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  4. Nanocomposite Hard Coatings: Deposition Issues and Validation of their Mechanical Properties
 

Nanocomposite Hard Coatings: Deposition Issues and Validation of their Mechanical Properties

URI
https://arbor.bfh.ch/handle/arbor/30476
Version
Published
Date Issued
2005
Author(s)
Schwaller, Patrick  
Haug, Franz-Josef
Michler, Johann
Patscheider, Jörg
Type
Article
Language
English
Abstract
The limitations of conventional coatings due to inferior hardness or poor oxidation stability can be overcome by nanocomposite hard coatings such as nc‐TiN/a‐SiNx, which consists of nanocrystalline TiN and a non‐crystalline tissue phase of SiNx which are mutually immiscible. The properties of nanocomposite coatings, especially their increased hardness, can be explained by their nanostructure, which leads to a maximum hardness at typically 80 atomic percent of the crystalline phase. We show that enhanced hardness can only be attained when the silicon nitride phase is sufficiently nitrided. The accurate and reliable measurement of the hardness and elastic modulus requires the use of appropriate nanoindentation equipment and a careful tip correction with periodical validation. It is shown that for a correct hardness determination of a few microns thick nanocomposite coatings, an indentation depth of 100 nm is sufficient. The maximum hardness of our nc‐TiN/a‐SiNx coatings deposited by a hybrid UBM/arc‐PVD process is about 40 GPa. This value represents a global hardness value, due to the nanocomposite structure there may be a local hardness variation of about ±10 %.
DOI
10.24451/arbor.9271
https://doi.org/10.24451/arbor.9271
Publisher DOI
10.1002/adem.200500045
Journal or Serie
Advanced Engineering Materials
ISSN
1438-1656
Organization
Institute for Surface Applied Laser, Phototonics and Surface Technologies ALPS  
Technik und Informatik  
Volume
7
Issue
5
Publisher
Wiley-Blackwell - STM
Submitter
SchwallerP
Citation apa
Schwaller, P., Haug, F.-J., Michler, J., & Patscheider, J. (2005). Nanocomposite Hard Coatings: Deposition Issues and Validation of their Mechanical Properties. In Advanced Engineering Materials (Vol. 7, Issue 5). Wiley-Blackwell - STM. https://doi.org/10.24451/arbor.9271
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