DocumentCode :
1485114
Title :
Time decay of magnetization in longitudinal CoCrTa/Cr high density thin film media
Author :
Han, De-Hua ; Zhu, Jian-Gang ; Judy, Jack H. ; Sivertsen, John M.
Author_Institution :
Minnesota Univ., Minneapolis, MN, USA
Volume :
33
Issue :
5
fYear :
1997
fDate :
9/1/1997 12:00:00 AM
Firstpage :
3025
Lastpage :
3027
Abstract :
A systematic experimental study of the time decay of the magnetization (M-decay) in longitudinal CoCrTa/Cr high density thin film media with different thicknesses at various levels of in situ reverse magnetic field which simulates the demagnetization field in recorded bits is presented. Two series of thin film media with the thickness of magnetic layer ranging from 90 Å to 1500 Å were deposited by RF/DC magnetron sputtering. The magnetic properties and M-decay were measured at room temperature using a vibrating sample magnetometer and an alternating gradient force magnetometer. The emphasis was placed on the M-decay at various film thickness. It is found that the coefficient of magnetic viscosity is not a constant over 5 decades decay time (sec.), the M-decay percentage exhibits a well pronounced peak at the reverse field value-of the remanent coercivity, and the mechanism of M-decay is apparently different in thin and thick film recording media. The mechanisms of affecting the magnetic viscosities of thermally-induced time decay are explored
Keywords :
chromium; chromium alloys; cobalt alloys; coercive force; demagnetisation; ferromagnetic materials; hard discs; magnetometers; remanence; sputter deposition; tantalum alloys; 90 to 1500 angstrom; CoCrTa-Cr; M-decay; RF/DC magnetron sputtering; alternating gradient force magnetometer; demagnetization field; in situ reverse magnetic field; longitudinal high density thin film media; magnetic viscosity; magnetization; remanent coercivity; thermally-induced time decay; vibrating sample magnetometer; Chromium; Demagnetization; Force measurement; Magnetic field measurement; Magnetic films; Magnetization; Magnetometers; Sputtering; Temperature measurement; Viscosity;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.617832
Filename :
617832
Link To Document :
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