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Publication: Material transfer mechanisms between aluminum and fluorinated carbon interfaces

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Title Material transfer mechanisms between aluminum and fluorinated carbon interfaces
Authors/Editors* F.G. Sen, Y. Qi, A.T. Alpas
Where published* Acta Materialia
How published* Journal
Year* 2011
Volume 59
Number 7
Pages 2601-2614
Publisher Elsevier
Keywords
Link http://www.sciencedirect.com/science?_ob=ArticleURL&_udi=B6TW8-523B0KT-1&_user=1010624&_coverDate=04%2F30%2F2011&_rdoc=1&_fmt=high&_orig=gateway&_origin=gateway&_sort=d&_docanchor=&view=c&_searchStrId=1674960321&_rerunOrigin=google&_acct=C000050266&_version=1&_urlVersion=0&_userid=1010624&md5=85a636f3106263aab64674e62fb8d4dc&searchtype=a
Abstract
First-principles calculations and sliding contact experiments were conducted to elucidate material transfer mechanisms between aluminum and fluorinated carbon (diamond, diamond-like carbon (DLC)) surfaces. An interface model that examined interactions between Al (1 1 1) and F-terminated diamond (1 1 1) surfaces revealed that F atoms would transfer to the Al surface in increasing quantities with an increase in the contact pressure, and this F transfer would lead to the formation of a stable AlF3 compound at the Al surface. The presence of AlF3 on the transfer layers formed at the Al counterface placed in sliding contact against DLC containing 3 at.% F was confirmed by both X-ray photoelectron spectroscopy and cross-sectional focussed-ion beam transmission electron microscopy analyses. The coefficient of friction (COF) of the DLC coating was high initially due to deformation and wear of Al counterface, but formation of –OH and –H passivated C-rich transfer layers on Al reduced the COF to a low steady-state value of 0.20. The repulsive forces generated between the two F-passivated surfaces further decreased the COF to 0.14.

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