DocumentCode :
1192151
Title :
Structural and magnetic anisotropy properties in epitaxial Fe films on Al0.48In0.52As(001)
Author :
Tournerie, N. ; Schieffer, P. ; Lépine, B. ; Lallaizon, C. ; Jézéquel, G.
Author_Institution :
Rennes I Univ., France
Volume :
41
Issue :
10
fYear :
2005
Firstpage :
3322
Lastpage :
3324
Abstract :
The structural and magnetic properties of epitaxial Fe(001) ultrathin films (0.9-17 nm) deposited by molecular beam epitaxy at room temperature on Al0.48In0.52As(001) layers have been studied by magneto-optical Kerr effect and X-ray diffraction (XRD) experiments. Fe grows in a body centered cubic (bcc) structure with epitaxial relationship Fe(001)<100>//Al0.48In0.52As(001)<100>. XRD measurements demonstrate a pseudomorphous growth of Fe films up to 4.4 nm and then the layers progressively relax with the Fe thickness. All Fe films are ferromagnetic at room temperature and show an in-plane magnetization with a fourfold anisotropy (with <100> as easy axes) superimposed to an uniaxial anisotropy (with [110] as easy axis). The uniaxial contribution finds its origin essentially in the interface anisotropy, as it is the case for the Fe/GaAs(001) system. We found that in the pseudomorphous range of the Fe films, the volume fourfold anisotropy constant is 60% larger than the bulk Fe value. We attribute this increase to the in-plane biaxial tensile strain in the films through magneto-elastic coupling effects.
Keywords :
Kerr magneto-optical effect; X-ray diffraction; aluminium compounds; ferromagnetic materials; iron; magnetic anisotropy; metallic epitaxial layers; tensile strength; Fe; epitaxial films; magnetic anisotropy property; magneto-elastic coupling effects; magneto-optical Kerr effect; molecular beam epitaxy; structural property; ultrathin films; x-ray diffraction; Anisotropic magnetoresistance; Iron; Kerr effect; Magnetic anisotropy; Magnetic films; Magnetic properties; Magnetooptic effects; Molecular beam epitaxial growth; Temperature; X-ray scattering; Iron; Kerr effect (magneto-optic); magnetic anisotropy; strain;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2005.855200
Filename :
1519293
Link To Document :
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