Title :
Magnetization reversal and activation volume of perpendicular recording media
Author :
Shimatsu, T. ; Uwazumi, H. ; Muraoka, H. ; Nakamura, Y.
Author_Institution :
Res. Inst. of Electr. Commun., Tohoku Univ., Sendai, Japan
fDate :
9/1/2002 12:00:00 AM
Abstract :
Magnetization reversal and thermal agitation of magnetization are quantitatively evaluated using a pulse magnetometer for several kinds of perpendicular magnetic recording media. In media with well-segregated grains, magnetization reversal is confirmed to proceed by coherent switching of magnetization, however, intergranular exchange coupling reduces the remanence coercivity, especially in superlattice media and amorphous/granular composite media. The activation volume in CoCr-based alloy media is experimentally indicated to be nearly the same as that of physical grain volume. It is successfully shown that media noise has a clear relation to both activation diameter and the strength of intergranular exchange coupling. It is likely that the values of activation diameter and the strength of intergranular exchange coupling are main factors to determine the cluster size of magnetization, and they must be reduced to improve the media noise performance.
Keywords :
chromium alloys; cobalt alloys; coercive force; exchange interactions (electron); ferromagnetic materials; grain size; magnetic recording noise; magnetic switching; magnetic thin films; magnetisation reversal; perpendicular magnetic recording; remanence; sputtered coatings; Co66Cr20Pt10B4; Co68Cr20Pt10Ta2; Co70Cr20Pt10; CoCr-based perpendicular recording media; activation diameter; activation volume; amorphous composite media; coherent magnetization switching; dc magnetron sputtering; granular composite media; intergranular exchange coupling; magnetization cluster size; magnetization reversal; media noise; pulse magnetometer; remanence coercivity; superlattice media; thermal agitation of magnetization; well-segregated grains; Amorphous materials; Coercive force; Couplings; Magnetic superlattices; Magnetic switching; Magnetization reversal; Magnetometers; Noise reduction; Perpendicular magnetic recording; Remanence;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2002.801790