Influence of heat treatment on the structure and mechanical properties of carbon coatings doped with zirconium and silicon
Problemy fiziki, matematiki i tehniki, no. 2 (2024), pp. 48-56.

Voir la notice de l'article provenant de la source Math-Net.Ru

The influence of heat treatment modes on the chemical composition, morphological features, and mechanical properties of carbon coatings alloyed with zirconium and silicon was determined. The deposition of coatings was carried out from a plasma flow of complex composition generated by pulsed electric arc and electric spark evaporation. It has been established that heat treatment leads to graphitization of coatings, the formation of ordered sp$^2$-clusters and, as a consequence, an increase in the elastic modulus, a decrease in nanohardness values with their subsequent stabilization during heat treatment above 350$^\circ$ С.
@article{PFMT_2024_2_a8,
     author = {A. S. Rudenkov and D. G. Piliptsov},
     title = {Influence of heat treatment on the structure and mechanical properties of carbon coatings doped with zirconium and silicon},
     journal = {Problemy fiziki, matematiki i tehniki},
     pages = {48--56},
     publisher = {mathdoc},
     number = {2},
     year = {2024},
     language = {ru},
     url = {http://geodesic.mathdoc.fr/item/PFMT_2024_2_a8/}
}
TY  - JOUR
AU  - A. S. Rudenkov
AU  - D. G. Piliptsov
TI  - Influence of heat treatment on the structure and mechanical properties of carbon coatings doped with zirconium and silicon
JO  - Problemy fiziki, matematiki i tehniki
PY  - 2024
SP  - 48
EP  - 56
IS  - 2
PB  - mathdoc
UR  - http://geodesic.mathdoc.fr/item/PFMT_2024_2_a8/
LA  - ru
ID  - PFMT_2024_2_a8
ER  - 
%0 Journal Article
%A A. S. Rudenkov
%A D. G. Piliptsov
%T Influence of heat treatment on the structure and mechanical properties of carbon coatings doped with zirconium and silicon
%J Problemy fiziki, matematiki i tehniki
%D 2024
%P 48-56
%N 2
%I mathdoc
%U http://geodesic.mathdoc.fr/item/PFMT_2024_2_a8/
%G ru
%F PFMT_2024_2_a8
A. S. Rudenkov; D. G. Piliptsov. Influence of heat treatment on the structure and mechanical properties of carbon coatings doped with zirconium and silicon. Problemy fiziki, matematiki i tehniki, no. 2 (2024), pp. 48-56. http://geodesic.mathdoc.fr/item/PFMT_2024_2_a8/

[1] D.G. Piliptsov, A.S. Rudenkov, P.A. Luchnikov, A.V. Rogachev, Tszyan Syao Khun, Chzhou Bin, Kompozitsionnye uglerodnye pokrytiya, osazhdennye iz impulsnoi katodnoi plazmy, Radiotekhnika, M., 2020, 283 pp.

[2] V. Kulikovsky et al., “Thermal stability of microhardness and internal stress of hard a-C films with predominantly sp$^2$ bonds”, Diamond and Related Materials, 12 (2003), 1378–1384 | DOI

[3] J. Robertson, “Diamond-like amorphous carbon”, Materials Science and Engineering: R: Reports, 37 (2002), 129–281 | DOI

[4] C. Ziebert et al., “Interfaces and temperature stability of stepwise graded DLC films studied by nanoindentation and Raman spectroscopy”, Surface and Coatings Technology, 200 (2005), 1127–1131 | DOI

[5] L.G. Jacobsohn et al., “Comparative study of anneal-induced modifications of amorphous carbon films deposited by dc magnetron sputtering at different argon plasma pressures”, Diamond and Related Materials, 9 (2000), 680–684 | DOI

[6] R. Kalish, Y. Lifshitz, K. Nugent, S. Prawer, “Thermal stability and relaxation in diamondlike-carbon. A Raman study of films with different sp$^3$ fractions (ta-C to a-C)”, Applied Physics Letters, 74 (1999), 2936–2939 | DOI

[7] H. Osanai et al., “Effects of annealing temperature on the mechanical, optical, and electrical properties of hydrogenated, nitrogen-doped diamond-like carbon films”, Thin Solid Films, 745 (2022), 139100 | DOI

[8] S. Anders et al., “Thermal stability of amorphous hard carbon films produced by cathodic arc deposition”, Applied Physics Letters, 71 (1997), 3367–3369 | DOI

[9] A.S. Rudenkov, A.V. Rogachev, A.N. Kupo, S.M. Zavadskii, D.A. Golosov, P.A. Luchnikov, “Vliyanie rezhimov formirovaniya i uslovii termoobrabotki na fazovyi sostav i strukturu kremnii-uglerodnykh pokrytii, osazhdaemykh ionno-luchevym raspyleniem”, Nanomaterialy i nanostruktury – XXI vek, 10:2 (2019), 29–36

[10] D.G. Piliptsov, “Vliyanie termoobrabotki na mekhanicheskie svoistva sloistykh uglerodnykh pokrytii”, Problemy fiziki, matematiki i tekhniki, 2021, no. 3 (48), 29–37

[11] Xinyu Wang et al., “High temperature tribology behavior of silicon and nitrogen doped hydrogenated diamond-like carbon (DLC) coatings”, Tribology International, 175 (2022), 107845 | DOI

[12] T.F. Zhang et al., “Microstructure and high-temperature tribological properties of Si-doped hydrogenated diamond-like carbon films”, Applied Surface Science, 435 (2018), 963–973 | DOI

[13] M. Cloutier et al., “Long-term stability of hydrogenated DLC coatings: Effects of aging on the structural, chemical and mechanical properties”, Diamond and Related Materials, 48 (2014), 65–72 | DOI

[14] K. Mydlowska et al., “Evolution of Phase Composition and Antibacterial Activity of Zr–C Thin Films”, Proceesses, 8 (2020), 260 | DOI

[15] N. Paik, “Raman and XPS studies of DLC films prepared by a magnetron sputter-type negative ion source”, Surface Coatings Technology, 200 (2005), 2170–2174 | DOI

[16] P. Lackner, Z. Zou, S. Mayr, U. Diebold, M. Schmid, “Using photoelectron spectroscopy to observe oxygen spillover to zirconia”, Physical Chemistry Chemical Physics, 32 (2019), 17613–17620 | DOI

[17] P.K. Chu, L. Li, “Characterization of amorphous and nanocrystalline carbon films”, Materials Chemistry and Physics, 96 (2006), 253–277 | DOI

[18] N.H. Cho et al., “Effects of substrate temperature on chemical structure of amorphous carbon films”, Journal of Applied Physics, 71 (1992), 2243–2248 | DOI