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Pseudomorphic stabilization on crystal structure and mechanical properties of nanocomposite Ti-Al-N thin films

Published online by Cambridge University Press:  01 February 2011

A. Karimi
Affiliation:
IPMC - Faculty of Basic Science, Swiss Federal Institute of Technology Lausanne (EPFL), Switzerland
Th. Vasco
Affiliation:
IPMC - Faculty of Basic Science, Swiss Federal Institute of Technology Lausanne (EPFL), Switzerland
A. Santana
Affiliation:
IPMC - Faculty of Basic Science, Swiss Federal Institute of Technology Lausanne (EPFL), Switzerland
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Abstract

As the dimensions of materials are reduced to the nanometer scale, the stabilization of pseudomorphic crystal structures that differ from their bulk equilibrium phases can occur. The pseudomorphic growth could provide a substantially larger bulk modulus and greater hardness than the average of the constituent materials in nanolayered and nanocomposite thin films. To evaluate this effect in Ti1-xAlxN system, a series of nanostructured films with × up to 0.7 were deposited onto WC-Co substrates using arc PVD, and characterised in terms of structure-property relations. Chemical composition by RBS together with HRTEM and XRD analysis showed that for the Al content below × = 0.4 a solid solution single-phase film is formed, while for × values beyond 0.5 mixed structures made of fcc-TiN and hcp-AlN, or nanocomposite films made of fcc-TiN, hcp-AlN, and fcc-AlN appeared depending on deposition conditions. Hardness of solid solution films was found to increase almost linearly with the Al content, while two opposite behaviours were distinguished for composite structures. Hardness rapidly decreased according to the rule of mixture as soon as solid solution phase began to separate into TiN and AlN growing in their natural structures with misfit dislocation at the interface. In contrast, further hardness enhancement was measured when nanocomposites with coherent interfaces were formed due to pseudomorphic stabilization of fcc-AlN on fcc-TiN crystallites.

Type
Research Article
Copyright
Copyright © Materials Research Society 2005

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References

REFERENCES

1. PalDey, S., Deevi, S.C., Materials Science and Engineering, A342 (2003) 5879.Google Scholar
2. Shieh, J., Hon, M.H., Thin Solid Films, 391 (2001) 101108.Google Scholar
3. Veprek, S., Jilek, M., Vacuum, 67, (2002) 443449.Google Scholar
4. Lewis, D.B., Luo, Q., Hovsepian, P.Eh., Münz, W.-D., Surf. Coat. Technol. 184 (2004) 225.Google Scholar
5. Veprek, S., Journal of Vacuum Science and Technology A17(5) (1999) 24012420.Google Scholar
6. Yashar, Ph.C., Sproul, W.D., Vacuum 55(1999) 179190.Google Scholar
7. Holleck, H., Schier, V., Surface and Coating Technologies 76–77 (1995) 328336.Google Scholar
8. Artz, E., Acta Materialia Vol. 46, No. 16 (1988) 56115626.Google Scholar
9. Ikeda, T. and Satoh, H., Thin Solid Films, 195 (1991) 99110.Google Scholar
10. Wahlström, U., Hultman, L., Sundgren, J.-E., Greene, J.E., Thin Solid Films, 235 (1993) 62.Google Scholar
11. Suzuki, T., Makino, Y., Samandi, M., Miyake, S., J. Mater. Sci. 35, (2000) 41934199.Google Scholar
12. Thompson, G.B., Banerjee, R., Fraser, H.L., Applied Physics Letters, 84 (2004) 10821084.Google Scholar
13. Durand, D., Santana, A.E., Karimi, A., Surf. Coat. Technol., 163–164 (2002) 260.Google Scholar
14. Ersen, O., Tuilier, M.-H., Thomas, O., Gergaud, P., Applied Physics Letters 83 (2003) 3659.Google Scholar
15. Fleischer, R.L., Substitutional solution hardening, Acta, Metallurgica 11 (1963) 203209.Google Scholar