DocumentCode :
821433
Title :
Giant magnetoresistance in Co/Cu, Co9Fe/Cu, and Co7.5Fe2.5/Cu multilayers
Author :
Saito, Y. ; Hashimoto, S. ; Inomata, K.
Author_Institution :
Toshiba Corp., Kawasaki, Japan
Volume :
28
Issue :
5
fYear :
1992
fDate :
9/1/1992 12:00:00 AM
Firstpage :
2751
Lastpage :
2753
Abstract :
The authors report that giant magnetoresistance (MR) at room temperature up to 52% for a low field change of 0.9 kOe can be attained in (Co9Fe/Cu)n, multilayers. A set of (Cox Fe1-x/Cu)n multilayers (x=1.0, 0.9 and 0.75) was prepared by an ion-beam sputter deposition method on MgO(110) single-crystal substrates. The MR ratio was found to be quite sensitive to the argon acceleration voltage (VB) in ion-beam sputtering and have a maximum around VB=600 V. In the preparation condition for obtaining maximum MR ratio, strong antiferromagnetic coupling (J) for the CoxFe1-x layers via thin Cu layers and the oscillation behavior for this indirect exchange coupling with a 12-A period were observed. It was found that the MR ratio for CoxFe1-x multilayers is larger than that for Co/Cu multilayers in the higher Co-concentration range in the CoxFe1-x alloy. It was also found that in-plane uniaxial anisotropy (Ku), on the order of 10° erg/c3, was induced when this system was prepared on MgO(110). Giant MR can be induced for a small external field change for film with magnetocrystalline anisotropy. MR curve behavior can be explained by metamagnetic transition when Ku, J , and Zeeman terms are considered
Keywords :
cobalt alloys; copper; iron alloys; magnetic multilayers; magnetoresistance; 300 K; 600 V; Ar acceleration voltage; CoxFe1-x-Cu multilayers; MR curve behavior; MR ratio; MgO substrates; MgO(110); Zeeman terms; antiferromagnetic coupling; giant magnetoresistance; in-plane uniaxial anisotropy; indirect exchange coupling; ion-beam sputter deposition; low field change; magnetocrystalline anisotropy; metamagnetic transition; oscillation behavior; room temperature; single-crystal substrates; thin Cu layers; Acceleration; Anisotropic magnetoresistance; Argon; Giant magnetoresistance; Iron; Magnetic multilayers; Nonhomogeneous media; Sputtering; Substrates; Temperature;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.179617
Filename :
179617
Link To Document :
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