DocumentCode :
787274
Title :
Computer Simulation of coercive force and thermal viscosity in perpendicular recording media
Author :
Igarashi, Masukazu ; Hara, Miki ; Suzuki, Yoshio ; Nakamura, Atsushi ; Sugita, Yutaka
Author_Institution :
Central Res. Lab., Hitachi Ltd., Tokyo, Japan
Volume :
39
Issue :
5
fYear :
2003
Firstpage :
2303
Lastpage :
2305
Abstract :
The micromagnetic simulations for perpendicular recording media with incoherent magnetization rotation was performed by dividing a grain into subgrains in the direction of film thickness. When intra-grain exchange coupling was smaller, incoherent magnetization rotation occurred, leading to a stronger thermal fluctuation effect and lower coercive force Hc. It was found that the critical thickness δc exists, beyond which the incoherent magnetization rotation occurs. δc is approximately proportional to 2.5*(A/Ku)12/, where A is the intra-grain exchange stiffness constant and Ku is the uniaxial perpendicular anisotropy energy. In the incoherent magnetization rotation, the decreasing rate of Hc by logarithmic time (in thermal viscosity slopes) was larger than that for coherent rotation. The calculations were in good agreement with the experimental coercive forces and thermal viscosity slopes.
Keywords :
coercive force; disc drives; exchange interactions (electron); grain size; hard discs; magnetic aftereffect; magnetic thin films; micromagnetics; perpendicular magnetic anisotropy; perpendicular magnetic recording; thermal stability; coercive force; coherent rotation; computer simulation; critical thickness; film thickness; grain; hard-disk drives; incoherent magnetization rotation; intra-grain exchange coupling; intra-grain exchange stiffness constant; logarithmic time; micromagnetic simulations; perpendicular recording media; subgrains; thermal fluctuation effect; thermal viscosity slopes; uniaxial perpendicular anisotropy energy; Coercive force; Computational modeling; Computer simulation; Couplings; Fluctuations; Magnetization; Micromagnetics; Perpendicular magnetic recording; Thermal force; Viscosity;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2003.816279
Filename :
1233058
Link To Document :
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