DocumentCode :
1321826
Title :
Imaging the Magnetization Processes in Epitaxial Exchange Coupled SmCo _{5} /Fe/SmCo _{5} Trilayer
Author :
Neu, V. ; Zimmermann, S. ; Sawatzki, S. ; Mönch, I. ; Schultz, L.
Author_Institution :
IFW Dresden, Dresden, Germany
Volume :
48
Issue :
11
fYear :
2012
Firstpage :
3644
Lastpage :
3647
Abstract :
A detailed understanding of the magnetization processes in an exchange coupled SmCo5/Fe/SmCo5 trilayer is derived from imaging the domain configuration of the sample in a succession of remanent states by magnetic force microscopy. Domain nucleation and domain wall movement processes are identified and are interpreted in terms of the dominating coercivity mechanism. As in single hard magnetic SmCo5 layers, strong pinning of domain walls governs the magnetization reversal and determines coercivity. The coupling to the Fe layer, however, leads to an increased domain size in the thermally demagnetized state and to a larger nucleation density prior to the irreversible magnetization switching. Due to slightly different switching fields of the two SmCo5 layers, a compensated state can be adjusted, in which the moments of the Fe layer form 180° spin spirals with laterally varying chirality. The magnetic contrast arising from these spin spirals is imaged and the irreversible changes in a small in-plane field perpendicular to the easy axis are studied.
Keywords :
chirality; cobalt alloys; coercive force; demagnetisation; exchange interactions (electron); interface magnetism; iron; magnetic domain walls; magnetic epitaxial layers; magnetic force microscopy; magnetic moments; magnetic switching; metallic epitaxial layers; nucleation; permanent magnets; remanence; samarium alloys; spin systems; SmCo5-Fe-SmCo5; chirality; coercivity; domain nucleation density; domain wall movement process; epitaxial exchange coupled trilayers; irreversible magnetization switching; magnetic force microscopy; magnetic moments; magnetization imaging process; remanent states; single hard magnetic layers; spin spirals; thermally-demagnetized state; Iron; Magnetic domain walls; Magnetic domains; Magnetic hysteresis; Magnetic resonance imaging; Magnetization; Saturation magnetization; Epitaxial multilayer; exchange-coupling; magnetic force microscopy; magnetization reversal;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2012.2195299
Filename :
6332864
Link To Document :
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