DocumentCode :
1075870
Title :
Novel soft magnetic underlayer for double-Layered perpendicular magnetic recording media: electroless-deposited films of CoNiFe-based alloy
Author :
Asahi, Toru ; Yokoshima, Tokihiko ; Kawaji, Jun ; Osaka, Tetsuya ; Ohta, Hiroshi ; Ohmori, Masahiro ; Sakai, Hiroshi
Author_Institution :
Dept. of Nano-Sci. & Nano-Eng., Waseda Univ., Tokyo, Japan
Volume :
40
Issue :
4
fYear :
2004
fDate :
7/1/2004 12:00:00 AM
Firstpage :
2356
Lastpage :
2358
Abstract :
We present a novel fabrication process for a soft magnetic underlayer of a CoNiFe-based alloy for a double-layered perpendicular magnetic recording medium using electroless deposition. The electroless-deposited CoNiFeP film is focused on as the soft magnetic underlayer. The CoNiFeP soft magnetic underlayer was fabricated on a 2.5-in glass disk with a Ni/Ti seed layer and the substrate was rotated in an electroless deposition bath under a magnetic field applied. The CoNiFeP underlayer as deposited was flattened using a chemical mechanical polishing, and the film thickness thereby became about 1 μm. The in-plane coercivity and saturation magnetic flux density of the CoNiFeP underlayer were less than 2 Oe and more than 12 kG, respectively. The magnetic domain observation revealed that the CoNiFeP underlayer electroless deposited under the magnetic field applied and the substrate rotated exhibited no marked domain boundary, vanishing a spike noise in read-write experiments. A double-layered perpendicular magnetic recording medium with the electroless-deposited CoNiFeP film showed a sufficient overwrite performance and high signal-to-noise ratio as compared with a typical soft magnetic underlayer fabricated using sputtering.
Keywords :
chemical mechanical polishing; cobalt alloys; electroless deposition; iron alloys; magnetic fields; magnetic recording noise; nickel alloys; perpendicular magnetic recording; soft magnetic materials; substrates; 1 micron; 2.5 inches; CoNiFe-based alloy; CoNiFeP; CoNiFeP underlayer; chemical mechanical polishing; domain boundary; double-layered perpendicular magnetic recording medium; electroless-deposited films; fabrication process; film thickness; glass disk; in-plane coercivity; magnetic domain observation; magnetic field; overwrite performance; read-write experiments; saturation magnetic flux density; seed layer; signal-to-noise ratio; soft magnetic underlayer; spike noise; Fabrication; Glass; Magnetic domains; Magnetic fields; Magnetic films; Magnetic flux; Perpendicular magnetic recording; Saturation magnetization; Soft magnetic materials; Substrates; CoNiFe-based alloy; double-layered perpendicular magnetic recording media; electroless deposition; soft magnetic underlayers;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2004.832123
Filename :
1325503
Link To Document :
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