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Influence of the Parameters of Plasma-Electrolytic Oxidation on the Formation of Calcium-Phosphate Coatings on Titanium

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We study the dependence of formation of calcium-phosphate coatings on commercially pure VT1-0 titanium on the parameters of plasma-electrolytic oxidation: deposition voltage (140–220 V) and duration (3–9 min). Hydroxyapatite-containing coatings with spheroidal structure are formed under a deposition voltage of 200 V. At the same time, the coatings with lamellar structure are formed under a voltage of 220 V. The formation of hydroxyapatite phase for both levels of voltage guarantees the highest corrosion resistance in Ringer’s solution at 37°C.

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References

  1. G. M. P. Juanito, C. S. Morsch, C. A. Benfatti, M. C. Fredel, R. S. Magini, and J. C. M. Souza, “Effect of fluoride and bleaching agents on the degradation of titanium: literature review,” Dentistry,5, 1–4 (2004).

    Google Scholar 

  2. V. Nelea, C. Morosanu, M. Iliescu, and I. N. Mihailescu, “Hydroxyapatite thin films grown by pulsed laser deposition and radiofrequency magnetron sputtering: comparative study,” Appl. Surf. Sci.,228, 346–356 (2004).

    Article  CAS  Google Scholar 

  3. Y. Yang, K.-H. Kima, C. Mauli Agrawal, and J. L. Ong, “Effect of post-deposition heating temperature and the presence of water vapor during heat treatment on crystallinity of calcium phosphate coatings,” Biomaterials,24, 5131–5137 (2003).

    Article  CAS  Google Scholar 

  4. A. R. Boyd, B. J. Meenan, and N. S. Leyland, “Surface characterization of the evolving nature of ratio-frequency (RF) magnetron sputter deposited calcium phosphate thin films after exposure to physiological solution,” Surf. Coat. Technol.,200, 6002–6013 (2006).

    Article  CAS  Google Scholar 

  5. S. Swann, “Spatial distribution of sputtered atoms from magnetron source,” J. Vac. Sci. Technol., Ser. A,5, 2390–2395 (1988).

    Google Scholar 

  6. V. F. Pichugin, E. V. Eshenko, R. A. Surmenev, E. V. Shesterikov, S. I. Tverdokhlebov, M. A. Surmeneva, V. V. Sokhoreva, and I. A. Khlusov, “Application of high-frequency magnetron sputtering to deposit thin calcium-phosphate biocompatible coatings on a titanium surface,” J. Surf. Invest-X-Ray+,1, 679–682 (2007).

    Article  Google Scholar 

  7. V. F. Pichugin, M. A. Surmeneva, R. A. Surmenev, I. A. Khlusov, and M. Epple, “Study of physicochemical and biological properties of calcium phosphate coatings prepared by RF magnetron sputtering of silicon-substituted hydroxyapatite,” J. Surf. Invest-X-Ray+,5, 863–869 (2011).

    Article  CAS  Google Scholar 

  8. R. A. Surmenev, “A review of plasma-assisted methods for calcium phosphate-based coatings fabrication,” Surf. Coat. Technol.,206, 2035–2056 (2012).

    Article  CAS  Google Scholar 

  9. М. М. Student, V. М. Dovhunyk, М. D. Klapkiv, V. М. Posuvailo, V. V. Shmyrko, and А. Р. Kytsya, “Tribological properties of combined metal-oxide-ceramic layers on light alloys,” Fiz.-Khim. Mekh. Mater.,48, No. 2, 55–64 (2012); English translation:Mater. Sci.,48, No. 2, 180–190 (2012).

    Article  CAS  Google Scholar 

  10. A. R. Rafieerad, M. R. Ashra, R. Mahmoodian, and A. R. Bushroa, “Surface characterization and corrosion behavior of calcium phosphate-base composite layer on titanium and its alloys via plasma electrolytic oxidation: A review paper,” Mater. Sci. Eng., Ser. C,57, 397–413 (2015).

    Article  CAS  Google Scholar 

  11. S. A. Adeleke, S. Ramesh, A. R. Bushroa, Y. C. Ching, I. Sopyan, M. A. Maleque, S. Krishnasamy, H. Chandran, H. Misran, and U. Sutharsini, “The properties of hydroxyapatite ceramic coatings produced by plasma electrolytic oxidation,” Ceram. Int.,44, 1802–1811 (2018).

    Article  CAS  Google Scholar 

  12. J. Chen, Y. Shi, L. Wang, F. Yan, and F. Zhang, “Preparation and properties of hydroxyapatite-containing titania coating by micro-arc oxidation,” Mater. Lett.,60, 2538–2543 (2006).

    Article  CAS  Google Scholar 

  13. S. Durdu, Ö. F. Deniz, I. Kutbay, and M. Usta, “Characterization and formation of hydroxyapatite on Ti6Al4V coated by plasmaelectrolytic oxidation,” J. Alloys Compd.,551, 422–429 (2013).

    Article  CAS  Google Scholar 

  14. S. V. Dorozhkin, “Review. Biphasic, triphasic and multiphasic calcium orthophosphates,” Acta Biomater.,8, 963–977 (2012).

    Article  CAS  Google Scholar 

  15. Anawati, H. Tanigawa, H. Asoh, T. Ohno, M. Kubota, and S. Ono, “Electrochemical corrosion and bioactivity of titanium– hydroxyapatite composites prepared by spark plasma sintering,” Corros. Sci.,70, 212–220 (2013).

    Article  CAS  Google Scholar 

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Correspondence to І. М. Pohrelyuk.

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Translated from Fizyko-Khimichna Mekhanika Materialiv, Vol. 54, No. 6, pp. 36–41, November–December, 2018.

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Pohrelyuk, І.М., Proskurnyak, R.V., Tkachuk, О.V. et al. Influence of the Parameters of Plasma-Electrolytic Oxidation on the Formation of Calcium-Phosphate Coatings on Titanium. Mater Sci 54, 789–795 (2019). https://doi.org/10.1007/s11003-019-00265-4

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  • DOI: https://doi.org/10.1007/s11003-019-00265-4

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