DocumentCode
1413774
Title
Thermal stability and nanostructure of CoCrPt longitudinal recording media
Author
Yu, Mingjun ; Doerner, Mary F. ; Sellmyer, David J.
Author_Institution
Center for Mater. Res. & Anal., Nebraska Univ., Lincoln, NE, USA
Volume
34
Issue
4
fYear
1998
fDate
7/1/1998 12:00:00 AM
Firstpage
1534
Lastpage
1536
Abstract
We report a systematic study of activation volumes and their correlation with physical grain sizes and thermal stability in CoCrPt media fabricated by magnetron sputtering. Different underlayers and CoCrPt layer thicknesses were used to provide a range of lateral grain sizes, Mrδ (product of remanence Mr and film thickness δ) values, and remanence coercivities. Two methods, namely the field-sweep-rate dependence of coercivity and measurements of magnetic viscosity and irreversible susceptibility, were used to determine the activation volumes and the results obtained from the two methods are in reasonable agreement. For CoCrPt layer thickness from 10 nm to 27 nm, the activation volumes of these films range from about 3×10-18 cm3 to 5×10-18 cm 3, which indicate that these films are thermally stable. Furthermore, for most samples the activation volumes are close to the volumes of the physical CoCrPt grains. This suggests that the magnetic grains in these films switch almost independently. Films with physical grain sizes small enough to approach thermal instability are also discussed
Keywords
chromium alloys; cobalt alloys; grain size; magnetic recording; magnetic susceptibility; magnetic thin films; nanostructured materials; platinum alloys; remanence; sputtered coatings; thermal stability; CoCrPt; CoCrPt longitudinal recording media; activation volumes; coercivity; field-sweep-rate dependence; irreversible susceptibility; lateral grain sizes; layer thicknesses; magnetic viscosity; magnetron sputtering; nanostructure; physical grain sizes; thermal stability; underlayers; Coercive force; Grain size; Magnetic field measurement; Magnetic films; Remanence; Sputtering; Switches; Thermal stability; Viscosity; Volume measurement;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/20.706606
Filename
706606
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