DocumentCode :
3560644
Title :
Fabrication of \\hbox {Fe}_{16}\\hbox {N}_{2} Films by Sputtering Process and Experimental Investigation of Origin of Giant Saturation Magnetization in
Author :
Wang, Jian-Ping ; Ji, Nian ; Liu, Xiaoqi ; Xu, Yunhao ; S??nchez-Hanke, C. ; Wu, Yiming ; de Groot, F.M.F. ; Allard, Lawrence F. ; Lara-Curzio, Edgar
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Minnesota, Minneapolis, MN, USA
Volume :
48
Issue :
5
fYear :
2012
fDate :
5/1/2012 12:00:00 AM
Firstpage :
1710
Lastpage :
1717
Abstract :
We present a systematic study to address a longstanding mystery in magnetic materials and magnetism, whether there is giant saturation magnetization in Fe16N2 and why. Experimental results based on sputtered thin film samples are presented. The magnetism of Fe16N2 is discussed systematically from the aspects of material processing, magnetic characterization and theoretical investigation. It is observed that thin films with Fe16N2+Fe8N mixture phases and high degree of N ordering, exhibit a saturation magnetization up to 2.68T at room temperature, which substantially exceeds the ferromagnetism limit based on the traditional band magnetism understanding. From X-ray magnetic circular Dichorism (XMCD) experiment, transport measurement and first-principle calculation based on LDA+U method, it is both experimentally and theoretically justified that the origin of giant saturation magnetization is correlated with the formation of highly localized 3d electron states in this Fe-N system. A large magnetocrystalline anisotropy for such a material is also discussed. Our proposed “cluster+atom” theory provides promising directions on designing novel magnetic materials with unique performances.
Keywords :
ab initio calculations; density functional theory; ferromagnetic materials; iron compounds; magnetic anisotropy; magnetic circular dichroism; magnetic moments; magnetic thin films; magnetisation; sputter deposition; Fe16N2; X-ray magnetic circular dichorism; cluster-atom theory; ferromagnetism; first-principle calculation; giant saturation magnetization; local density approximation; magnetic moment; magnetic thin films; magnetocrystalline anisotropy; sputtering process; temperature 293 K to 298 K; Gallium arsenide; Iron; Magnetometers; Perpendicular magnetic anisotropy; Saturation magnetization; Sputtering; $hbox{Fe}_{16}hbox{N}_{2}$ ; FeN; X-ray magnetic circular dichorism; XMCD; giant saturation magnetization; high magnetic moment; magnetic head; permanent magnet;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
Conference_Location :
5/1/2012 12:00:00 AM
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2011.2170156
Filename :
6187762
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