Magnetic head and magnetic recording device

JP2024060942A5Active Publication Date: 2025-07-17KK TOSHIBA +1
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Patent Information

Application Number
JP2022168539
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2022-10-20
Publication Date
2025-07-17
Estimated Expiration
2042-10-20

AI Technical Summary

Technical Problem

Existing magnetic heads and recording devices face challenges in improving their characteristics, particularly in managing temperature differences between magnetic poles that affect power consumption and thermal stability, leading to potential thermal deterioration and reduced reliability.

Method used

The magnetic head design includes a conductive part insulated from magnetic poles, with terminals connected to these poles, allowing for controlled current flow to manage temperature differences and reduce power consumption, enhancing thermal stability and recording efficiency through thermoelectric effects.

Benefits of technology

This design achieves stable and efficient recording operations with reduced power consumption, improved thermal stability, and higher recording density by leveraging thermoelectric effects to manage temperature differences between magnetic poles.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a magnetic head and a magnetic recording device capable of improving the characteristics.SOLUTION: A magnetic head 110 includes a first magnetic pole 31, a second magnetic pole 32, a conductive portion 30c, an element portion 20, a first terminal T1, a second terminal T2, a third terminal T3, and a fourth terminal T4. The conductive portion 30c is electrically insulated from the first magnetic pole 31 and the second magnetic pole 32. The first terminal T1 and the second terminal T2 are electrically connected to the conductive portion 30c. The element portion 20 is provided between the first magnetic pole 31 and the second magnetic pole 32, is electrically connected to the first magnetic pole 31 and the second magnetic pole 32, and has conductivity. The third terminal T3 is electrically connected to the first magnetic pole 31. The fourth terminal T4 is electrically connected to the second magnetic pole 32. The first magnetic pole temperature of the first magnetic pole 31 in a first state where a first current i1 is supplied between the first terminal T1 and the second terminal T2 is higher than the second magnetic pole temperature of the second magnetic pole 32 in the first state.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present invention relates to a magnetic head and a magnetic recording device. [Background technology]

[0002] 2. Description of the Related Art Information is recorded on a magnetic recording medium such as a hard disk drive (HDD) by using a magnetic head. Improvements in the characteristics of magnetic heads are desired. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] U.S. Patent No. 9,111,7474 Summary of the Invention [Problem to be solved by the invention]

[0004] The embodiments of the present invention provide a magnetic head and a magnetic recording device capable of improving characteristics. [Means for solving the problem]

[0005] According to an embodiment, the magnetic head includes a first magnetic pole, a second magnetic pole, a conductive portion, an element portion, a first terminal, a second terminal, a third terminal, and a fourth terminal. The conductive portion is electrically insulated from the first magnetic pole and the second magnetic pole. The first terminal and the second terminal are electrically connected to the conductive portion. The element portion is provided between the first magnetic pole and the second magnetic pole, is electrically connected to the first magnetic pole and the second magnetic pole, and is conductive. The third terminal is electrically connected to the first magnetic pole. The fourth terminal is electrically connected to the second magnetic pole. A first magnetic pole temperature of the first magnetic pole in a first state in which a first current is supplied between the first terminal and the second terminal is higher than a second magnetic pole temperature of the second magnetic pole in the first state. [Brief description of the drawings]

[0006] [Figure 1] FIG. 1 is a schematic cross-sectional view illustrating the magnetic head according to the first embodiment. [Diagram 2] FIG. 2 is a schematic plan view illustrating the magnetic head according to the first embodiment. [Diagram 3] FIG. 3 is a schematic plan view illustrating the magnetic head according to the first embodiment. [Figure 4] FIG. 4 is a schematic plan view illustrating the magnetic head according to the first embodiment. [Diagram 5] 5(a) to 5(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. [Figure 6] 6(a) to 6(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. [Figure 7] 7(a) to 7(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. [Figure 8] 8(a) to 8(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. [Figure 9] 9(a) to 9(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. [Figure 10] 10A to 10E are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. [Figure 11] 11A to 11E are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. [Figure 12] 12A to 12E are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. [Figure 13] FIG. 13 is a schematic cross-sectional view illustrating the magnetic head according to the first embodiment. [Figure 14] FIG. 14 is a schematic cross-sectional view illustrating the magnetic head according to the first embodiment. [Figure 15] FIG. 15 is a schematic perspective view illustrating the magnetic recording device according to the second embodiment. [Figure 16]FIG. 16 is a schematic perspective view illustrating a part of the magnetic recording device according to the embodiment. [Figure 17] FIG. 17 is a schematic perspective view illustrating the magnetic recording device according to the second embodiment. [Figure 18] 18A and 18B are schematic perspective views illustrating a part of the magnetic recording device according to the second embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0007] (First embodiment) FIG. 1 is a schematic cross-sectional view illustrating the magnetic head according to the first embodiment. FIG. 2 is a schematic plan view illustrating the magnetic head according to the first embodiment. Fig. 2 is a plan view seen from the arrow AR1 in Fig. 1. Fig. 1 is a cross-sectional view taken along the line A1-A2 in Fig. 2.

[0008] The magnetic head 110 according to the embodiment is included in a magnetic recording device 210. As shown in Fig. 1, the magnetic recording device 210 may include, for example, the magnetic head 110, a magnetic recording medium 80, and a control unit 60C. A recording operation is performed in the magnetic head 110. In the recording operation, information is recorded on the magnetic recording medium 80 using the magnetic head 110. A reproducing operation may be performed in the magnetic head 110.

[0009] The magnetic head 110 includes a first magnetic pole 31, a second magnetic pole 32, a conductive portion 30c, and an element portion 20. The magnetic head 110 may include a first terminal T1, a second terminal T2, a third terminal T3, and a fourth terminal T4.

[0010] The second pole 32 may include, for example, a first region 32a. The second pole 32 may include a second region 32b, and so on.

[0011] For example, the first magnetic pole 31 and the second magnetic pole 32 form a magnetic circuit. The first magnetic pole 31 is, for example, a main magnetic pole. The first region 32a of the second magnetic pole 32 is, for example, a trailing shield. The second region 32b is, for example, a leading shield.

[0012] As shown in FIG. 1, the direction from the magnetic recording medium 80 to the magnetic head 110 is the Z-axis direction. One direction perpendicular to the Z-axis direction is the X-axis direction. A direction perpendicular to the Z-axis direction and the X-axis direction is the Y-axis direction. The Z-axis direction corresponds to the height direction, for example. The X-axis direction corresponds to the down-track direction, for example. The Y-axis direction corresponds to the cross-track direction, for example. The magnetic recording medium 80 and the magnetic head 110 move relatively along the down-track direction. A recording magnetic field generated by the magnetic head 110 is applied to a desired position on the magnetic recording medium 80. The magnetization of the desired position on the magnetic recording medium 80 is controlled to a direction according to the recording magnetic field. As a result, information is recorded on the magnetic recording medium 80.

[0013] 1, the first magnetic pole 31 includes a first magnetic pole surface 31f. The first magnetic pole surface 31f faces, for example, a magnetic recording medium 80. The first magnetic pole surface 31f is, for example, an ABS (Air Bearing Surface). The first magnetic pole surface 31f is, for example, substantially aligned along the XY plane.

[0014] A first direction D1 from the first magnetic pole 31 to the first region 32a is along the X-axis direction. As shown in Fig. 1, the first magnetic pole 31 includes a surface facing the first region 32a. The first region 32a includes a surface facing the first magnetic pole 31. These surfaces may be inclined with respect to the Z-axis direction.

[0015] The conductive portion 30c is electrically insulated from the first magnetic pole 31 and the second magnetic pole 32. For example, an insulating member 30i is provided between the first magnetic pole 31 and the conductive portion 30c, and between the second magnetic pole 32 and the conductive portion 30c. In one example, the conductive portion 30c may be a write coil.

[0016] The first terminal T1 and the second terminal T2 are electrically connected to the conductive portion 30c. For example, the first terminal T1 is electrically connected to a part (e.g., one end) of the conductive portion 30c. The second terminal T2 is electrically connected to another part (e.g., the other end) of the conductive portion 30c. A first current i1 can be supplied between the first terminal T1 and the second terminal T2.

[0017] When a recording coil is used as the conductive portion 30c, the first current i1 may be a recording current. In the embodiment, the conductive portion 30c may be provided separately from the recording coil. Below, an example in which a recording coil is used as the conductive portion 30c will be described.

[0018] For example, a recording current corresponding to information to be recorded is supplied to the recording coil. The recording current generates a magnetic field (recording magnetic field) from the first magnetic pole 31. Information is recorded on the magnetic recording medium 80 by the recording magnetic field.

[0019] As shown in Fig. 2, the element unit 20 is conductive. As shown in Fig. 1 and Fig. 2, the element unit 20 is provided between the first magnetic pole 31 and the second magnetic pole 32. The element unit 20 is electrically connected to the first magnetic pole 31 and the second magnetic pole 32.

[0020] For example, the element unit 20 includes a first region element 20a. The first region element 20a is conductive. The first region element 20a is provided between the first magnetic pole 31 and the first region 32a. The first region element 20a is electrically connected to the first magnetic pole 31 and the first region 32a.

[0021] 1, the third terminal T3 is electrically connected to the first magnetic pole 31. The fourth terminal T4 is electrically connected to the second magnetic pole 32. For example, the third terminal T3 is electrically connected to the first magnetic pole 31 by a first wiring W1. The fourth terminal T4 is electrically connected to the second magnetic pole 32 by a second wiring W2.

[0022] In the embodiment, a first state may be provided. In the first state, a first current i1 is supplied between the first terminal T1 and the second terminal T2. The temperature of the first magnetic pole 31 in the first state (first magnetic pole temperature) is higher than the temperature of the second magnetic pole 32 in the first state (second magnetic pole temperature). For example, the temperature of the first magnetic pole 31 in the first state (first magnetic pole temperature) is higher than the temperature of the first region 32a in the first state.

[0023] For example, the temperature of the first magnetic pole 31 rises due to Joule heat caused by the first current i1 supplied to the conductive portion 30c. As a result, the temperature of the first magnetic pole 31 in the first state becomes higher than the temperature of the second magnetic pole 32 (for example, the first region 32a) in the first state. The temperature difference causes, for example, a thermoelectric effect. As a result, for example, a potential difference occurs between the first magnetic pole 31 and the second magnetic pole 32 (the first region 32a). By utilizing the potential difference based on the temperature difference, for example, power consumption can be suppressed. For example, a stable element portion 20 can be easily obtained.

[0024] As described later, an element current i2 is supplied to the element unit 20 (for example, the first region element 20a). This causes a magnetic field to be generated from the element unit 20. This magnetic field appropriately controls, for example, at least one of the direction and the magnitude of the recording magnetic field generated from the first magnetic pole 31. This allows for efficient recording operations.

[0025] Alternatively, when an element current i2 is supplied to the element unit 20, an alternating magnetic field is generated from the element unit 20. The alternating magnetic field is, for example, a high-frequency magnetic field. When the alternating magnetic field is applied to the magnetic recording medium 80, recording on the magnetic recording medium 80 is assisted. For example, microwave assisted magnetic recording (MAMR) can be implemented.

[0026] In the embodiment, as described above, a temperature difference occurs due to the first current i1 supplied to the conductive portion 30c. By utilizing the potential difference based on the temperature difference, the voltage of the element current i2 supplied from the outside can be lowered. This makes it possible to suppress the power supplied to the element portion 20. For example, thermal deterioration of the element portion 20 can be suppressed. For example, stable characteristics can be easily obtained in the element portion 20. For example, an element portion 20 with a long life can be obtained. For example, the element current i2 can be increased while maintaining high reliability. For example, a high recording density can be obtained. According to the embodiment, for example, a magnetic head capable of improving characteristics can be obtained.

[0027] When the temperature of the first magnetic pole 31 is higher than the temperature of the second magnetic pole 32, the potential of the first magnetic pole 31 is likely to be higher than the potential of the second magnetic pole 32. This is considered to be based on the thermoelectric effect in the element portion 20, the first interface between the element portion 20 and the first magnetic pole 31, and the second interface between the element portion 20 and the second magnetic pole 32 (e.g., the first region 32a). For example, the sum of the Seebeck coefficient in the element portion 20, the Seebeck coefficient at the first interface, and the Seebeck coefficient at the second interface may be positive.

[0028] In the embodiment, the above-mentioned temperature difference is obtained in a first state in which a first current i1 is supplied between the first terminal T1 and the second terminal T2. In this first state, a current (element current i2) may not be supplied between the third terminal T3 and the fourth terminal T4. In the first state in which the element current i2 does not flow through the element unit 20, a temperature difference may be generated.

[0029] As described above, the magnetic head 110 performs a recording operation (first operation). In the first operation, a first current i1 (e.g., a recording current) is supplied between the first terminal T1 and the second terminal T2. In the recording operation (first operation), an element current i2 is supplied between the third terminal T3 and the fourth terminal T4. This allows at least one of the direction and magnitude of the recording magnetic field to be appropriately controlled. Alternatively, MAMR is performed.

[0030] The direction of the element current i2 is, for example, from the fourth terminal T4 to the third terminal T3. The element current i2 flows through the element unit 20, for example, from the second magnetic pole 32 to the first magnetic pole 31 (see FIG. 2). The electron current je flows through the element unit 20, for example, from the first magnetic pole 31 to the second magnetic pole 32 (see FIG. 2). For example, the element current i2 flows through the first region element 20a, for example, from the first region 32a to the first magnetic pole 31. The electron current je flows through the first region element 20a, for example, from the first magnetic pole 31 to the first region 32a.

[0031] In a first operation (e.g., a recording operation), a magnetic field (recording magnetic field) corresponding to the first current i1 is generated from the first magnetic pole 31. The direction of the magnetic field generated from the first magnetic pole 31 changes according to the direction of the first current i1. In the first operation, information corresponding to the direction of the first current i1 is recorded on the magnetic recording medium 80.

[0032] When the element current i2 is supplied, for example, the potential of the second magnetic pole 32 is higher than the potential of the first magnetic pole 31. In a state in which the temperature of the first magnetic pole 31 is higher than the temperature of the second magnetic pole 33, the potential of the first magnetic pole 31 is likely to be higher than the potential of the second magnetic pole 32 due to the temperature difference. This makes it possible to reduce the absolute value of the difference between the potential of the second magnetic pole 32 and the potential of the first magnetic pole 31 when the element current i2 flows. For example, the power supplied to the element unit 20 can be suppressed.

[0033] In the first operation (e.g., a recording operation), for example, the element current i2 flows through the first magnetic pole 31 and the second magnetic pole 32, thereby promoting a change in the recording magnetic field according to the first current i1. For example, the variation in the change in the recording magnetic field when the first current i1 is changed is suppressed. For example, the variation in the difference between the time when the polarity of the first current i1 changes and the time when the polarity of the recording magnetic field changes is suppressed. For example, a stable first operation can be performed. For example, high write capability can be obtained. For example, high recording density can be obtained.

[0034] 1, a first circuit 61 and a second circuit 62 may be provided. The first circuit 61 can supply a first current i1 between a first terminal T1 and a second terminal T2. The second circuit 62 can supply an element current i2 to a third terminal T3 and a fourth terminal T4. The first circuit 61 and the second circuit 62 are included in the control unit 60C. The first circuit 61 and the second circuit 62 may be included in the magnetic recording device 210.

[0035] As shown in FIG. 1, the first magnetic pole 31 includes a first magnetic pole face 31f. The first magnetic pole face 31f faces the magnetic recording medium 80. The second magnetic pole 32 includes a second magnetic pole face 32f. The second magnetic pole face 32f faces the magnetic recording medium 80. As shown in FIG. 2, the first magnetic pole face 31f is smaller than the second magnetic pole face 32f. For example, the volume of the first magnetic pole 31 is smaller than the volume of the second magnetic pole 32. The temperature of the first magnetic pole 31 is likely to rise. For example, a potential difference based on a temperature difference is effectively obtained.

[0036] As shown in Fig. 2, the first region 32a includes a first region surface 32af. The first region surface 32af faces the magnetic recording medium 80. As shown in Fig. 2, the first magnetic pole surface 31f may be smaller than the first region surface 32af.

[0037] 2, the second magnetic pole 32 may further include a third region 32c. A second direction D2 from the third region 32c to the first magnetic pole 31 intersects with the first direction D1 from the first magnetic pole 31 to the first region 32a. The second direction D2 is, for example, the Y-axis direction. The Z-axis direction is aligned with, for example, the third direction D3. The third direction D3 intersects with a plane including the first direction D1 and the second direction D2.

[0038] 2, the second magnetic pole 32 may further include a fourth region 32d. The direction from the third region 32c to the fourth region 32d is along the second direction D2. The first magnetic pole 31 is between the third region 32c and the fourth region 32d in the second direction D2. The third region 32c and the fourth region 32d are, for example, side shields. By providing the third region 32c and the fourth region 32d, the recording magnetic field generated from the first magnetic pole 31 is controlled and efficiently applied to the magnetic recording medium 80.

[0039] Hereinafter, some examples of magnetic heads according to the embodiments will be described. In the following, the description of the same configuration as the magnetic head 110 described above will be omitted.

[0040] FIG. 3 is a schematic plan view illustrating the magnetic head according to the first embodiment. As shown in FIG. 3, in the magnetic head 110a according to the embodiment, the element portion 20 includes the second region element 20b. As already described, the second magnetic pole 32 further includes the second region 32b. The first magnetic pole 31 is between the second region 32b and the first region 32a. The second region element 20b is conductive. The second region element 20b is provided between the second region 32b and the first magnetic pole 31.

[0041] In the magnetic head 110a, in a first operation (eg, a recording operation), an element current i2 flows from the second region 32b to the first magnetic pole 31 in the second region element 20b.

[0042] In the magnetic head 110a, the first magnetic pole surface 31f is smaller than the second magnetic pole surface 32f. As shown in Fig. 3, the second region 32b may include a second region surface 32bf. The second region surface 32bf faces the magnetic recording medium 80. The first magnetic pole surface 31f may be smaller than the second region surface 32bf.

[0043] FIG. 4 is a schematic plan view illustrating the magnetic head according to the first embodiment. As shown in FIG. 4, the magnetic head 110b according to the embodiment includes a third region element 20c. As already described, the second magnetic pole 32 includes a third region 32c. The direction from the third region 32c to the first magnetic pole 31 is along the second direction D2. The third region element 20c is conductive. The third region element 20c is provided between the third region 32c and the first magnetic pole 31.

[0044] The magnetic head 110b may include a fourth region element 20d. As already described, the second magnetic pole 32 includes the fourth region 32d. The direction from the third region 32c to the fourth region 32d is along the second direction D2. The first magnetic pole 31 is between the third region 32c and the fourth region 32d. The fourth region element 20d is conductive. The fourth region element 20d is provided between the first magnetic pole 31 and the fourth region 32d.

[0045] In the magnetic head 110b, in a first operation (e.g., a recording operation), an element current i2 flows through the third region element 20c in a direction from the third region 32c to the first magnetic pole 31. In a first operation (e.g., a recording operation), an element current i2 flows through the fourth region element 20d in a direction from the fourth region 32d to the first magnetic pole 31.

[0046] In the magnetic head 110b, the first magnetic pole face 31f is smaller than the second magnetic pole face 32f. As shown in FIG. 4, the third region 32c may include a third region surface 32cf. The third region surface 32cf faces the magnetic recording medium 80. The first magnetic pole face 31f may be smaller than the third region surface 32cf. As shown in FIG. 4, the fourth region 32d may include a fourth region surface 32df. The fourth region surface 32df faces the magnetic recording medium 80. The first magnetic pole face 31f may be smaller than the fourth region surface 32df.

[0047] In the magnetic head 110a and the magnetic head 110b, in the first state, the temperature of the first magnetic pole 31 is higher than the temperature of the second magnetic pole 32. In the first state in which the element current i2 does not flow, the first potential of the first magnetic pole 31 is higher than the second potential of the second magnetic pole 32. For example, the power supplied to the element unit 20 can be reduced. For example, thermal deterioration of the element unit 20 can be reduced. For example, a magnetic head with improved characteristics can be obtained.

[0048] Hereinafter, some examples of the element portion 20 will be described. 5(a) to 5(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. 5A, in the magnetic head 111a according to the embodiment, the element portion 20 (for example, the first region element 20a) includes a first magnetic pole side nonmagnetic layer 41P. The first magnetic pole side nonmagnetic layer 41P contacts the first magnetic pole 31. The first magnetic pole side nonmagnetic layer 41P includes at least one element selected from the group consisting of Ru, Ta, Ir, Rh, Pd, Pt, and W (first element group).

[0049] As shown in FIG. 5B, in the magnetic head 111b according to the embodiment, the element section 20 (for example, the first region element 20a) includes a first magnetic pole side nonmagnetic layer 41P and a first laminated body 21S. The first magnetic pole side nonmagnetic layer 41P is between the first magnetic pole 31 and the first laminated body 21S. In this example, the first laminated body 21S includes a first magnetic layer 21 and a first nonmagnetic layer 41. The first magnetic layer 21 is between the first magnetic pole side nonmagnetic layer 41P and the first nonmagnetic layer 41. In this example, the first nonmagnetic layer 41 includes at least one element selected from the group (second element group) consisting of Cu, Au, Cr, V, Al, and Ag.

[0050] 5(c), in the magnetic head 111c according to the embodiment, the first stacked body 21S further includes a second magnetic layer 22 and a second non-magnetic layer 42. The second magnetic layer 22 is between the first magnetic layer 21 and the second non-magnetic layer 42. The second non-magnetic layer 42 may include at least one element selected from the above-mentioned first element group, or at least one element selected from the above-mentioned second element group.

[0051] 5(d), in the magnetic head 111d according to the embodiment, the first stacked body 21S further includes a third magnetic layer 23 and a third non-magnetic layer 43. The third magnetic layer 23 is between the second magnetic layer 22 and the third non-magnetic layer 43. The third non-magnetic layer 43 may include at least one element selected from the above-mentioned first element group, or at least one element selected from the above-mentioned second element group.

[0052] 5(e), in the magnetic head 111e according to the embodiment, the first stack 21S further includes a fourth magnetic layer 24 and a fourth non-magnetic layer 44. The fourth magnetic layer 24 is between the third magnetic layer 23 and the fourth non-magnetic layer 44. The fourth non-magnetic layer 44 may include at least one element selected from the above-mentioned first element group, or at least one element selected from the above-mentioned second element group.

[0053] At least one of the first magnetic layer 21, the second magnetic layer 22, the third magnetic layer 23, and the fourth magnetic layer 24 contains at least one selected from the group consisting of Fe, Co, and Ni.

[0054] 6(a) to 6(e), 7(a) to 7(e), and 8(a) to 8(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. As shown in Figures 6(a), 7(a) and 8(a), in magnetic heads 112a, 113a and 114a, the element portion 20 (e.g., the second region element 20b, the third region element 20c and the fourth region element 20d) may include the above-mentioned first pole side non-magnetic layer 41P.

[0055] 6(b), 7(b), and 8(b), in the magnetic head 112b, the magnetic head 113b, and the magnetic head 114b, the element portion 20 (for example, the second region element 20b, the third region element 20c, and the fourth region element 20d) may include a first magnetic pole side nonmagnetic layer 41P and a first stacked body 21S. The first stacked body 21S includes a first magnetic layer 21 and a first nonmagnetic layer 41.

[0056] As shown in Figures 6(c), 7(c) and 8(c), in magnetic heads 112c, 113c and 114c, in the element portion 20 (e.g., the second region element 20b, the third region element 20c and the fourth region element 20d), the first stack 21S may further include a second magnetic layer 22 and a second non-magnetic layer 42.

[0057] As shown in Figures 6(d), 7(d) and 8(d), in magnetic heads 112d, 113d and 114d, in the element portion 20 (e.g., the second region element 20b, the third region element 20c and the fourth region element 20d), the first stack 21S may further include a third magnetic layer 23 and a third non-magnetic layer 43.

[0058] As shown in Figures 6(e), 7(e) and 8(e), in magnetic heads 112e, 113e and 114e, in the element portion 20 (e.g., the second region element 20b, the third region element 20c and the fourth region element 20d), the first stack 21S may further include a fourth magnetic layer 24 and a fourth non-magnetic layer 44.

[0059] At least one of the direction and the magnitude of the recording magnetic field is appropriately controlled in the magnetic head 111a, the magnetic head 112a, the magnetic head 113a, and the magnetic head 114a.

[0060] In the magnetic head 111b, the magnetic head 112b, the magnetic head 113b, and the magnetic head 114b, the magnetization of the first magnetic layer 21 is reversed with respect to the magnetization of the first magnetic pole 31. At least one of the direction and the magnitude of the recording magnetic field is appropriately controlled.

[0061] In one example of at least one of the magnetic heads 111c, 112c, 113c, 114c, 111d, 112d, 113d, 114d, 111e, 112e, 113e, and 114e, an alternating magnetic field is generated from the first stack 21S. MAMR is performed. In one example, at least one of the magnetization of the first magnetic layer 21 and the magnetization of the second magnetic layer 22 is reversed with respect to the magnetization of the first magnetic pole 31. At least one of the direction and magnitude of the recording magnetic field is appropriately controlled. MAMR and at least one of the control of the direction and magnitude of the recording magnetic field may be performed.

[0062] 9(a) to 9(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. As shown in FIG. 9A, in the magnetic head 111a according to the embodiment, the element portion 20 (for example, the first region element 20a) includes a first magnetic pole side magnetic layer 21P and a non-magnetic intermediate layer 41I. The first magnetic pole side magnetic layer 21P is provided between the first magnetic pole 31 and the non-magnetic intermediate layer 41I. The non-magnetic intermediate layer 41I includes at least one selected from the group (second group) consisting of Cu, Au, Cr, V, Al, and Ag. The first magnetic pole side magnetic layer 21P includes at least one selected from the group consisting of Fe, Co, and Ni, and at least one selected from the group (third group) consisting of Cr, V, Mn, Ti, and Sc. The first magnetic pole side magnetic layer 21P has, for example, negative polarization. For example, the first magnetic pole side magnetic layer 21P contacts the non-magnetic intermediate layer 41I. For example, the first magnetic pole side magnetic layer 21P contacts the first magnetic pole 31.

[0063] As shown in FIG. 9B, in the magnetic head 121b according to the embodiment, the element unit 20 (for example, the first region element 20a) further includes a first stacked body 21S. The non-magnetic intermediate layer 41I is between the first magnetic pole side magnetic layer 21P and the first stacked body 21S. The first stacked body 21S includes a first magnetic layer 21 and a first non-magnetic layer 41. The first magnetic layer 21 is between the non-magnetic intermediate layer 41I and the first non-magnetic layer 41. The first non-magnetic layer 41 may include, for example, at least one element selected from the above first element group, or at least one element selected from the above second element group.

[0064] 9(c), in the magnetic head 121c according to the embodiment, the first stacked body 21S further includes a second magnetic layer 22 and a second non-magnetic layer 42. The second magnetic layer 22 is between the first magnetic layer 21 and the second non-magnetic layer 42. The second non-magnetic layer 42 may include at least one element selected from the above-mentioned first element group, or at least one element selected from the above-mentioned second element group.

[0065] 9(d), in the magnetic head 121d according to the embodiment, the first stacked body 21S further includes a third magnetic layer 23 and a third non-magnetic layer 43. The third magnetic layer 23 is between the second magnetic layer 22 and the third non-magnetic layer 43. The third non-magnetic layer 43 may include at least one element selected from the above-mentioned first element group, or at least one element selected from the above-mentioned second element group.

[0066] 9(e), in the magnetic head 121e according to the embodiment, the first stacked body 21S further includes a fourth magnetic layer 24 and a fourth non-magnetic layer 44. The fourth magnetic layer 24 is between the third magnetic layer 23 and the fourth non-magnetic layer 44. The fourth non-magnetic layer 44 may include at least one element selected from the above-mentioned first element group, or at least one element selected from the above-mentioned second element group.

[0067] At least one of the first magnetic layer 21, the second magnetic layer 22, the third magnetic layer 23, and the fourth magnetic layer 24 contains at least one selected from the group consisting of Fe, Co, and Ni.

[0068] 10(a) to 10(e), 11(a) to 11(e), and 12(a) to 12(e) are schematic cross-sectional views illustrating the magnetic head according to the first embodiment. As shown in Figures 10(a), 11(a) and 12(a), in magnetic head 122a, magnetic head 123a and magnetic head 124a, the element portion 20 (e.g., second region element 20b, third region element 20c and fourth region element 20d) may include the above-mentioned first pole side magnetic layer 21P and non-magnetic intermediate layer 41I.

[0069] 10(b), 11(b) and 12(b), in the magnetic head 122b, the magnetic head 123b and the magnetic head 124b, the element portion 20 (for example, the second region element 20b, the third region element 20c and the fourth region element 20d) may include a first magnetic pole side magnetic layer 21P, a nonmagnetic intermediate layer 41I and a first stacked body 21S. The first stacked body 21S includes a first magnetic layer 21 and a first nonmagnetic layer 41.

[0070] As shown in Figures 10(c), 11(c) and 12(c), in magnetic heads 122c, 123c and 124c, in the element portion 20 (e.g., the second region element 20b, the third region element 20c and the fourth region element 20d), the first stack 21S may further include a second magnetic layer 22 and a second non-magnetic layer 42.

[0071] As shown in Figures 10(d), 11(d) and 12(d), in magnetic heads 122d, 123d and 124d, in the element portion 20 (e.g., the second region element 20b, the third region element 20c and the fourth region element 20d), the first stack 21S may further include a third magnetic layer 23 and a third non-magnetic layer 43.

[0072] As shown in Figures 10(e), 11(e) and 12(e), in magnetic heads 122e, 123e and 124e, in the element portion 20 (e.g., the second region element 20b, the third region element 20c and the fourth region element 20d), the first stack 21S may further include a fourth magnetic layer 24 and a fourth non-magnetic layer 44.

[0073] At least one of the direction and the magnitude of the recording magnetic field is appropriately controlled in the magnetic head 121a, the magnetic head 122a, the magnetic head 123a, and the magnetic head 124a.

[0074] In the magnetic head 121b, the magnetic head 122b, the magnetic head 123b, and the magnetic head 124b, the magnetization of the first magnetic layer 21 is reversed with respect to the magnetization of the first magnetic pole 31. At least one of the direction and the magnitude of the recording magnetic field is appropriately controlled.

[0075] In one example of at least one of the magnetic heads 121c, 122c, 123c, 124c, 121d, 122d, 123d, 124d, 121e, 122e, 123e, and 124e, an alternating magnetic field is generated from the first stack 21S. MAMR is performed. In one example, at least one of the magnetization of the first magnetic layer 21 and the magnetization of the second magnetic layer 22 is reversed with respect to the magnetization of the first magnetic pole 31. At least one of the direction and magnitude of the recording magnetic field is appropriately controlled. MAMR and at least one of the control of the direction and magnitude of the recording magnetic field may be performed.

[0076] In the embodiment, at least one of the first region element 20a, the second region element 20b, the third region element 20c, and the fourth region element 20d may be provided. For example, the first region 32a may be a leading shield, and the second region 32b may be a trailing shield. For example, the first region element 20a and the second region element 20b may be omitted, and the third region element 20c may be provided. In this case, the third region element 20c may be considered as the "first region element".

[0077] The configurations illustrated in Figures 5(a) to 5(e), 6(a) to 6(e), 7(a) to 7(e), 8(a) to 8(e), 9(a) to 9(e), 10(a) to 10(e), 11(a) to 11(e), and 12(a) to 12(e) may be applied in any combination.

[0078] FIG. 13 is a schematic cross-sectional view illustrating the magnetic head according to the first embodiment. 13, in the magnetic head 131a according to the embodiment, the coil 30c is provided between the first magnetic pole 31 and the first region 32a of the second magnetic pole 32. The coil 30c does not have to be provided between the first magnetic pole 31 and the second region 32b.

[0079] FIG. 14 is a schematic cross-sectional view illustrating the magnetic head according to the first embodiment. 14, in the magnetic head 131b according to the embodiment, the second region 32b of the second magnetic pole 32 may include a portion along the Z-axis direction and a portion extending along the XY plane. The area of ​​the second region 32b is easy to expand. The second region 32b may include a portion extending along the XY plane and may not include a portion along the Z-axis direction.

[0080] Second embodiment In the following embodiments, the magnetic head (such as the magnetic head 110) and modifications thereof described in relation to the first embodiment are applied. Below, an example in which the magnetic head 110 is used will be described.

[0081] FIG. 15 is a schematic perspective view illustrating the magnetic recording device according to the second embodiment. 15, a magnetic head according to an embodiment (e.g., magnetic head 110) is used together with a magnetic recording medium 80. In this example, the magnetic head 110 includes a recording unit 60 and a reproducing unit 70. The recording unit 60 of the magnetic head 110 records information on the magnetic recording medium 80. The reproducing unit 70 reproduces the information recorded on the magnetic recording medium 80.

[0082] The magnetic recording medium 80 includes, for example, a medium substrate 82 and a magnetic recording layer 81 provided on the medium substrate 82. The magnetization 83 of the magnetic recording layer 81 is controlled by the recording unit 60.

[0083] The reproducing unit 70 includes, for example, a first reproducing magnetic shield 72a, a second reproducing magnetic shield 72b, and a magnetic reproducing element 71. The magnetic reproducing element 71 is provided between the first reproducing magnetic shield 72a and the second reproducing magnetic shield 72b. The magnetic reproducing element 71 can output a signal corresponding to the magnetization 83 of the magnetic recording layer 81.

[0084] 15, the magnetic recording medium 80 moves relative to the magnetic head 110 in a medium movement direction 85. The magnetic head 110 controls information corresponding to the magnetization 83 of the magnetic recording layer 81 at an arbitrary position. The magnetic head 110 reproduces information corresponding to the magnetization 83 of the magnetic recording layer 81 at an arbitrary position.

[0085] FIG. 16 is a schematic perspective view illustrating a part of the magnetic recording device according to the embodiment. FIG. 16 illustrates a head slider. The magnetic head 110 is mounted on a head slider 159. The head slider 159 is made of, for example, Al 2 O 3 / TiC, etc. The head slider 159 moves relative to the magnetic recording medium while floating above or in contact with the magnetic recording medium.

[0086] The head slider 159 includes, for example, an air inflow side 159A and an air outflow side 159B. The magnetic head 110 is disposed on a side surface of the air outflow side 159B of the head slider 159. As a result, the magnetic head 110 moves relative to the magnetic recording medium while floating above or in contact with the magnetic recording medium.

[0087] FIG. 17 is a schematic perspective view illustrating the magnetic recording device according to the second embodiment. As shown in FIG. 17, the magnetic recording device 150 according to the embodiment includes a rotary actuator. The recording medium disk 180 is connected to a spindle motor 180M. The recording medium disk 180 is rotated in the direction of the arrow AR by the spindle motor 180M. The spindle motor 180M responds to a control signal from a drive control unit. The magnetic recording device 150 according to the embodiment may include a plurality of recording medium disks 180. The magnetic recording device 150 may include a recording medium 181. The recording medium 181 is, for example, an SSD (Solid State Drive). For example, a non-volatile memory such as a flash memory is used for the recording medium 181. For example, the magnetic recording device 150 may be a hybrid HDD (Hard Disk Drive).

[0088] The head slider 159 records and reproduces information to be recorded on the recording medium disk 180. The head slider 159 is provided at the tip of the thin-film suspension 154. Near the tip of the head slider 159, a magnetic head according to the embodiment is provided.

[0089] When the recording medium disk 180 is rotating, the pressing pressure by the suspension 154 and the floating pressure generated at the medium facing surface (ABS) of the head slider 159 are balanced. The distance between the medium facing surface of the head slider 159 and the surface of the recording medium disk 180 is a predetermined floating amount. In an embodiment, the head slider 159 may be in contact with the recording medium disk 180. For example, a contact running type may be applied.

[0090] The suspension 154 is connected to one end of an arm 155 (e.g., an actuator arm). The arm 155 includes, for example, a bobbin portion. The bobbin portion holds a drive coil. A voice coil motor 156 is provided at the other end of the arm 155. The voice coil motor 156 is a type of linear motor. The voice coil motor 156 includes, for example, a drive coil and a magnetic circuit. The drive coil is wound around the bobbin portion of the arm 155. The magnetic circuit includes a permanent magnet and an opposing yoke. The drive coil is provided between the permanent magnet and the opposing yoke. The suspension 154 includes one end and the other end. The magnetic head is provided at one end of the suspension 154. The arm 155 is connected to the other end of the suspension 154.

[0091] Arm 155 is held by a ball bearing. The ball bearings are provided at two locations, above and below bearing portion 157. Arm 155 can rotate and slide by voice coil motor 156. The magnetic head can be moved to any position on recording medium disk 180.

[0092] 18A and 18B are schematic perspective views illustrating a part of the magnetic recording device according to the second embodiment. Fig. 18(a) illustrates a head stack assembly 160 included in the magnetic recording device 150. The head stack assembly 160 includes a magnetic head assembly 158 (for example, a head gimbal assembly: HGA). Fig. 18(b) illustrates the magnetic head assembly 158.

[0093] 18(a), the head stack assembly 160 includes a bearing portion 157, a magnetic head assembly 158, and a support frame 161. The magnetic head assembly 158 extends from the bearing portion 157. The support frame 161 extends from the bearing portion 157. The support frame 161 extends in a direction opposite to the direction in which the magnetic head assembly 158 extends. The support frame 161 supports a coil 162 of the voice coil motor 156.

[0094] As shown in FIG. 18( b ), the magnetic head assembly 158 includes an arm 155 extending from a bearing portion 157 , and a suspension 154 extending from the arm 155 .

[0095] A head slider 159 is provided at the tip of the suspension 154. The head slider 159 is provided with a magnetic head according to the embodiment.

[0096] The magnetic head assembly 158 according to the embodiment includes the magnetic head according to the embodiment, a head slider 159 provided with the magnetic head, a suspension 154, and an arm 155. The head slider 159 is provided at one end of the suspension 154. The arm 155 is connected to the other end of the suspension 154.

[0097] The suspension 154 may include, for example, wiring (not shown) for recording and reproducing signals. The suspension 154 may include, for example, wiring (not shown) for a heater for adjusting the flying height. The suspension 154 may include, for example, wiring (not shown) for an oscillation element or the like. These wirings may be electrically connected to a plurality of electrodes provided on the magnetic head.

[0098] A signal processing unit 190 is provided in the magnetic recording device 150. The signal processing unit 190 records and reproduces signals on the magnetic recording medium using a magnetic head. The input / output lines of the signal processing unit 190 are connected to, for example, electrode pads of the magnetic head assembly 158, and are electrically connected to the magnetic head.

[0099] The magnetic recording device 150 according to the embodiment includes a magnetic recording medium, a magnetic head according to the embodiment, a movable unit, a position control unit, and a signal processing unit. The movable unit allows the magnetic recording medium and the magnetic head to be relatively moved while being separated from each other or in contact with each other. The position control unit aligns the magnetic head with a predetermined recording position on the magnetic recording medium. The signal processing unit records and reproduces signals on the magnetic recording medium using the magnetic head.

[0100] For example, the magnetic recording medium is a recording medium disk 180. The movable portion includes, for example, a head slider 159. The position control portion includes, for example, a magnetic head assembly 158.

[0101] The embodiment may include the following configurations (e.g., technical solutions). (Configuration 1) A first magnetic pole; A second magnetic pole; a conductive portion electrically insulated from the first magnetic pole and the second magnetic pole; a first terminal and a second terminal electrically connected to the conductive portion; a conductive element portion provided between the first magnetic pole and the second magnetic pole and electrically connected to the first magnetic pole and the second magnetic pole; a third terminal electrically connected to the first magnetic pole; a fourth terminal electrically connected to the second magnetic pole; Equipped with A magnetic head, wherein a first pole temperature of the first pole in a first state in which a first current is supplied between the first terminal and the second terminal is higher than a second pole temperature of the second pole in the first state.

[0102] (Configuration 2) 2. The magnetic head of configuration 1, wherein in the first state, no current is supplied between the third terminal and the fourth terminal.

[0103] (Configuration 3) In a first operation, the first current is supplied between the first terminal and the second terminal; 3. The magnetic head according to configuration 1 or 2, wherein in the first operation, an element current is supplied between the third terminal and the fourth terminal.

[0104] (Configuration 4) 4. The magnetic head according to configuration 3, wherein the element current flows from the fourth terminal to the third terminal.

[0105] (Configuration 5) 4. The magnetic head of configuration 3, wherein in the first operation, a magnetic field corresponding to the first current is generated from the first pole.

[0106] (Configuration 6) 6. The magnetic head of configuration 5, wherein the direction of the magnetic field changes depending on the direction of the first current.

[0107] (Configuration 7) 7. The magnetic head according to any one of configurations 3 to 6, wherein, in the first operation, information according to a direction of the first current is recorded on a magnetic recording medium.

[0108] (Configuration 8) the first magnetic pole includes a first magnetic pole face facing the magnetic recording medium, the second magnetic pole includes a second magnetic pole face facing the magnetic recording medium, 8. The magnetic head of configuration 7, wherein the first pole face is smaller than the second pole face.

[0109] (Configuration 9) The magnetic head according to any one of configurations 1 to 8, wherein in the first state, a first potential of the first magnetic pole is higher than a second potential of the second magnetic pole.

[0110] (Configuration 10) A first magnetic pole; A second magnetic pole; a conductive portion electrically insulated from the first magnetic pole and the second magnetic pole; a first terminal and a second terminal electrically connected to the conductive portion; a conductive element portion provided between the first magnetic pole and the second magnetic pole and electrically connected to the first magnetic pole and the second magnetic pole; a third terminal electrically connected to the first magnetic pole; a fourth terminal electrically connected to the second magnetic pole; Equipped with a first potential of the first magnetic pole in a first state in which a first current is supplied between the first terminal and the second terminal is higher than a second potential of the second magnetic pole in the first state; In the first state, no current is supplied between the third terminal and the fourth terminal.

[0111] (Configuration 11) the second pole includes a first region; The element portion includes a first region element, 11. The magnetic head according to any one of configurations 1 to 10, wherein the first region element is provided between the first pole and the first region.

[0112] (Configuration 12) the second pole further includes a second region; the first magnetic pole is between the second region and the first region; The element portion further includes a second region element, 12. The magnetic head of claim 11, wherein the second region element is disposed between the second region and the first pole.

[0113] (Configuration 13) the second pole further includes a third region; a second direction from the third region to the first magnetic pole intersects with a first direction from the first magnetic pole to the first region; The element portion further includes a third region element, 13. The magnetic head of claim 11, wherein the third region element is disposed between the third region and the first pole.

[0114] (Configuration 14) the second pole further includes a fourth region; the first magnetic pole is between the third region and the fourth region in the second direction, The element portion further includes a fourth region element, 14. The magnetic head of claim 13, wherein the fourth region element is disposed between the first pole and the fourth region.

[0115] (Configuration 15) the element portion includes a first-pole-side nonmagnetic layer in contact with the first magnetic pole, 15. The magnetic head according to any one of configurations 1 to 14, wherein the first pole side nonmagnetic layer includes at least one selected from the group consisting of Ru, Ta, Ir, Rh, Pd, Pt, and W.

[0116] (Configuration 16) The element portion further includes a first stack, the first-pole-side nonmagnetic layer is located between the first magnetic pole and the first laminate, the first stack includes a first magnetic layer and a first non-magnetic layer, 16. The magnetic head of configuration 15, wherein the first magnetic layer is between the first pole side nonmagnetic layer and the first nonmagnetic layer.

[0117] (Configuration 17) The element portion is A first magnetic pole side magnetic layer, A non-magnetic intermediate layer; Including, the first-pole-side magnetic layer is provided between the first pole and the nonmagnetic intermediate layer, the nonmagnetic intermediate layer includes at least one selected from the group consisting of Cu, Au, Cr, V, Al, and Ag; The first magnetic pole side magnetic layer is At least one selected from the group consisting of Fe, Co, and Ni; At least one selected from the group consisting of Cr, V, Mn, Ti, and Sc; 15. The magnetic head according to any one of configurations 1 to 14, comprising:

[0118] (Configuration 18) 18. The magnetic head according to configuration 17, wherein the first pole side magnetic layer is in contact with the nonmagnetic intermediate layer.

[0119] (Configuration 19) The element portion further includes a first stack, the nonmagnetic intermediate layer is located between the first pole side magnetic layer and the first stack, the first stack includes a first magnetic layer and a first non-magnetic layer, 19. The magnetic head of structure 17 or 18, wherein the first magnetic layer is between the nonmagnetic intermediate layer and the first nonmagnetic layer.

[0120] (Configuration 20) A magnetic head according to any one of configurations 3 to 6, a first circuit capable of supplying the first current; A second circuit capable of supplying the element current; A magnetic recording device comprising:

[0121] According to the embodiment, it is possible to provide a magnetic head and a magnetic recording device capable of improving characteristics.

[0122] In this specification, "vertical" and "parallel" do not only mean strictly vertical and strictly parallel, but also include, for example, variations in the manufacturing process, and may mean substantially vertical and substantially parallel.

[0123] The above describes the embodiments of the present invention with reference to specific examples. However, the present invention is not limited to these specific examples. For example, the specific configurations of each element included in the magnetic head and magnetic recording device, such as the magnetic pole, element, conductive part, magnetic layer, non-magnetic layer, terminal, and control part, are included in the scope of the present invention as long as a person skilled in the art can implement the present invention in the same way and obtain the same effect by appropriately selecting from the known range.

[0124] Any combination of two or more elements of each embodiment, within the scope of technical feasibility, is also included within the scope of the present invention as long as it includes the gist of the present invention.

[0125] In addition, all magnetic heads and magnetic recording devices that can be implemented by a person skilled in the art by making appropriate design modifications based on the magnetic head and magnetic recording device described above as embodiments of the present invention also fall within the scope of the present invention as long as they include the gist of the present invention.

[0126] In addition, within the scope of the concept of the present invention, a person skilled in the art may conceive of various modifications and alterations, and it will be understood that these modifications and alterations also fall within the scope of the present invention.

[0127] Although some embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These novel embodiments can be implemented in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention. These embodiments and their modifications are included in the scope and spirit of the invention, and are included in the scope of the invention and its equivalents described in the claims. [Explanation of symbols]

[0128] 20: element section, 20a-20d: first-fourth region elements, 21-24: first-fourth magnetic layers, 21P: first magnetic pole side magnetic layer, 21S: first laminate, 30c: conductive section, 30i: insulating member, 31, 32: first- and second magnetic poles, 31f, 32f: first- and second magnetic pole surfaces, 32a-32d: first-fourth regions, 32af-32df: first-fourth region surfaces, 41-44: first-fourth non-magnetic layers, 41I: non-magnetic intermediate layer, 41P: first magnetic pole side non-magnetic layer, 60: recording section, 60C: control section, 61, 62: first- and second circuits, 70: reproducing section, 71: magnetic reproducing element, 72a, 72b: first- and second reproducing magnetic shields, 80: magnetic recording medium, 81: magnetic recording layer, 82: medium substrate, 83: magnetization, 85: medium movement direction, 110, 110a, 110b, 111a to 111e, 112a to 112e, 113a to 113e, 114a to 114e, 121a to 121e, 122a to 122e, 123a to 123e, 124a to 124e, 131a, 131b: magnetic head, 150: magnetic recording device, 154: suspension, 155: arm, 156: voice coil motor, 157: bearing portion, 158: magnetic head assembly, 159: head slider, 159A: air inlet side, 159B: air outlet side, 160: head stack assembly, 161: support frame, 162: coil; 180: recording medium disk; 180M: spindle motor; 181: recording medium; 190: signal processing unit; 210: magnetic recording device; AR, AR1: arrows; D1 to D3: first to third directions; T1 to T4: first to fourth terminals; W1, W2: first and second wirings; i1: first current; i2: element current; je: electron current

Claims

1. A first magnetic pole; A second magnetic pole; a conductive portion electrically insulated from the first magnetic pole and the second magnetic pole; a first terminal and a second terminal electrically connected to the conductive portion; a conductive element portion provided between the first magnetic pole and the second magnetic pole and electrically connected to the first magnetic pole and the second magnetic pole; a third terminal electrically connected to the first magnetic pole; a fourth terminal electrically connected to the second magnetic pole; Equipped with A magnetic head, wherein a first pole temperature of the first pole in a first state in which a first current is supplied between the first terminal and the second terminal is higher than a second pole temperature of the second pole in the first state.

2. 2. The magnetic head according to claim 1, wherein in the first state, no current is supplied between the third terminal and the fourth terminal.

3. In a first operation, the first current is supplied between the first terminal and the second terminal; 2. The magnetic head according to claim 1, wherein in the first operation, an element current is supplied between the third terminal and the fourth terminal.

4. 4. The magnetic head according to claim 3, wherein a direction of the element current is from the fourth terminal to the third terminal.

5. 4. The magnetic head of claim 3, wherein in the first operation, a magnetic field responsive to the first current is generated from the first pole.

6. The magnetic head according to claim 5 , wherein a direction of the magnetic field changes depending on a direction of the first current.

7. A first magnetic pole; A second magnetic pole; a conductive portion electrically insulated from the first magnetic pole and the second magnetic pole; a first terminal and a second terminal electrically connected to the conductive portion; a conductive element portion provided between the first magnetic pole and the second magnetic pole and electrically connected to the first magnetic pole and the second magnetic pole; a third terminal electrically connected to the first magnetic pole; a fourth terminal electrically connected to the second magnetic pole; Equipped with a first potential of the first magnetic pole in a first state in which a first current is supplied between the first terminal and the second terminal is higher than a second potential of the second magnetic pole in the first state; In the first state, no current is supplied between the third terminal and the fourth terminal.

8. the element portion includes a first-pole-side nonmagnetic layer in contact with the first pole, 8. The magnetic head according to claim 1, wherein the first pole side nonmagnetic layer includes at least one selected from the group consisting of Ru, Ta, Ir, Rh, Pd, Pt and W.

9. The element portion is A first magnetic pole side magnetic layer; A non-magnetic intermediate layer; Including, the first pole side magnetic layer is provided between the first pole and the nonmagnetic intermediate layer, the nonmagnetic intermediate layer includes at least one selected from the group consisting of Cu, Au, Cr, V, Al, and Ag; The first magnetic pole side magnetic layer is At least one selected from the group consisting of Fe, Co, and Ni; At least one selected from the group consisting of Cr, V, Mn, Ti, and Sc; 8. The magnetic head according to claim 1, further comprising:

10. A magnetic head according to claim 3; a first circuit capable of supplying the first current; A second circuit capable of supplying the element current; A magnetic recording device comprising: