DocumentCode :
1449124
Title :
CoFeSiO/SiO _{2} Multilayer Granular Films With Very Narrow Ferromagnetic Resonant Linewidth
Author :
Ikeda, Kenji ; Suzuki, Toshimasa ; Sato, Toshiro
Author_Institution :
R&D Center, Taiyo Yuden Co., Ltd., Takasaki, Japan
Volume :
45
Issue :
10
fYear :
2009
Firstpage :
4290
Lastpage :
4293
Abstract :
In order to fabricate GHz-band micro-magnetic devices, we have investigated the high-frequency permeability of CoFeSiO/SiO2 multilayer granular films comprising alternate stacks of granular and insulator layers, which can enable us to control the magnetic grain size and intergrain spacing along the film thickness direction independent of each other. A very narrow ferromagnetic resonance (FMR) linewidth was obtained under specific film conditions. A sharp FMR peak was obtained for granular layer and insulator layer thicknesses of 6 and 1 nm, respectively. The CoFe/SiO2 volume ratio of the granular layer has a strong influence on the FMR linewidth. A high CoFe/SiO2 volume ratio resulted in a very narrow FMR linewidth. HR-TEM observation of a film with a high CoFe/SiO2 volume ratio revealed a well-defined multilayer granular structure and a homogeneous CoFe grain size, which seem to be necessary for obtaining a very narrow FMR linewidth. The narrowest FMR linewidth observed in this study is 420 MHz, for an FMR frequency of 2.4 GHz, a permeability of 380, and a damping factor alpha of 0.007.
Keywords :
cobalt compounds; ferromagnetic resonance; grain size; granular materials; granular structure; iron compounds; magnetic multilayers; magnetic permeability; magnetic thin films; micromagnetics; silicon compounds; transmission electron microscopy; CoFeSiO-SiO2; FMR frequency; FMR linewidth; GHz-band micromagnetic devices; HR-TEM; film thickness; frequency 2.4 GHz; grain size; high-frequency permeability; insulator layers; intergrain spacing; magnetic grain size; multilayer granular films; multilayer granular structure; narrow ferromagnetic resonant linewidth; size 1 nm; size 6 nm; Ferromagnetic resonance (FMR); granular; linewidth; permeability;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2009.2023616
Filename :
5257004
Link To Document :
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