DocumentCode :
22884
Title :
L1 _{0} -Ordered FePt-Based Perpendicular Magnetic Recording Media for Heat-Assisted Magnetic Recording
Author :
Varaprasad, Bollapragada S. D. C. S. ; Chen, Mei ; Takahashi, Yukiko K. ; Hono, Kazuhiro
Author_Institution :
Nat. Inst. for Mater. Sci., Tsukuba, Japan
Volume :
49
Issue :
2
fYear :
2013
fDate :
Feb. 2013
Firstpage :
718
Lastpage :
722
Abstract :
We update our continuous effort to optimize the microstructures and magnetic properties of FePt-X granular films to achieve an ideal media structure on glass substrates for heat-assisted magnetic recording. For segregant X, we investigated C, SiO2 , TiO2 and their mixtures. While FePt-C granular films show excellent inplane granular structure for the thickness (t) smaller than 6 nm, a second layer appears for t >; 6 nm. On the other hand, FePt-TiO2 granular film shows a columnar structure with a smooth surface, but the inplane morphology is interconnected. To enhance the phase separation and realize the laterally isolated columnar structure, we mixed the segregant materials of SiO2 or TiO2 with C. We also used the thin FePt-C films as templates for FePt-X(X=SiO2 and TiO2) since the FePt-C showed good particle separation with the fine particle size. Based on these experimental results, we discuss how to attain the ideal media structure for heat-assisted magnetic recording.
Keywords :
carbon; granular structure; iron alloys; magnetic particles; magnetic thin films; mixtures; nanomagnetics; nanoparticles; particle size; perpendicular magnetic recording; phase separation; platinum alloys; silicon compounds; surface morphology; titanium compounds; FePt-C; FePt-C-SiO2; FePt-C-TiO2; FePt-SiO2; FePt-TiO2; L1 0-ordered FePt-based perpendicular magnetic recording media; SiO2; columnar structure; fine particle size; glass substrates; granular films; heat-assisted magnetic recording; inplane granular structure; inplane morphology; laterally isolated columnar structure; magnetic properties; media structure; microstructures; mixtures; phase separation; smooth surface; Glass; Heat-assisted magnetic recording; Magnetization; Media; Microstructure; Perpendicular magnetic recording; FePt; heat-assisted magnetic recording;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2012.2218227
Filename :
6416998
Link To Document :
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