DocumentCode
1549070
Title
Ultrathin diamond-like carbon films deposited by filtered carbon vacuum arcs
Author
Anders, André ; Fong, Walton ; Kulkarni, Ashok V. ; Ryan, Francis W. ; Bhatia, C.Singh
Author_Institution
Dept. of Mech. Eng., California Univ., Berkeley, CA, USA
Volume
29
Issue
5
fYear
2001
fDate
10/1/2001 12:00:00 AM
Firstpage
768
Lastpage
775
Abstract
Ultrathin (<5 nm) hard carbon films are of great interest to the magnetic storage industry as the areal density approaches 100 Gb/in 2. These films are used as overcoats to protect the magnetic layers on disk media and the active elements of the read-write slider. Tetrahedral amorphous carbon films can be produced by filtered cathodic arc deposition, but the films will only be accepted by the storage industry if the "macroparticle" issue has been solved. Better plasma filters have been developed over recent years. Emphasis is put on the promising twist filter system-a compact, open structure that operates with pulsed arcs and high magnetic field. Based on corrosion tests it is shown that the macroparticle reduction by the twist filter is satisfactory for this demanding application, while plasma throughput is very high. Ultrathin hard carbon films have been synthesized using S-filter and twist filter systems. Film properties such as hardness, elastic modulus, wear, and corrosion resistance have been tested
Keywords
amorphous state; carbon; magnetic storage; vacuum arcs; vacuum deposited coatings; vacuum deposition; 5 nm; C film deposition; I´macroparticle; S-filter; Tetrahedral amorphous carbon films; areal density; corrosion resistance; corrosion tests; disk media; elastic modulus; filtered carbon vacuum arcs; filtered cathodic arc deposition; high magnetic field; magnetic layers; magnetic storage; open structure; overcoats; plasma filters; plasma throughput; pulsed arcs; read-write slider; storage; twist filter system-a; ultrathin diamond-like carbon films; ultrathin hard carbon films; wear; Amorphous magnetic materials; Corrosion; Diamond-like carbon; Filters; Magnetic films; Magnetic memory; Magnetic separation; Plasma applications; Protection; Testing;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.964472
Filename
964472
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