DocumentCode :
987049
Title :
Compositional Dependence of g-Factor and Damping Constant of GdFeCo Amorphous Alloy Films
Author :
Kato, T. ; Nakazawa, K. ; Komiya, R. ; Nishizawa, N. ; Tsunashima, S. ; Iwata, S.
Author_Institution :
Dept. of Quantum Eng., Nagoya Univ., Nagoya
Volume :
44
Issue :
11
fYear :
2008
Firstpage :
3380
Lastpage :
3383
Abstract :
Time-domain magnetization dynamics of sputtered GdFeCo (30 nm) amorphous alloy films was measured by pump-probe method using high-power ultra-short pulse fiber laser. The effective g-factor g eff and effective damping constant alphaeff of the GdFeCo films were estimated by using a numerical calculation of Landau-Lifshitz-Gilbert equation. The precessional frequency took a maximum near the magnetization compensation composition C M of the GdFeCo, while the estimated g eff and alphaeff increased around the angular momentum compensation composition C A. The compositional dependences of g eff and alphaeff were roughly described by a mean-field model. The g eff and alphaeff were also estimated from the ferromagnetic resonance (FMR) spectra, and the data from the FMR spectra agreed well with those from the pump-probe measurement except for the composition near C M. The FMR method was unable to excite the magnetization near C M because of the small net magnetization.
Keywords :
amorphous magnetic materials; cobalt alloys; ferrimagnetic materials; ferromagnetic resonance; g-factor; gadolinium alloys; high-speed optical techniques; iron alloys; magnetic thin films; magnetisation; metallic thin films; sputtered coatings; time-domain analysis; GdFeCo; Landau-Lifshitz-Gilbert equation; angular momentum compensation composition; effective damping constant; effective g-factor; ferromagnetic resonance spectra; high-power ultrashort pulse fiber laser; magnetization compensation composition; mean-field model; pump-probe method; size 30 nm; sputtered amorphous alloy films; time domain analysis; time-domain magnetization dynamics; Amorphous magnetic films; magnetic resonance; optical fiber lasers; rare earth alloys; time domain analysis;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2008.2001679
Filename :
4671127
Link To Document :
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