Tw. Wu et al., Wear of ultrathin carbon overcoat characterized by microwear scan and Auger electron spectroscopy, J VAC SCI A, 19(3), 2001, pp. 986-992
A new methodology was developed to characterize the tribological performanc
e of ultrathin carbon coatings by the microwear scan and Auger electron spe
ctroscopy. With the magnetic recording application in mind, two 5-nm-thick
carbon coatings were deposited on magnetic disks for the study. In a microw
ear scan process, then were two competing mechanisms that lend to the carbo
n coating failure - the coating wearoff and the coating structural damage m
echanisms. The coating wearoff was a continuous process and always active,
whereas the coating structural damage appeared more in a disruptive manner
as the applied normal load approached a critical level. The term coating we
ar rate, defined as the coating thickness reduction per unit applied normal
load, was adopted in this microwear scan test. Two simulation models based
on carbon (272 eV) and cobalt (775 eV) Auger electron signals, respectivel
y, were developed to calculate the carbon residual thickness inside the wea
r track. Because of the difference in signal intensities, the coating resid
ual thickness acquired From the carbon Auger electron signal turned out to
be much more robust and reproducible than the cobalt signal. Based on these
results, a tribological characteristic chart, which contained both the coa
ting wear rate and critical load parameters, is proposed to offer a better
understanding and ranking capability towards the tribological performance o
f ultrathin coating systems. (C) 2001 American Vacuum Society.