IP Library › Granted Patent US 10,020,039
Granted Patent B2
US 10,020,039 · App. 15/144,715 · Granted Jul 10, 2018

Three terminal magnetoresistive devices, magnetoresistive random access memory and magnetic recording method

Inventors: Shunsuke Fukami (Sendai, JP); Michihiko Yamanouchi (Sendai, JP); Hideo Ohno (Sendai, JP)
Assignee: TOHOKU UNIVERSITY
G11C11/161G11C11/1655G11C11/1659G11C11/1675H01L23/528H01L27/228H01L43/02H01L43/08H01L43/10G11C11/1673
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Quick Facts
Patent No.
US 10,020,039
App. No.
15/144,715
Granted
Jul 10, 2018
Kind
B2
Abstract

A magnetoresistive device includes a magnetic free layer having first and second surfaces, the magnetic free layer being comprised of a ferromagnetic material having a perpendicular magnetic anisotropy, a spin current generation layer contacting the first surface of the magnetic free layer, a tunnel barrier layer having one surface contacting the second surface of the magnetic free layer, a reference layer contacting another surface of the tunnel barrier layer, and a leakage field generation layer including first and second leakage field generation layers each of which is comprised of a ferromagnetic material and generates a leakage field, an in-plane component of the leakage field at an part of the magnetic free layer is formed generating a domain wall having an in-plane magnetization component in the magnetic free layer.

Claims (46)

1. A magnetoresistive device, comprising:

a magnetic free layer having first and second surfaces, the magnetic free layer being comprised of a ferromagnetic material having a perpendicular magnetic anisotropy;

a spin current generation layer contacting the first surface of the magnetic free layer;

a tunnel barrier layer having one surface contacting the second surface of the magnetic free layer;

a reference layer contacting another surface of the tunnel barrier layer; and

a leakage field generation layer including first and second leakage field generation layers each of which is comprised of a ferromagnetic material and generates a leakage field, an in-plane component of the leakage field at a part of the magnetic free layer is formed generating a domain wall having an in-plane magnetization component in the magnetic free layer, wherein

the in-plane magnetization component of the domain wall is in a direction parallel to a direction in which the current flows in the spin current generation layer.

2. The magnetoresistive device according to claim 1 , wherein

the ferromagnetic material constituting the first and second leakage field generation layers has a perpendicular magnetic anisotropy,

the first and second leakage field generation layers have a fixed magnetization having an opposite directions, and are non-overlapping in a vertical direction, and

said in-plane component of the leakage field has a magnetization direction that is the same as a magnetization direction of the domain wall that is preferentially formed in the magnetic free layer due to a Dzyaloshinskii-Moriya interaction.

3. The magnetoresistive device according to claim 1 , wherein

the magnetic free layer has a first magnetization fixed area, a second magnetization fixed area and a magnetization free area that are non-overlapping in a vertical direction,

the first leakage field generation layer overlaps the first magnetization fixed area in the vertical direction, and

the second leakage field generation layer overlaps the second magnetization fixed area in the vertical direction.

4. The magnetoresistive device according to claim 2 , wherein

the leakage field generation layer is formed below the first surface of the magnetic free layer, and

a first distance in the vertical direction between an upper surface of the leakage field generation layer and a center position of a thickness of the magnetic free layer is equal to or greater than 10 nm.

5. The magnetoresistive device according to claim 4 , wherein the first and second distances are equal to or greater than 15 nm.

6. The magnetoresistive device according to claim 2 , wherein

the leakage field generation layer is formed above the second surface of the magnetic free layer, and

a second distance in the vertical direction between a lower surface of the leakage field generation layer and the center position of the thickness of the magnetic free layer is equal to or greater than 10 nm.

7. The magnetoresistive device according to claim 6 , wherein the first and second distances are equal to or greater than 15 nm.

8. The magnetoresistive device according to claim 1 , further comprising a spacer layer contacting the leakage field generation layer and between the second surface of the magnetic free layer and the leakage field generation layer.

9. The magnetoresistive device according to claim 1 , further comprising third and fourth leakage field generation layers, wherein

the first and second leakage layers are formed on the first surface of the magnetic free layer, and

the third and fourth layers are formed on the second surface of the magnetic free layer.

10. The magnetoresistive device according to claim 2 , wherein the leakage field generation layer is formed at a same layer level as the reference layer with respect to the magnetic free layer.

11. The magnetoresistive device according to claim 2 , further comprising first and second in-plane leakage field generation layers each of which is formed between the magnetic free layer and the leakage field generation layer.

12. The magnetoresistive device according to claim 1 , wherein

the first and second leakage field generation layers each has a surface closer to the magnetic free layer and an opposite surface further from the magnetic free layer, and

the first and second leakage field generation layers each are tapered from the closer surface toward the further surface.

13. The magnetoresistive device according to claim 1 , wherein the first and second leakage field generation layers are each comprised of a ferromagnetic material and have an in-plane magnetic anisotropy.

14. A magnetoresistive random access memory, comprising:

the magnetoresistive device according to claim 1 ;

a first cell transistor connected to the first leakage field generation layer;

a first bit line connected to the first cell transistor;

a second cell transistor connected to the second leakage field generation layer;

a second bit line connected to the second cell transistor; and

a word line connected to the first and second transistors.

15. The magnetoresistive device according to claim 1 , wherein the spin current generation layer is comprised of a nonmagnetic material.

16. A method of recording information using a magnetoresistive device that includes a spin current generation layer, a magnetic free layer having a domain wall and a leakage field generation layer generating a leakage field, the method comprising:

generating a spin current by flowing a majority of an electric current flowing in the magnetoresistive device in the spin current generation layer;

moving the domain wall in the magnetic free layer by the generated spin current; and

stabilizing a position of the domain wall by the leakage field generated in the leakage field generation layer, thereby recording the information corresponding to the position of the domain wall.

17. The method of recording information according to claim 16 , wherein wherein the spin current generation layer is comprised of a nonmagnetic material.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2016
From: NEC CORPORATION; TOHOKU UNIVERSITY
To: TOHOKU UNIVERSITY
Reel/Frame 038962/0872 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 2, 2016
From: FUKAMI, SHUNSUKE; YAMANOUCHI, MICHIHIKO; OHNO, HIDEO
To: NEC CORPORATION; TOHOKU UNIVERSITY
Reel/Frame 038440/0093 →
Priority Claims (1)
JP 2013-229971 · Nov 6, 2013 · national
Continuity (2)
Continuation PCTJP2014076643 · Sep 30, 2014
Related Publication 20160247550A1 · Aug 25, 2016
Cited By (4)
US 12,245,518 US 12,262,648 US 12,295,268 US 12,315,542