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Mechanical properties and oxidation resistance of CrAlN/BN nanocomposite coatings prepared by reactive dc and rf cosputtering

Authors :
Nose, M.
Kawabata, T.
Watanuki, T.
Ueda, S.
Fujii, K.
Matsuda, K.
Ikeno, S.
Source :
Surface & Coatings Technology. Jul2011 Supplement 2, Vol. 205, pS33-S37. 0p.
Publication Year :
2011

Abstract

Abstract: CrAlN/BN nanocomposite coatings were deposited through reactive cosputtering, i.e., pulsed dc and rf sputtering, of CrAl and h-BN targets, respectively. X-ray diffraction (XRD) and selected area electron-diffraction (SAED) analysis indicated that the CrAlN/BN coating consists of very fine grains of B1 structured CrAlN phase. With an increasing BN volume fraction of over 8vol.%, the nanocrystalline nature of the grains is revealed through a dispersion of fine grains in the CrAlN/BN coating. A cross-sectional observation using a transmission electron microscope (TEM) clarified that the coating demonstrating the highest level of hardness has a fiber-like structure consisting of grains that are ~20nm in width and ~50nm in length. X-ray photoelectron spectroscopy (XPS) analysis revealed that the coating consists mainly of CrAlN and h-BN phase. The indentation hardness (H IT) and effective Young''s modulus (E*) of the coatings increased with the BN phase ratio, reaching a maximum value of ~46 and ~440GPa at ~7vol.% of BN phase; it then decreased moderately to ~40 and ~350GPa at 18vol.% of BN, respectively. Furthermore, CrAlN/BN coatings showed superior oxidation resistance compared with CrAlN coatings. After annealing at 800°C in air for 1h, the indentation hardness of CrAlN coatings decreased to 50% of the as-deposited hardness; in contrast, the hardness of CrAlN/BN nanocomposite coatings either stayed the same or increased, attaining a value of about 46GPa. After annealing at 900°C for 1h, the hardness of all the coatings decreased to about 40%. [Copyright &y& Elsevier]

Details

Language :
English
ISSN :
02578972
Volume :
205
Database :
Academic Search Index
Journal :
Surface & Coatings Technology
Publication Type :
Academic Journal
Accession number :
62393568
Full Text :
https://doi.org/10.1016/j.surfcoat.2011.02.044