DocumentCode :
787549
Title :
Effect of lattice strain on soft magnetic properties in FeCo/NiFe(Cr) thin films with 2.4 T
Author :
Shimatsu, T. ; Katada, H. ; Watanabe, I. ; Muraoka, H. ; Nakamura, Y.
Author_Institution :
Res. Inst. of Electr. Commun., Tohoku Univ., Sendai, Japan
Volume :
39
Issue :
5
fYear :
2003
Firstpage :
2365
Lastpage :
2367
Abstract :
The soft magnetic property of FeCo films with thin NiFe or NiFeCr seed layers (saturation flux density of 2.4 T) is discussed in relation to lattice strain of the FeCo films. The coercivity along hard axis of magnetization (HcHA) reduces as the Ar pressure during sputtering deposition decreases, and moreover, shows the lowest value at FeCo thickness of 50-100 nm. FeCo films show bcc-(110) preferred grain orientation with the <110> direction sharply perpendicular to the film plane. X-ray diffraction (XRD) patterns indicate that the absolute magnitude of the lattice strains of [110], (-110), and [001] planes reduce as the Ar pressure decreases. Magnetic anisotropy energy in [110] plane (E) was calculated by including magnetostrictive energy due to the lattice strain. It was successfully shown that the Ar pressure dependence of E is in good agreement with that of HcHA. Moreover, it is suggested that thickness dependence of HcHA is significantly related to that of magnetostrictive energy. It is likely that less lattice deformation, which is formed by the hetero-epitaxial growth of the FeCo[110] plane on the fcc-[111] plane of the NiFe(Cr) layer, is a key to derive soft magnetic properties in the FeCo/NiFe(Cr) films.
Keywords :
X-ray diffraction; chromium alloys; cobalt alloys; coercive force; ferromagnetic materials; iron alloys; magnetic anisotropy; magnetic heads; magnetic recording; magnetic thin films; magnetisation; magnetostriction; nickel alloys; soft magnetic materials; sputtered coatings; 2.4 T; 50 to 100 nm; FeCo-NiFe(Cr); FeCo/NiFe(Cr) thin films; NiFe; X-ray diffraction patterns; absolute magnitude; grain orientation; hard axis of magnetization; lattice strain; lattice strains; magnetic anisotropy energy; magnetostrictive energy; saturation flux density; soft magnetic properties; Argon; Lattices; Magnetic anisotropy; Magnetic field induced strain; Magnetic films; Magnetic flux; Magnetic properties; Magnetostriction; Perpendicular magnetic anisotropy; Saturation magnetization;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2003.815451
Filename :
1233078
Link To Document :
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