Title :
Fabrication, Magnetic, and R/W Properties of Nitrogen-Ion-Implanted Co/Pd and CoCrPt Bit-Patterned Medium
Author :
Ajan, Antony ; Sato, Kenji ; Aoyama, Nobuhide ; Tanaka, Tsutomu ; Miyaguchi, Yusuke ; Tsumagari, Kanako ; Morita, Tadashi ; Nishihashi, Tsutomu ; Tanaka, Atsushi ; Uzumaki, T.
Author_Institution :
Fujitsu Labs. Ltd., Atsugi, Japan
fDate :
6/1/2010 12:00:00 AM
Abstract :
A method of making a cost-effective bit-patterned medium combining: 1) a pattern imprint; 2) ion doping; and 3) an ashing process is described. The Nitrogen ion was doped to change the magnetic properties of the Co/Pd and CoCrPt magnetic layer. The Nitrogen ion induces surface and lattice, and the exchange coupling strength changes during doping which suppress the magnetization and anisotropy of Co/Pd and CoCrPt magnetic layers. This can be achieved at relatively lower dosages so that a subsequent ashing process creates a smooth surface. The thermal stability of doped film and dot was good for practical applications. Monte-Carlo simulations were used to estimate the lateral ionic distribution within the dot region and compared with magnetic-force microscopy. To demonstrate this technique, areal densities of 134 Gb/in2 on Co/Pd media and 250 Gb/in2 on CoCrPt media are shown.
Keywords :
Monte Carlo methods; chromium compounds; cobalt compounds; doping; exchange interactions (electron); ion implantation; magnetic anisotropy; magnetic force microscopy; nitrogen; CoCrPt:N; CoPd:N; Monte-Carlo simulations; R/W properties; anisotropy; bit-patterned medium; exchange coupling strength; ion doping; ionic distribution; magnetic force microscopy; magnetic layer; magnetic properties; magnetization; nitrogen-ion-implantation; pattern imprint; thermal stability; Anisotropic magnetoresistance; Couplings; Doping; Fabrication; Lattices; Magnetic anisotropy; Magnetic properties; Magnetization; Nitrogen; Perpendicular magnetic anisotropy; Bit-patterned medium; Co/Pd Multilayer; CoCrPt; Monte-Carlo simulation; ion implantation; magnetic anisotropy; patterned medium; perpendicular magnetic anisotropy; recording media; thermal stability;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2010.2043647