DocumentCode :
1076604
Title :
Transition noise characteristics of PMR media with the synthetic antiferromagnetic coupled soft underlayer
Author :
Tahk, Y.W. ; Hong, S.Y. ; Hong, D.H. ; Lee, H.J. ; Lee, T.D.
Author_Institution :
Dept. of Mater. Sci. & Eng., Korea Adv. Inst. of Sci. & Technol., Taejon, South Korea
Volume :
40
Issue :
4
fYear :
2004
fDate :
7/1/2004 12:00:00 AM
Firstpage :
2564
Lastpage :
2566
Abstract :
Previously, we have shown that the transition position shift in a perpendicular recording medium with a recording layer and a soft underlayer (SUL) is one of the major noise sources in high-density recording when abrupt single pole head field is applied. In this paper, we have considered a head rise time calculated from micromagnetic calculation for three different damping constants of pole tip. Also, in order to reduce the transition position shift, a modified medium with a synthetic antiferromagnetically coupled (SAFC) SUL was investigated. The SAFC-SUL was assumed to the 20-nm-thick top SUL with Ms of 800 emu/cc and the 80-nm-thick bottom-SUL with magnetization saturation (Ms) of 1200 emu/cc separated by a 0.6 nm Ru layer. The media with SAFC-SUL showed lower noise and higher signal-to-noise ration than the media with conventional SUL. The lower noise in the SAFC-SUL seems to be associated with suppressed vortex formation in the SUL by synthetic antiferromagnetic coupling in the SUL.
Keywords :
antiferromagnetic materials; damping; magnetic recording noise; micromagnetics; perpendicular magnetic recording; ruthenium; soft magnetic materials; 0.6 nm; 20 nm; 80 nm; PMR media; Ru layer; SAFC-SUL; antiferromagnetic couple; head rise time; high-density recording; magnetization saturation; major noise source; micromagnetic calculation; micromagnetic simulation; perpendicular magnetic recording; perpendicular recording medium; pole tip damping constant; recording layer; signal-to-noise ration; single pole head field; synthetic soft underlayer; transition noise characteristics; transition position shift reduction; vortex formation suppression; Antiferromagnetic materials; Magnetic heads; Magnetic noise; Magnetic separation; Magnetostatics; Micromagnetics; Noise reduction; Perpendicular magnetic recording; Saturation magnetization; Soft magnetic materials; Antiferromagnetically coupled soft underlayer; SUL; micromagnetic simulation; noise; perpendicular magnetic recording;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2004.830469
Filename :
1325569
Link To Document :
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