IP Library › Granted Patent US 7,884,403
Granted Patent B2
US 7,884,403 · App. 10/591,947 · Granted Feb 8, 2011

Magnetic tunnel junction device and memory device including the same

Assignees: Japan Science and Technology Agency; National Institute of Advanced Industrial Science and Technology
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Quick Facts
Patent No.
US 7,884,403
App. No.
10/591,947
Granted
Feb 8, 2011
Kind
B2
Abstract

The output voltage of an MRAM is increased by means of an Fe(001)/MgO(001)/Fe(001) MTJ device, which is formed by microfabrication of a sample prepared by the following steps. A single-crystalline MgO (001) substrate 11 is prepared. An epitaxial Fe(001) lower electrode (a first electrode) 17 with the thickness of 50 nm is grown on a MgO(001) seed layer 15 at room temperature, followed by annealing under ultrahigh vacuum (2×10 −8 Pa) and at 350° C. A MgO(001) barrier layer 21 with the thickness of 2 nm is epitaxially formed on the Fe(001) lower electrode (the first electrode) at room temperature, using a MgO electron-beam evaporation. A Fe(001) upper electrode (a second electrode) with the thickness of 10 nm is then formed on the MgO(001) barrier layer 21 at room temperature. This is successively followed by the deposition of a Co layer 21 with the thickness of 10 nm on the Fe(001) upper electrode (the second electrode) 23 . The Co layer 21 is provided so as to increase the coercive force of the upper electrode 23 in order to realize an antiparallel magnetization alignment.

Claims (37)

1. A magnetoresistive device having a tunnel barrier junction structure, the magnetoresistive device comprising:

a tunnel barrier layer;

a first ferromagnetic material layer of a BCC structure formed on a first side of said tunnel barrier layer; and

a second ferromagnetic material layer of the BCC structure formed on a second side of said tunnel barrier layer, wherein

said tunnel barrier layer is formed by a single-crystalline MgOx (001) (0<x<1) or a poly-crystalline MgOx (0<x<1) in which (001) crystal plane is preferentially oriented, and

wherein a tunnel barrier height between a bottom of a conduction band of said tunnel barrier layer and a Fermi energy of at least one of said first and second ferromagnetic layers is a discontinuous value in a range of 0.2 to 0.5 eV.

2. The magnetoresistive device according to claim 1 , wherein said ferromagnetic material comprises a single-crystalline (001) of Fe or Fe-based alloy, or a poly-crystalline of Fe or Fe-based alloy in which (001) crystal plane is preferentially oriented.

3. The magnetoresistive device according to claim 1 , wherein a magnetoresistance ratio of said magnetoresistive device is more than 70%.

4. The magnetoresistive device according to claim 1 , wherein said first ferromagnetic material layer comprises CoFeB alloy.

5. A magnetoresistive device, comprising:

a first ferromagnetic material layer of a BCC structure;

a second ferromagnetic material layer of the BCC structure; and

a magnesium oxide layer located between said first ferromagnetic material layer and said second ferromagnetic material layer, wherein

said magnesium oxide is a single-crystalline (001) or a poly-crystalline crystalline in which (001) crystal plane is preferentially oriented,

wherein said magnesium oxide has oxygen vacancy defects, and

wherein said magnesium oxide has a tunnel barrier height in a range of 0.2 to 0.5 eV.

6. A magnetoresistive device having a magnetic tunnel junction structure comprising:

a tunnel barrier layer;

a first ferromagnetic material layer of a BCC structure formed on a first side of said tunnel barrier layer; and

a second ferromagnetic material layer of the BCC structure formed on a second side of said tunnel barrier layer, wherein

said tunnel barrier layer comprises a poly-crystalline MgO in which (001) crystal plane is preferentially oriented, said MgO having oxygen vacancy defects,

wherein said tunnel barrier layer has a tunnel barrier height of 0.2 to 0.5 eV, and

wherein a magnetoresistance ratio of said device is more than 70%.

7. A magnetoresistive device having a magnetic tunnel junction structure, the magnetoresistive device comprising:

a tunnel barrier layer;

a first ferromagnetic material layer of a BCC structure formed on a first side of said tunnel barrier layer; and

a second ferromagnetic material layer of the BCC structure formed on a second side of said tunnel barrier layer, wherein

said tunnel barrier layer comprises a poly-crystalline magnesium oxide having oxygen vacancy defects in which (001) crystal plane is preferentially oriented,

said tunnel barrier layer has a tunnel barrier height of 0.2 to 0.5 eV, and

a magnetoresistance ratio of said device is more than 70%.

8. A memory device comprising:

a transistor; and

a magnetoresistive device comprising a tunnel barrier layer;

a first ferromagnetic material layer of a BCC structure formed on a first side of said tunnel barrier layer; and

a second ferromagnetic material layer of the BCC structure formed on a second side of said tunnel barrier layer, wherein

said tunnel barrier layer is formed by a single-crystalline MgOx (001) (0<x<1) or a poly-crystalline MgOx (0<x<1) in which (001) crystal plane is preferentially oriented, wherein

a tunnel barrier height of said tunnel barrier layer is in a range of 0.2 to 0.5 eV and said magnetoresistive device is used as a load for said transistor.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 22, 2022
From: JAPAN SCIENCE AND TECHNOLOGY AGENCY; NATIONAL INSTITUTE OF ADVANCED INDUSTRIAL SCIENCE AND TECHNOLOGY
To: GODO KAISHA IP BRIDGE 1
Reel/Frame 061851/0325 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 8, 2006
From: YUASA, SHINJI
To: JAPAN SCIENCE AND TECHNOLOGY AGENCY; NATIONAL INSTITUTE OF ADVANCED INDUSTRIAL SCIENCE AND TECHNOLOGY
Reel/Frame 018287/0087 →
Priority Claims (2)
JP 2004-071186 · Mar 12, 2004 · national
JP 2004-313350 · Oct 28, 2004 · national
Continuity (1)
Related Publication 20070195592A1 · Aug 23, 2007