MULTILAYER COATINGS METAL-CERAMIC- DIAMOND-LIKE CARBON (DLC): A METHOD TO OBTAIN SUPERHARD MATERIALS.
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Zambrano, . G. ., Riascos, H. ., & Prieto, P. . (2023). MULTILAYER COATINGS METAL-CERAMIC- DIAMOND-LIKE CARBON (DLC): A METHOD TO OBTAIN SUPERHARD MATERIALS. Revista De La Academia Colombiana De Ciencias Exactas, Físicas Y Naturales, 27(103), 225–231. https://doi.org/10.18257/raccefyn.27(103).2003.2065

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Abstract

The recent development of hard coatings necessitates a multilayer, functionally gradient approach, with gradually changing composition, incorporating metal, ceramic, and diamond-like carbon (DLC). This work reviews the current state of development in the field of multilayer superhard materials, particularly W/WC/DLC or Ti/TiC/DLC multilayers obtained by sputtering, and presents some results of their mechanical and tribological properties

 

https://doi.org/10.18257/raccefyn.27(103).2003.2065

Keywords

DLC coatings | superhard coatings | mutilayers
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References

Angus J. C. and Wang Y. 1991. Diamond and Diamond-Like Films and Coatings. Plenum Press, New York, p. 173.

Basu S. N., Hubbard K. M., Hirvonen J. P., Mitchell T. E., Nastasi M. 1990. Mater. Res. Soc. Symp. Proc. 187, 157.

Drory M. D. 1995. Appl. of Diamond Films and Related Materials: Proceedings of Third International Conference. Elsevier, Amsterdam, p. 313-320.

Esteve J., Zambrano G., Rincón C., Martínez E., Galindo H., Prieto P. 2000. Thin Solid Films 373, 282-286.

Holleck H. 1986. J. Vac. Sci. Technol. A (4) 2661.

Kochler J. S. 1970. Phys. Rev. B 2, 547.

Rogl P. and Schuster J. C. 1992. Phase Diagrams of Ternary Boron Nitride and Silicon Nitride Systems. ASM International, Metals Park, OH.

Savvides N. and Window B. 1985 J. Vac. Sci. Technol. A3 2386.

Sjöström H., Hultman L, Sundgren J. E., Wallenberg L. R. 1993. Thin Solid Films. 232. 169-179.

Subramanian C., Strafford K. N., Wilks T. P. and Ward L. P. 1996. J. Mater. Proc. Technol. 56, 385.

Sundgren J. E., Birch J., Hakansson G., Hultman L., Helmerson U. 1990. Thin Solid Films. 193/194. 818.

Tsai H. C. and Bogy D. B. 1987 J. Vac. Sci. Technol. A5 3287.

Vales Silva M. F., Hancock P. and Nicholls J. R. 2000. Advanced Engineering Materials. 2 (No 10) 666-671.

Vandierendonck K, Quaeyhaegens C., Nesladek M., D’Haen J., Vlekken J., D’Olieslaeger M. and Stals L. M. 1995. Surf. Coat. Tech. 7475. 819-826.

Vandierendonck K., Nesladek M., Kadlec S., Quaeyhaegens C., Van Stapeen M., Stals L. M. 1998. Surf. Coat. Tech. 98. 1060-1065.

Veprek S. 1999. J.Vac. Sci. Technol. A 17(5) 2401-2419.

Voevodin A. A., O’Neill J. P., Zabinski J. S. 1999. Thin Solid Films. 342. 194-200.

Voevodin A. A., Capano M. A., Laube S. J. P., Donley M. S., Zabinski J. S. 1997. Thin Solid Films 298 107-115.

Zambrano G., Rincón C., Carvajal A., Prieto P., Galindo H., Martínez E., Lousa A., Esteve J. 2001. Surf. Coat. Tech. 148 (2001) 277-283.

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