circuit 2 is shown larger than the magnetic detector elements 11 shown in FIG. 10C to indicate that the bridge circuit 2 is composed of four magnetic detector elements 11. Note that in FIG. 1A, the AC electrical wiring 12AC and the DC electrical wiring 12DC are collectively shown as the electrical wiring 12. However, as shown in FIGS. 1C, 1D, 6, and 10A to 10E, the AC electrical wiring 12AC and the DC electrical wiring 12DC are configured as separate components. Specifically, as shown in FIG. 6, in the magnetic sensor 1 according to this embodiment, the AC electrical wiring 12AC and the DC electrical wiring 12DC are arranged so as to overlap when viewed from above (Z2 side in the Z1-Z2 direction), with the DC electrical wiring 12DC being positioned above the AC electrical wiring 12AC.

[0021] The magnetic sensor 1 includes two half-bridge circuits in which a magnetic detector element 11a and a magnetic detector element 11b are connected in series, and these half-bridge circuits are connected in parallel to a power supply terminal Vdd to form a bridge circuit 2. The magnetic detector elements 11 (magnetic detector element 11a, magnetic detector element 11b) may be giant magnetoresistance (GMR) elements, tunnel magnetoresistance (TMR) elements, or the like. A case in which a GMR element is used as the magnetic detector element 11 will be described below.

[0022] In a GMR element, a pinned magnetic layer, a non-magnetic layer, and a free magnetic layer are stacked in this order on an insulating underlayer, and the surface of the free magnetic layer is covered with a protective layer. The pinned magnetic layer is made of a soft magnetic material such as a CoFe alloy (cobalt-iron alloy), and has a fixed magnetization direction. In FIG. 1B, the pinned magnetization direction P of the pinned magnetic layer is indicated by an arrow. The direction perpendicular to the pinned magnetization direction P (X-axis direction) is the sensitivity axis direction of each magnetic detector element 11. The pinned magnetization directions P of the magnetic detector elements 11 constituting the bridge circuit 2 are the same, and in the examples shown in FIGS. 1A and 1B, both are upward (Y2 direction) in the figure.

[0023] The non-magnetic layer is made of a non-magnetic material such as Cu (copper). The free magnetic layer is made of a soft magnetic material such as NiFe alloy (nickel-iron alloy). The protective layer covering the free magnetic layer is made of Ta (tantalum) or similar. The magnetization direction of the free magnetic layer is aligned in the same direction as the fixed direction P of magnetization of the fixed magnetic layer. A bias magnetic field may be applied to align the magnetization direction of the free magnetic layer.

[0024] When an external magnetic field is applied to the magnetic sensor element 11, the magnetization direction of the free magnetic layer, which is aligned in the same direction as the fixed direction P of the magnetization of the fixed magnetic layer, is tilted toward the X direction. As the angle between the magnetization vector of the free magnetic layer and the fixed direction P of the magnetization increases, the electrical resistance of the magnetic sensor element 11 increases, and as the angle between the magnetization vector of the free magnetic layer and the fixed direction P of the magnetization decreases, the electrical resistance of the magnetic sensor element 11 decreases. Therefore, the magnetic sensor element 11 exhibits an even-function resistance change with respect to a magnetic field in the direction of the sensing axis S (X-axis direction) perpendicular to the fixed direction P of the magnetization of the fixed magnetic layer.

[0025] The magnetic sensor 1 includes electrical wiring 12 that functions as a magnetic coil capable of applying a magnetic field to the magnetic detector element 11. The electrical wiring 12 is made up of AC electrical wiring 12AC and DC electrical wiring 12DC. The AC electrical wiring 12AC can apply an AC magnetic field to the magnetic detector element 11 in the direction of the sensing axis S of the magnetization of the pinned magnetic layer (X-axis direction). The DC electrical wiring 12DC can apply a DC magnetic field to the magnetic detector element 11 in the direction of the sensing axis S of the magnetization of the pinned magnetic layer.

[0026] As shown in FIG. 1C , the AC electrical wiring 12AC includes parallel-connected wires, and the parallel wires are aligned in the same direction as the two half-bridge circuits that make up the full-bridge circuit 2. Each parallel-connected wire branches off in opposite directions along the Y-axis (the Y1 side in the Y1-Y2 direction and the Y2 side in the Y1-Y2 direction) from a branch point with a common wire that supplies AC current to these wires. As shown in FIG. 1A , the branch point is located between the two half-bridge circuits when viewed from above (the Z2 side in the Z1-Z2 direction). Therefore, when viewed from above, currents flow in opposite directions through the AC electrical wiring 12AC that overlaps the magnetic detector element 11a and the AC electrical wiring 12AC that overlaps the magnetic detector element 11b. Therefore, when an AC current flows through the AC electrical wiring 12AC, an AC magnetic field of opposite phase is applied to the magnetic detector elements 11a and 11b that make up the bridge circuit 2. In the figure, solid and dashed arrows indicate the direction of the AC current flowing through the AC electrical wiring 12AC. The solid arrows indicate the direction of the AC magnetic field generated in the AC electrical wiring 12AC by the AC current in the direction indicated by the solid lines. The hollow arrows indicate the direction of the AC magnetic field generated in the AC electrical wiring 12AC by the AC current in the direction indicated by the dashed lines.

[0027] As shown in FIG. 1D , the DC electrical wiring 12DC includes parallel-connected wires, and the parallel wires are aligned along the direction of the two half-bridge circuits that make up the full-bridge circuit 2. Each parallel-connected wire and the wires connecting each other branch off in orthogonal directions along the X-axis and Y-axis from a branch point with a common wire that supplies DC current to these wires. As shown in FIG. 1A , the branch point is located between the magnetic detector elements 11a and 11b that make up each half-bridge circuit when viewed from above (the Z2 side in the Z1-Z2 direction). Therefore, current always flows in the same direction through the DC electrical wiring 12DC, which is arranged to overlap all of the magnetic detector elements 11a and 11b that make up the full-bridge circuit 2 when viewed from above. Therefore, when a DC current flows through the DC electrical wiring 12DC, a DC magnetic field is applied in the same direction to all of the magnetic detector elements 11a and 11b that make up the bridge circuit 2. In the figure, solid and dashed arrows indicate the direction of the DC current flowing through the DC electrical wiring 12DC. The solid arrows indicate the direction of the DC magnetic field generated in the DC electrical wiring 12DC by the DC current in the direction indicated by the solid lines. The hollow arrows indicate the direction of the DC magnetic field generated in the DC electrical wiring 12DC by the DC current in the direction indicated by the dashed lines.

[0028] Magnetic sensor 1 is capable of detecting weak magnetic fields by applying an AC magnetic field to magnetic detection element 11 via AC electrical wiring 12AC. Examples of weak magnetic fields that magnetic sensor 1 can detect include magnetic fields emitted from living organisms measured in medical procedures and weak magnetic fields emitted from various devices. Magnetic sensors with high magnetic resolution are required for measuring brain waves in medical procedures and inspecting various devices, and magnetic sensor 1 is suitable for these applications.

[0029] 2 shows a magnetic sensor 50 of a reference example that includes a magnetic sensor element 11 and AC electrical wiring 12AC. When detecting a magnetic field by applying an AC magnetic field to the magnetic sensor element 11, the basic configuration for detecting a magnetism is the magnetic sensor element 11, which has an even function-type output signal characteristic in response to a magnetic field having a sensing axis S along the in-plane direction of the substrate, and AC electrical wiring 12AC that applies an AC magnetic field in a direction perpendicular to the magnetic sensor element 11. Therefore, the operating principle of the magnetic sensor 10 that constitutes the magnetic sensor 1 will be described below with reference to the magnetic sensor 50 of the reference example.

[0030] As shown in FIG. 2, in the magnetic sensor 50, AC electrical wiring 12AC is provided below the magnetic detection element 11 on the insulating layer 14 on the substrate 13. The substrate 13 is made of, for example, a silicon substrate formed from silicon. By passing an AC current through the AC electrical wiring 12AC, an AC magnetic field is applied to the magnetic detection element 11 in the direction of the detection axis S (X-axis direction) that is perpendicular to the fixed direction P of the magnetization of the fixed magnetic layer (Y-axis direction, see 1B) (see FIG. 1C). The dashed double-headed arrows in FIG. 2 and FIGS. 6 to 9 indicate the AC magnetic field.

[0031] 3 is a diagram illustrating the measurement principle of the magnetic sensor 50. The diagram shows the resistance change of the magnetic detection element 11 of the single-element magnetic sensor 50. 4 is a graph in which the magnetic field intensity measured by the magnetic sensor 50 is resolved by frequency. The graph shown in the figure is obtained by performing a fast Fourier transform (FFT) on the waveform of the resistance change of the magnetic detection element 11.

[0032] When an AC magnetic field (Ha×sin(ωa×t)) having an amplitude Ha and a frequency ωa is applied to the magnetic detector element 11 (specifically, for example, the magnetic detector element 11a) via the AC electrical wiring 12AC while no external magnetic field is applied to the magnetic detector element 11a, assuming that the resistance change region of the magnetic detector element 11a is a quadratic function, the waveform of the resistance change is expressed by the following equation: dR / dH×(Ha×sin(ωa×t)) 2 =dR / dH×Ha 2 ×(1-cos(2ωa×t))

[0033] Therefore, the waveform of the resistance change of the magnetic detector element 11a is output as a wave with twice the frequency (2ωa) of the AC magnetic field applied by the AC electrical wiring 12AC, as shown in the following equation.

number

[0034] When an AC external magnetic field (Hb × sin(ωb × t)) is added to the AC magnetic field, the waveform of the resistance change of the magnetic detector element 11a is expressed by the following equation: As shown in this equation, a signal indicating the resistance change of the magnetic detector element 11a is output as a wave having a component with twice the frequency ωa of the applied AC magnetic field (2ωa), as well as components of (ωa + ωb) and (ωa - ωb).

number

[0035] By filtering the output signal indicating the resistance change of the magnetic detector element 11a, the external magnetic field Hb × sin(ωb × t) can be extracted as a signal with frequencies (ωa + ωb) and (ωa - ωb). In other words, a signal obtained by adding the frequency ωa of the AC magnetic field to the frequency ωb of the external magnetic field is obtained as a signal resolved by frequency. Detecting the external magnetic field as an AC signal can significantly reduce 1 / f noise. In this way, by measuring a high-frequency region with little randomly generated 1 / f noise, the magnetic resolution of the magnetic sensor 50 can be increased.

[0036] 1C, when an AC current is passed through the AC electrical wiring 12AC, an AC magnetic field of opposite phase to that of the magnetic sensor element 11a is applied to the magnetic sensor element 11b shown in FIGS. 1A and 1B. That is, an AC magnetic field expressed as (Ha×sin(-ωa×t)=-Ha×sin(ωa×t)) is applied to the magnetic sensor element 11b. Therefore, the resistance R' of the magnetic sensor element 11b is expressed by the following equation:

number

[0037] In the equation representing the change in resistance R' of magnetic sensor element 11b and the equation representing the change in resistance R of magnetic sensor element 11a, the signs of the terms including (ωa + ωb) and (ωa - ωb) are reversed, but the signs of the terms including 2ωa and 2ωb are not reversed. Therefore, the difference R' - R between the resistance R of magnetic sensor element 11a and the resistance R' of magnetic sensor element 11b is expressed by the following equation.

number

[0038] Therefore, by calculating the difference R'-R, the frequency terms (ωa+ωb) and (ωa-ωb) necessary to extract the external magnetic field Hb×sin(ωb×t) can be extracted, and the unnecessary 2ωa / 2ωb term can be removed. In this way, by applying AC magnetic fields of opposite phases to the magnetic detector elements 11a and 11b of the bridge circuit 2 and using the differential output of the bridge circuit 2 to detect magnetism, the unnecessary 2ωa / 2ωb term can be efficiently removed.

[0039] As described above, in the magnetic sensor 1 according to this embodiment shown in FIGS. 1A to 1D, the AC electrical wiring 12AC is connected in parallel to the magnetic detection element 11a of the bridge circuit 2. Magnetic detector element 11b By applying AC magnetic fields of opposite phases, the terms of frequencies (ωa+ωb) and (ωa-ωb) required to extract the external magnetic field Hb×sin(ωb×t) can be extracted from the resistance R of magnetic sensor element 11a and the resistance R' of magnetic sensor element 11b, thereby improving magnetic detection sensitivity. By improving magnetic detection sensitivity in this way, it becomes possible to use, for example, an amplifier with a high amplification factor.

[0040] FIG. 5 is a graph showing the magnetic field strength measured by the magnetic sensor 50 resolved by frequency when a disturbance magnetic field larger than the amplitude of the detected magnetic field is applied. The measurement principle of the magnetic sensor 50 is as described above, but when actually measuring a magnetic field, a disturbance magnetic field Hi is applied to the magnetic sensor. Therefore, the equation representing the change in the waveform of the resistance change of the magnetic detection element 11 is as follows:

number

[0041] As shown in the equation, in actual measurements, the signal obtained by decomposing the waveform output by frequency contains not only (ωa + ωb) and (ωa - ωb), but also the ωa and ωb components. Therefore, when the disturbance magnetic field H is larger than the amplitude of the detected magnetic field, the ωa signal has a large tail, as shown in FIG. 5. The overlap of the disturbance magnetic field H signal reduces the detection accuracy of the signals with frequencies ωa, (ωa + ωb), and (ωa - ωb). Therefore, the magnetic sensor 50 of the reference example, which includes the magnetic detector element 11 and the AC electrical wiring 12AC, suffers from a problem of a poor S / N ratio of the detected magnetic field when a large disturbance magnetic field H is applied. Therefore, the magnetic sensor 10 of this embodiment applies a DC magnetic field to the magnetic detector element 11 via the DC electrical wiring 12DC shown in FIGS. 1A and 1D to cancel the disturbance magnetic field H.

[0042] 2, in the magnetic sensor 50, the magnetic detector element 11 and the AC electrical wiring 12AC are both provided on the insulating layer 14, making it difficult for Joule heat generated in the AC electrical wiring 12AC to be released to the substrate 13. This poses a problem in that the sensitivity of the magnetic detector element 11 decreases due to heat generated by the AC electrical wiring 12AC.

[0043] FIG. 6 is a cross-sectional view of the magnetic sensor 10 according to this embodiment, and shows a schematic cross-sectional configuration of the XZ plane taken along line AA in FIG. 1A. The magnetic sensor 10 includes a magnetic detection element 11, an AC electrical wiring 12AC, a DC electrical wiring 12DC, and a soft magnetic material 15. The magnetic detection element 11, the AC electrical wiring 12AC, and the DC electrical wiring 12DC are insulated from one another by an insulating layer 14.

[0044] The magnetic sensor element 11 is formed on a substrate 13 via an insulating layer 14 made of an insulating material, and has a sensing axis S along the XY plane of the substrate 13 (see FIG. 1B). The sensing axis S is a direction perpendicular to the fixed direction P of the magnetization of the fixed magnetic layer, which is the X-axis direction. The magnetic sensor element 11 has an output signal characteristic that is an even function with respect to a magnetic field in the X-axis direction.

[0045] By passing AC electricity through the AC electrical wiring 12AC, an AC magnetic field is applied to the magnetic detector element 11 in the direction of the detection axis S of the magnetic detector element 11. By applying an AC magnetic field to the magnetic detector element 11, a weak magnetic field can be detected with high accuracy according to the measurement principle described with reference to FIGS.

[0046] The AC electrical wiring 12AC is formed so that its width in the X-axis direction is narrower than that of the DC electrical wiring 12DC and wider than that of the magnetic detection element 11. This allows a strong AC magnetic field to be generated, and a uniform AC magnetic field to be applied to the magnetic detection element 11.

[0047] An insulating layer 16 is formed between the AC electrical wiring 12AC and the substrate 13. The insulating layer 16 is formed, for example, by thermally oxidizing the surface of the silicon substrate 13 when the AC electrical wiring 12AC is formed by a damascene process.

[0048] The AC electrical wiring 12AC of the magnetic sensor 10 is formed so as to be embedded in the substrate 13. Although the entire AC electrical wiring 12AC is embedded in the substrate 13 in FIG. 6, a configuration in which only a portion of the AC electrical wiring 12AC is embedded in the substrate 13 may be adopted. By embedding at least a portion of the AC electrical wiring 12AC in the substrate 13, heat from the AC electrical wiring 12AC can be efficiently dissipated to the substrate 13, and the AC electrical wiring 12AC can be placed near the magnetic detector element 11. Since the AC electrical wiring 12AC can be formed with a larger cross-sectional area than when the AC electrical wiring 12AC is formed in the insulating layer 14, the resistivity of the AC electrical wiring 12AC can be reduced. Therefore, it is possible to increase the AC magnetic field applied to the magnetic detector element 11 without increasing the amount of AC current flowing through the AC electrical wiring 12AC.

[0049] Furthermore, by embedding the AC electrical wiring 12AC in the substrate 13 and forming the magnetic detection element 11, the DC electrical wiring 12DC, the insulating layer 14, etc. on top of it, each part constituting the magnetic sensor 10 can be formed with higher precision than in the magnetic sensor 50 (see FIG. 2) in which the AC electrical wiring 12AC is provided on the insulating layer 14.

[0050] In addition to the AC electrical wiring 12AC, the magnetic sensor 10 is equipped with a DC electrical wiring 12DC that can apply a DC magnetic field to the magnetic detection element 11. The DC electrical wiring 12DC applies a DC magnetic field that cancels the disturbance magnetic field to the magnetic detection element 11, thereby reducing the deterioration of the S / N ratio of the detected magnetic field due to the influence of the external magnetic field.

[0051] The DC electrical wiring 12DC is formed with a width in the X-axis direction that is wider than the magnetic detector element 11 and the AC electrical wiring 12AC. This increases the cross-sectional area of the DC electrical wiring 12DC, thereby reducing its resistance. By increasing the width of the DC electrical wiring 12DC, the cross-sectional area of the DC electrical wiring 12DC can be increased, and the thickness can be reduced compared to a DC electrical wiring 12DC with a narrower width but the same cross-sectional area. This reduces the distance between the AC electrical wiring 12AC and the magnetic detector element 11, allowing an AC magnetic field to be efficiently applied from the AC electrical wiring 12AC to the magnetic detector element 11. From the perspective of applying a uniform DC magnetic field to the magnetic detector element 11, the width of the DC electrical wiring 12DC in the X-axis direction is preferably about twice that of the magnetic detector element 11 (for example, 1.5 to 2.5 times).

[0052] 1A, in the magnetic sensor 1 having the bridge circuit 2 formed including the plurality of magnetic detector elements 11, the DC electrical wiring 12DC applies a DC magnetic field in one direction to the plurality of magnetic detector elements 11 in order to cancel the disturbance magnetic field. The direction of the DC magnetic field applied by the DC electrical wiring 12DC is the same for the magnetic detector elements 11a and 11b.

[0053] The current flowing through the DC electrical wiring 12DC for applying a DC magnetic field to the magnetic detection element 11 is controlled by passing a DC current that generates a DC magnetic field that cancels out the measured disturbance magnetic field, and feeding back the measured value of the magnetic field strength measured by the magnetic sensor while the DC current is flowing to the DC current. A known method can be used for the feedback control.

[0054] The DC electrical wiring 12DC of the magnetic sensor 10 is arranged between the magnetic detection element 11 and the AC electrical wiring 12AC when viewed from a direction (Y-axis direction) perpendicular to the normal direction (Z-axis direction) of the substrate 13 and the direction of the detection axis S (X-axis direction) of the magnetic detection element 11. By arranging the DC electrical wiring 12DC between the magnetic detection element 11 and the AC electrical wiring 12AC, the cross-sectional area of the AC electrical wiring 12AC can be increased without considering the arrangement of the DC electrical wiring 12DC, and the magnetic sensor 10 can easily enjoy the effects of efficient heat dissipation and reduced resistivity.

[0055] Furthermore, in this arrangement, the distance between the DC electrical wiring 12DC and the magnetic detector element 11 is relatively short, so that it is possible to increase the magnetic field applied to the magnetic detector element 11 without increasing the amount of current flowing through the DC electrical wiring 12DC. This reduction in the distance of the DC electrical wiring 12DC may contribute to improving the responsiveness of the magnetic sensor 10. From the viewpoint of ease of manufacture, it may be preferable that the DC electrical wiring 12DC does not have a portion buried in the substrate 13.

[0056] The cross-sectional area of the AC electrical wiring 12AC of the magnetic sensor 10 is larger than the cross-sectional area of the DC electrical wiring 12DC when viewed from a direction (Y-axis direction) perpendicular to the normal direction (Z-axis direction) of the substrate 13 and the direction of the detection axis S (X-axis direction) of the magnetic detection element 11.

[0057] Because current is continuously applied to the AC electrical wiring 12AC, it may be preferable to reduce the power consumption of the AC electrical wiring 12AC first in terms of reducing overall power consumption. Therefore, if the cross-sectional area of the AC electrical wiring 12AC is made larger than the cross-sectional area of the DC electrical wiring 12DC, the resistivity of the AC electrical wiring 12AC can be made lower than the resistivity of the DC electrical wiring 12DC, and the power consumption of the AC electrical wiring 12AC can be reduced efficiently.

[0058] The magnetic sensor 10 has a soft magnetic material 15 provided on the insulating layer 14, further from the substrate 13 than the magnetic detection element 11. The soft magnetic material 15, which is formed from an MFC (Magnetic Flux Concentrator) or the like, amplifies the magnetic field to be measured, thereby improving the measurement accuracy of the magnetic sensor 10.

[0059] In the magnetic sensor 10, the AC electrical wiring 12AC is embedded in the substrate 13, so the AC electrical wiring 12AC can be formed thick, and the DC electrical wiring 12DC can be formed in a layer above the AC electrical wiring 12AC. This makes it possible to suppress heat generation in the magnetic sensor 10 and reduce power consumption. Furthermore, it is possible to increase the cross-sectional area of the AC electrical wiring 12AC by forming the AC electrical wiring 12AC in a groove provided in the substrate 13. This prevents a decrease in the sensitivity of the magnetic detection element 11 due to heat generation, reduces the power consumption of the magnetic sensor 10, and also reduces the total film thickness.

[0060] FIG. 7 is a cross-sectional view of a magnetic sensor 20 according to a modified example of the magnetic sensor 10 of the first embodiment. The magnetic sensor 20 differs from the magnetic sensor 10 in that the DC electrical wiring 12DC is embedded in the substrate 13. An insulating layer 16 is provided between the DC electrical wiring 12DC and the substrate 13.

[0061] By forming the DC electrical wiring 12DC so that at least a portion thereof is embedded in the substrate 13, and forming the DC electrical wiring 12DC so that it has a portion embedded in the substrate 13, it is possible to obtain the effects of efficient heat dissipation, reduced resistivity, and shorter distance for the DC electrical wiring 12DC as in the case of the AC electrical wiring 12AC. Therefore, it is possible to reduce the power consumption of both the AC electrical wiring 12AC and the DC electrical wiring 12DC.

[0062] The AC electrical wiring 12AC is arranged between the magnetic detector element 11 and the DC electrical wiring 12DC when viewed from a direction (Y-axis direction) perpendicular to the normal direction (Z-axis direction) of the substrate 13 and the direction of the detection axis S (X-axis direction) of the magnetic detector element 11. Since the DC electrical wiring 12DC is configured to be farther away from the magnetic detection element 11, the power consumption of the DC electrical wiring 12DC increases, but the power consumption of the AC electrical wiring 12AC can be reduced. As a result, the power consumption of the magnetic sensor 20 as a whole can be reduced.

[0063] <Second embodiment> FIG. 8 is a cross-sectional view of the magnetic sensor 30 according to this embodiment. As shown in the figure, the magnetic sensor 30 is formed by embedding a DC electrical wiring 12DC in a substrate 13. When viewed from a direction (Y-axis direction) perpendicular to the normal direction (Z-axis direction) of the substrate 13 and the direction of the detection axis S (X-axis direction) of the magnetic detection element 11, the DC electrical wiring 12DC is formed in parallel to the AC electrical wiring 12AC. Note that although the entire DC electrical wiring 12DC is embedded in the substrate 13 in FIG. 8, only a portion of it may be embedded.

[0064] In the magnetic sensor 30, the DC electrical wiring 12DC is arranged on both sides of the AC electrical wiring 12AC in the X-axis direction. The DC electrical wiring 12DC may be provided on only one side of the AC electrical wiring 12AC, but it is preferable to provide one on each side from the viewpoint of uniformly applying a DC magnetic field from the DC electrical wiring 12DC to the magnetic detection element 11. From the same viewpoint, it is more preferable that the two DC electrical wirings 12DC are arranged symmetrically with respect to a center line L1 that passes through the center of the magnetic detection element 11 and is parallel to the Z-axis, when viewed from the Y-axis direction.

[0065] By arranging the DC electrical wiring 12DC and the AC electrical wiring 12AC so that they are parallel when viewed in the in-plane direction of the substrate 13, it becomes possible to manufacture at least a portion of the two types of electrical wiring in the same wiring formation process, thereby improving manufacturing efficiency.

[0066] The AC electrical wiring 12AC is arranged so as to have a portion overlapping with the magnetic detector element 11 when viewed from the normal direction of the substrate 13 (Z-axis direction). In the parallel arrangement, by arranging the AC electrical wiring 12AC closer to the magnetic detection element 11 than the DC electrical wiring 12DC, the magnetic field from the AC electrical wiring 12AC, which may consume relatively large amounts of power, can be applied to the magnetic detection element 11 most efficiently.

[0067] 9 is a cross-sectional view of a magnetic sensor 40 according to a modified example of the magnetic sensor 30 of the present embodiment. The magnetic sensor 40 differs from the magnetic sensor 30 in that the positions of the DC electrical wiring 12DC and the AC electrical wiring 12AC are reversed.

[0068] When viewed from the Y-axis direction, the magnetic sensor 40 has two AC electrical wirings 12AC arranged one on each side of the DC electrical wiring 12DC in the X-axis direction. When viewed from the Y-axis direction, the two AC electrical wirings 12AC are arranged symmetrically with respect to a center line L1 that passes through the center of the magnetic detection element 11 and is parallel to the Z-axis direction. An AC current flows through the two AC electrical wirings 12AC to apply an AC magnetic field of the same phase to the magnetic detection element 11.

[0069] 10A to 10D are schematic diagrams illustrating a method for manufacturing a magnetic sensor according to the present invention, and FIG. 10E is a plan view of the magnetic sensor manufactured by the same manufacturing method. In FIGS. 10A to 10D, the plan view on the left shows the main components formed in each process. The cross-sectional views on the right show the cross sections taken along line AA in FIG. 10E in stages after each component has been formed in each process.

[0070] 10A, AC electrical wiring 12AC is formed by a damascene process on substrate 13 made of a silicon substrate. Grooves 131 corresponding to the shape of AC electrical wiring 12AC are formed in substrate 13, and AC electrical wiring 12AC is formed on substrate 13 with grooves 131 formed in it. A layer for AC electrical wiring 12AC including AC electrical wiring 12AC may be formed on the surface of substrate 13 with grooves 131 formed in it, and portions other than AC electrical wiring 12AC may be scraped off from the surface to form AC electrical wiring 12AC.

[0071] The insulation resistance of the AC electrical wiring 12AC is improved by thermally oxidizing the surface of the substrate 13 to form an insulating layer 16 before depositing layers for the AC electrical wiring 12AC. The damascene process is also suitable for forming deep grooves 131 in the substrate 13 and for forming AC electrical wiring 12AC with a large cross-sectional area.

[0072] 10A to 10E, only the AC electrical wiring 12AC is formed by the damascene process. However, in the magnetic sensors 20, 30, and 40, members other than the AC electrical wiring 12AC are also formed by the damascene process. In the magnetic sensor 20 (see FIG. 7), the AC electrical wiring 12AC and the DC electrical wiring 12DC are formed by a damascene process. In the magnetic sensors 30 and 40 (see FIGS. 8 and 9), the AC electrical wiring 12AC and the DC electrical wiring 12DC are formed by a damascene process. The AC electrical wiring 12AC and the DC electrical wiring 12DC are arranged in parallel, so that at least a portion of them can be formed simultaneously.

[0073] Next, the insulating layer 14 and DC electrical wiring 12DC shown in Fig. 10B, the insulating layer 14 and magnetic detector element 11 shown in Fig. 10C, and the insulating layer 14 and soft magnetic material 15 shown in Fig. 10D are sequentially formed. In the steps shown in Figs. 10B to 10D, each component can be formed by a sputtering process or the like. Through these steps, the magnetic sensor 1 including the magnetic sensor 10 shown in Fig. 10E can be manufactured. [Example]

[0074] In the magnetic sensor 1 having the bridge circuit 2 shown in Figures 1A to 1D, the magnitude of the AC current (drive current) in the AC electrical wiring 12AC and the DC current (cancellation current) in the DC electrical wiring 12DC required to generate the magnetic field Hs and magnetic field Hi' applied to the magnetic detection element 11 was calculated.

[0075] 11A to 11D show the configuration of the magnetic sensor for which a simulation was performed in the example, where FIG. 11A is a plan view showing the size of soft magnetic material 15, FIG. 11B is a cross-sectional view showing the size and arrangement of each part, FIG. 11C is a plan view showing the shape and size of AC electrical wiring 12AC, and FIG. 11D is a plan view showing the shape and size of DC electrical wiring 12DC.

[0076] Simulation calculations were performed on the magnetic detection element 11, AC electrical wiring 12AC, DC electrical wiring 12DC, and soft magnetic body 15 with the sizes and arrangements shown in FIGS. 11A to 11D. In Examples 1 to 6, the width WAC and thickness (film thickness) TAC of the AC electrical wiring 12AC, and the width WDC and thickness (film thickness) TDC of the DC electrical wiring 12DC were set to the sizes shown in Tables 1 and 2. Except for the different configurations shown in Table 1, all Examples were the same.

[0077] In the simulation calculation, the resistivity of the AC electrical wiring 12AC and the DC electrical wiring 12DC was set to 0.0345 μΩ / m. For example, when the AC electrical wiring 12AC has a width of 30 μm and a thickness of 0.23 μm, the resistance value is as follows: ((1300+1600+1200)×2 +(2170+4140) / 2) / 30 / 0.23×0.0345≒57Ω Furthermore, when the DC electrical wiring 12DC has a width of 50 μm and a thickness of 0.23 μm, the resistance value is as follows: (215 + 850 + 1600 + 2785 + 2450 + (2570 + 4140) / 2) / 50 / 0.23 × 0.0345 ≒ 34 Ω

[0078] In Example 1, the DC electrical wiring 12DC was arranged closer to the magnetic detector element 11 than the AC electrical wiring 12AC, and in Examples 2 to 4, the AC electrical wiring 12AC was arranged closer to the magnetic detector element 11 than the DC electrical wiring 12DC. In Example 5, one DC electrical wiring 12DC was arranged on each side of the AC electrical wiring 12AC in the X-axis direction. The distance in the Z-axis direction between the AC electrical wiring 12AC and the DC electrical wiring 12DC and the magnetic detector element 11 was 0.20 μm. The distance in the X-axis direction between the AC electrical wiring 12AC and the DC electrical wiring 12DC on both sides of it was 0.30 μm. In Example 6, one AC electrical wiring 12AC was arranged on each side of the DC electrical wiring 12DC in the X-axis direction. The distance in the Z-axis direction between the AC electrical wiring 12AC and the DC electrical wiring 12DC and the magnetic detector element 11 was 0.2 μm. The distance in the X-axis direction between the DC electrical wiring 12DC and the AC electrical wirings 12AC on both sides of it was 0.30 μm.

[0079] Examples 1 to 6 magnetic sensor The above values were calculated by simulation. Table 1 shows the AC current and power consumption of the AC electrical wiring 12AC, and Table 2 shows the DC current and power consumption of the DC electrical wiring 12DC. [Table 1]

[0080] [Table 2]

[0081] From the results shown in Tables 1 and 2, it can be said that power consumption can be reduced by increasing the cross-sectional area of both AC electrical wiring 12AC and DC electrical wiring 12DC. Therefore, burying at least a portion of AC electrical wiring 12AC in substrate 13 to increase the cross-sectional area can be said to be effective in reducing the power consumption of magnetic sensor 1. [Industrial Applicability]

[0082] INDUSTRIAL APPLICABILITY The present invention is useful as a magnetic sensor with high magnetic resolution that can detect weak magnetic fields with high accuracy and is used in the medical field and for inspecting various devices. [Explanation of symbols]

[0083] 1: Magnetic sensor 2: Bridge circuit 10: Magnetic sensor 11: Magnetic detection element 11a: Magnetic detection element 11b: Magnetic detection element 12: Electrical wiring 12AC: Alternating current electrical wiring 12DC: Direct current electrical wiring 13: Substrate (silicon substrate) 14: Insulating layer 15: Soft magnetic material 16: Insulating layer 20: Magnetic sensor 30: Magnetic sensor 40: Magnetic sensor 50: Magnetic sensor 131: Groove Ha: amplitude Hi: Disturbing magnetic field Hi': magnetic field Hs: magnetic field L1: Center line P: Fixed direction S: Detection axis TAC: Film thickness TDC: Film thickness Vdd: Power supply terminal ωa: frequency ωb: frequency R: resistance R' :Resistance WAC: Width WDC: Width

Claims

1. A silicon substrate; a magnetic sensing element formed on the silicon substrate via a first insulating layer, the magnetic sensing element having an output signal characteristic that is an even function relative to a magnetic field having a sensing axis aligned in an in-plane direction of the silicon substrate; AC electrical wiring capable of applying an AC magnetic field to the magnetic detection element; a DC electrical wiring capable of applying a DC magnetic field to the magnetic detection element; the magnetic detection element, the AC electrical wiring, and the DC electrical wiring are insulated from one another; The magnetic sensor is characterized in that the AC electrical wiring is embedded in the silicon substrate via a second insulating layer formed by thermally oxidizing the surface of the silicon substrate so that at least the entire side surface and the surface facing the silicon substrate are located within the silicon substrate.

2. the DC electrical wiring is formed by being embedded in the silicon substrate via a third insulating layer formed by thermally oxidizing the surface of the silicon substrate so that at least the entire side surface and the surface facing the silicon substrate are located within the silicon substrate; The magnetic sensor according to claim 1 .

3. the DC electrical wiring is disposed between the magnetic sensor element and the AC electrical wiring when viewed from a direction perpendicular to the normal direction of the silicon substrate and the direction of the sensing axis of the magnetic sensor element. The magnetic sensor according to claim 1 .

4. the AC electrical wiring is disposed between the magnetic sensor element and the DC electrical wiring when viewed from a direction perpendicular to the normal direction of the silicon substrate and the direction of the sensing axis of the magnetic sensor element. The magnetic sensor according to claim 2 .

5. the DC electrical wiring is formed in parallel to the AC electrical wiring when viewed from a direction perpendicular to the normal direction of the silicon substrate and the direction of the detection axis of the magnetic detection element. The magnetic sensor according to claim 2 .

6. the AC electrical wiring is arranged so as to have a portion overlapping with the magnetic detection element when viewed from a normal direction of the silicon substrate. The magnetic sensor according to claim 5 .

7. a cross-sectional area of the AC electrical wiring is larger than a cross-sectional area of the DC electrical wiring when viewed from a direction perpendicular to a normal direction of the silicon substrate and a direction perpendicular to a direction of a detection axis of the magnetic detection element; The magnetic sensor according to claim 1 .

8. The magnetic sensor includes a plurality of the magnetic detector elements, and a bridge circuit formed including the plurality of the magnetic detector elements. The magnetic sensor according to claim 1 .

9. a soft magnetic material provided on the first insulating layer further from the silicon substrate than the magnetic detection element; The magnetic sensor according to claim 1 .

10. The AC electrical wiring is formed by a damascene process. The magnetic sensor according to claim 1 .

Citation Information

Patent Citations

  • Inductor and manufacture thereof

    JP2001036017A

  • Pickup coil used for magnetic sensor

    JP2001194181A

  • Magnetic detector, and substance determination device

    JP2006030004A

  • Eddy current probe

    JP2006106013A

  • Magnetic sensor

    JP2006267120A