DocumentCode :
1350004
Title :
Evaluation of amorphous diamond-like carbon-nitrogen films as wear protective coatings on thin film media and thin film head sliders
Author :
Sivertsen, John M. ; Wang, Geng ; Chen, Ga-Lane ; Judy, Jack H.
Author_Institution :
Center for Micromagn. & Inf. Technol., Minnesota Univ., Minneapolis, MN, USA
Volume :
33
Issue :
1
fYear :
1997
fDate :
1/1/1997 12:00:00 AM
Firstpage :
926
Lastpage :
931
Abstract :
As the magnetic data storage industry strives to achieve ultra-high recording densities requiring fly heights of less than one microinch, the tribology of the head-disk interface (HDI) is a limiting factor in disk drive design. Amorphous diamond-like-carbon (DLC) films have been the materials of choice for wear-protective coatings. Various amorphous DLC type coatings have been developed. The earliest DLC material was DC magnetron sputtered pure carbon films. Recent developments have produced C:H (hydrogenated-carbon) and C:N (carbon-nitrogen) films with greater wear-resistance than pure C film. Our intent is to describe and evaluate the wear-resistance performance of amorphous C:N films as wear-protective overcoats on thin film media and thin film sliders. Both C:H and C:N films have demonstrated superiority over DC magnetron sputtered pure carbon films. The bond character, microhardness, surface roughness features, and the physical nature of initial wear damage influence wear-resistance performance significantly. A recent report of nano-indentor measurements and wear-resistance performance confirmed the superiority of RF diode and DC magnetron Facing Target Sputtering (FTS) of thin C:N coatings over other DLC films
Keywords :
amorphous state; carbon; magnetic heads; magnetic recording; magnetic thin film devices; nitrogen; sputtered coatings; wear resistant coatings; C:N; DC magnetron sputtering; RF diode sputtering; amorphous diamond-like carbon-nitrogen film; bonding; facing target sputtering; fly height; head-disk interface; magnetic data storage; microhardness; nanoindentation; surface roughness; thin film head slider; thin film media; tribology; ultra-high recording density; wear protective coating; Amorphous magnetic materials; Amorphous materials; Coatings; Disk recording; Magnetic films; Magnetic materials; Magnetic recording; Memory; Sputtering; Tribology;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.560133
Filename :
560133
Link To Document :
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