DocumentCode
1076389
Title
Direct measurement in the nanosecond regime of the remanent coercivity in perpendicular media
Author
Voznyuk, V.G. ; Misra, A. ; Doyle, W.D. ; Visscher, P.B.
Author_Institution
Dept. of Phys. & Astron., Univ. of Alabama, Tuscaloosa, AL, USA
Volume
40
Issue
4
fYear
2004
fDate
7/1/2004 12:00:00 AM
Firstpage
2501
Lastpage
2503
Abstract
The switching behavior on a nanosecond time scale of a CoCrPt-based perpendicular medium has been studied both experimentally and by simulation. The sample was composed of a granular storage layer with a saturation remanence close to unity and a soft underlayer. The time-dependent remanent coercivity was measured down to 2.3 ns. The results are in good agreement with the extrapolation of the long time data, in accordance with the thermal switching model proposed by Sharrock, with n=2/3. The dependence of the switching field in the nanosecond regime on the initial remanence was studied. The remanent coercivity of the saturated sample was found to be lower than that of a partially demagnetized sample. This counter-intuitive behavior was confirmed by simulation, which elucidated the role of the local demagnetizing field in the switching process. The simulation also showed that the effect is sensitive to the time scale of the initial demagnetization process.
Keywords
cobalt alloys; magnetic switching; magnetisation reversal; perpendicular magnetic recording; remanence; time resolved spectra; 2.3 ns; CoCrPt; CoCrPt-based perpendicular medium; counter-intuitive behavior; demagnetization process; direct measurement; extrapolation; granular storage layer; local demagnetizing field; magnetization reversal; nanosecond regime; partially demagnetized sample; perpendicular magnetic recording; perpendicular media; saturation remanence; soft underlayer; switching behavior; switching field; thermal switching; time-dependent remanent coercivity; Coercive force; Demagnetization; Extrapolation; Extraterrestrial measurements; Magnetic field measurement; Magnetization; Perpendicular magnetic recording; Pulse measurements; Remanence; Time measurement; Magnetization reversal; perpendicular magnetic recording;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2004.832478
Filename
1325551
Link To Document