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  4. Combinatorial Materials Design Approach to Investigate Adhesion Layer Chemistry for Optimal Interfacial Adhesion Strength
 

Combinatorial Materials Design Approach to Investigate Adhesion Layer Chemistry for Optimal Interfacial Adhesion Strength

URI
https://arbor.bfh.ch/handle/arbor/43662
Version
Published
Date Issued
2021-03-30
Author(s)
Putz, Barbara
Schoeppner, Rachel L.
Taylor, Aidan A.
Pethö, Laszlo
Keith, Thomas
Antonin, Olivier
Nelis, Thomas  
Michler, Johann
Type
Article
Language
English
Subjects

adhesion

scratch testing

combinatorial materia...

nanocrystalline diamo...

thin films

Abstract
A combinatorial material adhesion study was used to optimize the composition of an adhesion promoting layer for a nanocrystalline diamond (NCD) coating on silicon. Three different adhesion promoting metals, namely W, Cr, and Ta, were selected to fabricate arrays of co-sputtered binary alloy films, with patches of seven different, distinct alloy compositions for each combination, and single element reference films on a single Si wafer (three wafers in total; W–Cr, Cr–Ta, Ta–W). Scratch testing was used to determine the critical failure load and practical work of adhesion for the NCD coatings as a function of adhesion layer chemistry. All tested samples eventually exhibit delamination of the NCD coating, with buckles radiating perpendicularly away from the scratch track. Application of any of the presented adhesion layers yields an increase of the critical failure load for delamination as compared to NCD on Si. While the influence of adhesion layers on the maximum buckle length is less pronounced, shorter buckles are obtained with pure W and Cr–Ta alloy layers. As a general rule, the addition of an adhesion layer showed a 75% improvement in the measured adhesion energies of the NCD films compared to the NCD coating without an adhesion layer, with specific alloys and compositions showing up to 125% increase in calculated practical work of adhesion.
Subjects
QC Physics
QD Chemistry
DOI
10.24451/arbor.16398
https://doi.org/10.24451/arbor.16398
Publisher DOI
https://doi.org/10.3390/cryst11040357
Journal
Crystals
Publisher URL
https://www.mdpi.com/2073-4352/11/4/357
Organization
ALPS / Plasma Surface Engineering  
Technik und Informatk  
Institute for Surface Applied Laser, Phototonics and Surface Technologies ALPS  
Sponsors
Swiss Federal Commission for Technology and Innovation
Marie Skłodowska-Curie
Volume
11
Issue
357
Publisher
MDPI
Submitter
NelisT
Citation apa
Putz, B., Schoeppner, R. L., Taylor, A. A., Pethö, L., Keith, T., Antonin, O., Nelis, T., & Michler, J. (2021). Combinatorial Materials Design Approach to Investigate Adhesion Layer Chemistry for Optimal Interfacial Adhesion Strength. In Crystals (Vol. 11, Issue 357). MDPI. https://doi.org/10.24451/arbor.16398
File(s)
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Name

crystals-11-00357.pdf

License
Attribution 4.0 International
Version
published
Size

4.19 MB

Format

Adobe PDF

Checksum (MD5)

10ec4ee7ac24c32d730c9369768f7ece

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