TY - EJOUR
AU - Heinze, Stefan
AU - Krülle, Tim
AU - Ewenz, Lars
AU - Krywka, Christina
AU - Davydok, Anton
AU - Stark, Andreas
AU - Cremer, Rainer
AU - Leyens, Christoph
TI - Influence of the Deposition Process and Substrate on Microstructure, Phase Composition, and Residual Stress State on As-Deposited Cr-Al-C Coatings
SN - 1556-5068
PB - Social Science Electronic Publ.
M1 - PUBDB-2022-08066
PY - 2022
N1 - Preprint is published in Materials & Design
AB - This paper focuses on the influence of the deposition process, deposition parameters, and substrate on various properties of the as-deposited state of Cr-Al-C thin films deposited by Direct Current Magnetron Sputtering (DCMS) and High Power Pulsed Magnetron Sputtering (HPPMS) with the variation of bias voltage and deposition temperature. Three substrates with different coefficients of thermal expansion and electrical conductivity were used. To investigate the microstructure, phase composition, residual stress state, and mechanical properties, ex-situ and in-situ synchrotron experiments were conducted accompanied by electron microscopy and nanoindentation. As-deposited Cr-Al-C coatings consisted of amorphous and crystalline areas, with the ratio highly dependent on the deposition process and substrate. The crystalline phase was identified as metastable (Cr,Al)2C. The highest crystallinity was determined for DCMS coatings. Increasing temperature and decreasing bias voltage increased coating crystallinity for HPPMS coatings. The influence of the deposition process and bias voltage was highly reduced for the substrate with low electrical conductivity. In-situ investigations of the stress state of amorphous areas revealed, that those were acting as a residual stress buffer. The hardness and Young’s modulus of the coatings were found to increase with crystallinity and were slightly increased for crystalline HPPMS coatings compared to DCMS coatings.
LB - PUB:(DE-HGF)25
DO - DOI:10.2139/ssrn.4163387
UR - https://bib-pubdb1.desy.de/record/490845
ER -