Title :
Exchange coupled composite media for perpendicular magnetic recording
Author :
Wang, Jian-Ping ; Shen, Weikang ; Bai, Jianmin
Author_Institution :
Dept. of Electr. & Comput. Eng., Minnesota Univ., USA
Abstract :
A novel exchange coupled composite (ECC) media was demonstrated and investigated systematically in this work. The writing capability and thermal stability were proved to be engineered separately based on this new media. Proper exchange coupling between [Co-PdSiO]n hard layer and FeSiO soft layer was implemented through a PdSi interlayer. Transmission electron microscope plan-view and cross section view observations, macromagnetic, and micromagnetic testing proved vertically grown magnetic grains with soft and hard regions for ECC media. The switching of the soft region of magnetic grains with the external field rotated the magnetization of the hard region of magnetic grains to about 45° with perpendicular direction, which resulted in a similar behavior as a dynamic tilted media. A much lower angle dispersion of the remanent coercivity for the ECC media was found, which is another advantage for such media. ECC media showed better recording performance compared to perpendicular media. Strong exchange coupling between the hard and soft regions of magnetic grains (exchange spring media) was discussed based on the above proposed layer structure too.
Keywords :
cobalt alloys; coercive force; composite materials; exchange interactions (electron); iron alloys; magnetic particles; magnetisation reversal; micromagnetics; perpendicular magnetic recording; thermal stability; transmission electron microscopes; Co-PdSiO; ECC media; FeSiO; PdSi interlayer; Ru underlayer; angle dispersion; cross section view; exchange coupled composite media; exchange coupling; exchange spring media; hard layer; hard region magnetization; macromagnetic testing; micromagnetic testing; oxygen doping; perpendicular magnetic recording; perpendicular recording; recording performance; remanent coercivity; soft layer; thermal stability; tilted media; transmission electron microscope; vertically grown magnetic grain; writing capability; Couplings; Magnetic force microscopy; Magnetic separation; Micromagnetics; Perpendicular magnetic recording; Soft magnetic materials; Thermal engineering; Thermal stability; Transmission electron microscopy; Writing; FeSiO; Ru underlayer; [Co–Pd]; exchange coupled composite (ECC) media; exchange spring media; oxygen doping; perpendicular recording; thermal stability; tilted media; writing capability;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2005.855278