DocumentCode :
1330351
Title :
Oxygen Effect on the Surface Structure and Magnetism of Ultrathin CoNi/Cu(001) Alloy Films
Author :
Wei Pan ; Ying-Ta Shih ; Kuo-Long Lee ; Wen-He Shen ; Zheng-Zhe Wu ; Chih-Cheih Tsai
Author_Institution :
Dept. of Phys., Nat. Chung Cheng Univ., Chiayi, Taiwan
Volume :
47
Issue :
10
fYear :
2011
Firstpage :
3883
Lastpage :
3885
Abstract :
We present a study of the structure and the corresponding magnetic property of Co5Ni95/Cu(001) ultrathin films during exposure to oxygen. For a film below the critical thickness (tc) of spin reorientation transition (SRT) from in-plane to a perpendicular direction, the SRT occurs while introducing oxygen for 25 Langmuir (L), followed by decreasing the perpendicular magnetization for further oxygen exposure. For a film above tc, the perpendicular magnetization is enhanced while introducing oxygen for 25 L and decreases during additional oxygen exposure. In both these cases, the interlayer distance (d) varies only 1.1% during the SRT or the enhancement of the perpendicular magnetization, whereas the d increases substantially when perpendicular magnetization disappears. This implies that the oxygen-induced SRT of the CoNi/Cu(001) alloy films is not materially affected by the d of the surface layer. This might indicate the formation of antiferromagnetic oxide that induces the SRT of CoNi/Cu(001) alloy films.
Keywords :
antiferromagnetic materials; cobalt alloys; copper alloys; magnetic thin films; magnetisation; metallic thin films; nickel alloys; perpendicular magnetic anisotropy; spin dynamics; surface magnetism; surface structure; Co5Ni95-Cu; antiferromagnetic oxide formation; critical thickness; in-plane direction; interlayer distance; magnetic property; oxygen effect; oxygen exposure; oxygen-induced spin reorientation transition; perpendicular direction; perpendicular magnetization enhancement; surface layer; surface structure; ultrathin CoNi-Cu(001) alloy films; Anisotropic magnetoresistance; Magnetization; Magnetostriction; Nickel; Perpendicular magnetic anisotropy; Co; Ni; magnetic anisotropy; magnetic ultrathin film; oxide; spin reorientation transition; surface spacing;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2011.2157327
Filename :
6027770
Link To Document :
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