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Fabrication and characterisation of porous coatings obtained by plasma electrolytic oxidation

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the paper, characteristics of porous coatings enriched in copper on pure Titanium and its alloys (NiTi, Ti6Al4V, TNZ, Ti2448) as well as on niobium obtained by Plasma Electrolytic Oxidation (PEO) in electrolyte containing H3PO4 within Cu(NO3)2, are presented. All obtained surfaces of PEO coatings have different shapes and diameters of pores. The binding energies of main peaks for titanium Ti2p3/2, niobium Nb3d5/2, zirconium Zr3d5/2, phosphorus (P2p) and oxygen (O1s) suggest the presence of titanium Ti4+, niobium Nb5+ and zirconium Zrx+ (x≤2) as well as PO4 3–.
Rocznik
Strony
23--30
Opis fizyczny
Bibliogr. 53 poz., rys., wykr.
Twórcy
autor
  • Division of BioEngineering and Surface Electrochemistry, Faculty of Mechanical Engineering Koszalin University of Technology, Racławicka 15-17, PL 75-620 Koszalin, Poland
  • Division of BioEngineering and Surface Electrochemistry, Faculty of Mechanical Engineering Koszalin University of Technology, Racławicka 15-17, PL 75-620 Koszalin, Poland
autor
  • Department of Physics, Norwegian University of Science and Technology (NTNU) Realfagbygget E3-124 Høgskoleringen 5, NO 7491 Trondheim, Norway
autor
  • Hochschule Wismar-University of Applied Sciences Technology, Business and Design, Faculty of Engineering, DE 23966 Wismar, Germany
Bibliografia
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  • 5. Hryniewicz T., Konarski P., Rokicki R., and Valiček J. (2011) SIMS analysis of hydrogen content in near surface layers of AISI 316L SS after electrolytic polishing under different conditions. Surface and Coatings Technology. Vol. 205, pp. 4228-4236.
  • 6. Rokosz K. (2012). Electrochemical polishing in magnetic field. Koszalin University of Technology Publishing House (in Polish)
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  • 22. Hryniewicz T., Rokosz K. (2014). Corrosion resistance of magnetoelectropolished AISI 316L SS biomaterial. Anti-Corrosion Methods and Materials. Vol. 61, No. 2, pp. 57-64.
  • 23. Hryniewicz T., Rokosz K., Valiček J., Rokicki R. (2012). Effect of magnetoelectropolishing on nanohardness and Young’s modulus of titanium biomaterial. Materials Letters. Vol. 83, pp. 69-72.
  • 24. Hryniewicz T., Rokosz K., Rokicki R., Prima F. (2015). Nanoindentation and XPS Studies of Titanium TNZ Alloy after Electrochemical Polishing in a Magnetic Field. Materials. Vol. 8, pp. 205-215.
  • 25. Rokosz K., Hryniewicz T. (2013). XPS measurements of LDX 2101 duplex steel surface after magnetoelectropolishing. International Journal of Materials Research. Vol. 104, No. 12, pp. 1223-1232.
  • 26. Rokosz K., Hryniewicz T. (2016). XPS Analysis of nanolayers obtained on AISI 316L SS after Magnetoelectropolishing. World Scientific News. Vol. 37, pp. 232-248.
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  • 28. Rokosz K., Hryniewicz T., Simon F., Rzadkiewicz S. (2015). Comparative XPS analysis of passive layers composition formed on AISI 304 L SS after standard and high-current density electropolishing. Surface and Interface Analysis. Vol. 47, No. 1, pp. 87-92.
  • 29. Rokosz K., Lahtinen J., Hryniewicz T., Rzadkiewicz S. (2015). XPS depth profiling analysis of passive surface layers formed on austenitic AISI 304L and AISI 316L SS after high-current-density electropolishing. Surface and Coatings Technology. Vol. 276, pp. 516-520.
  • 30. Rokosz K., Hryniewicz T., Simon F., Rzadkiewicz S. (2016). Comparative XPS analyses of passive layers composition formed on duplex 2205 SS after standard and high-current-density electropolishing. Tehnički vjesnik - Technical Gazette.Vol. 23, No. 3, pp. 731-735.
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  • 38. Krzakala A., Mlynski J., Dercz G., Michalska J., Maciej A., Nieuzyla L., Simka W. (2014). Modification of Ti-6Al-4V alloy surface by EPD-PEO process in ZrSiO4 suspension. Archives of Metallurgy and Materials. Vol. 59, No. 1, pp. 199-204.
  • 39. Simka W., Nawrat G., Chlode J., Maciej A., Winiarski A., Szade J., Radwanski K., Gazdowicz J. (2011). Electropolishing and anodic passivation of Ti6Al7Nb alloy. Przemysł Chemiczny. Vol. 90, No. 1, pp. 84-90.
  • 40. Wang Y., Jiang B., Lei T., Guo L. (2004). Dependence of growth features of microarc oxidation coatings of titanium alloy on control modes of alternate pulse. Materials Letters. Vol. 58, pp. 1907-1911.
  • 41. Rokosz K., Hryniewicz T., Raaen S. (2016). Development of Plasma Electrolytic Oxidation for improved Ti6Al4V biomaterial surface properties. The International Journal of Advanced Manufacturing Technology. Vol. 85, pp. 2425-2437.
  • 42. Rokosz K., Hryniewicz T., Raaen S., Chapon P. (2016). Investigation of porous coatings obtained on Ti-Nb-Zr-Sn alloy biomaterial by Plasma Electrolytic Oxidation: Characterisation and Modelling. The International Journal of Advanced Manufacturing Technology. Vol. 87, No. 9, pp. 3497–3512.
  • 43. Rokosz K., Hryniewicz T., Raaen S., Chapon P. (2017). Development of copper-enriched porous coatings on ternary Ti-Nb-Zr alloy by Plasma Electrolytic Oxidation, The International Journal of Advanced Manufacturing Technology. Vol. 89, No. 9, pp. 2953–2965.
  • 44. Rokosz K., Hryniewicz T. (2015). Characteristics of porous and biocompatible coatings obtained on Niobium and Titanium-Niobium-Zirconium (TNZ) alloy by Plasma Electrolytic Oxidation. Mechanik. Vol. 12, pp. 15-18.
  • 45. Rokosz K., Hryniewicz T., Dudek Ł., Matysek D., Valicek J., Harnicarova M. (2016). SEM and EDS Analysis of Surface Layer Formed on Titanium After Plasma Electrolytic Oxidation in H3PO4 with the Addition of Cu(NO3)2. Journal of Nanoscience and Nanotechnology. Vol. 16. No. 8, pp. 7814-7817.
  • 46. Rokosz K,, Hryniewicz T,, Dalibor M,, Raaen S,, Valiček J,, Dudek Ł,, Harničarova M. (2016). SEM, EDS and XPS Analysis of the Coatings Obtained on Titanium after Plasma Electrolytic Oxidation in Electrolytes Containing Copper Nitrate. Materials. Vol. 9, No. 5, pp. 1-12.
  • 47. Rokosz K., Hryniewicz T., Raaen S., Chapon P., Dudek Ł. (2016). GDOES, XPS and SEM with EDS analysis of porous coatings obtained on Titanium after Plasma Electrolytic Oxidation. Surface and Interface Analysis. Vol. 49, No. 4, pp. 303-315.
  • 48. Rokosz K., Hryniewicz T., Chapon P., Dudek Ł. (2016). A new approach to porous PEO coating sub-layers determination on the basis of GDOES signals. World Scientific News. Vol. 57, pp. 289-299.
  • 49. Rokosz K., Hryniewicz T., Chapon P., Raaen S., Zschommler Sandim H.R. (2016). XPS and GDOES characterisation of porous coating enriched with copper and calcium obtained on Tantalum via Plasma Electrolytic Oxidation. Journal of Spectroscopy. Article ID 7093071 (7 pages). http://dx.doi.org/10.1155/2016/7093071
  • 50. Rokosz K., Hryniewicz T., Malorny W. (2016). Characterisation of porous coatings obtained on materials by Plasma Electrolytc Oxidation. Materials Science Forum. Vol. 862, pp. 86-95.
  • 51. Rokosz K., Hryniewicz T., Raaen S. (2017). SEM, EDS and XPS analysis of nanostructured coating obtained on NiTi biomaterial alloy by Plasma Electrolytic Oxidation (PEO). Tehnički vjesnik-Technical Gazette, Vol.24, No. 1, pp. 193-198.
  • 52. Rokosz K., Hryniewicz T., Raaen S., Chapon P. (2017). Development of copper-enriched porous coatings on ternary Ti-Nb-Zr alloy by Plasma Electrolytic Oxidation. The International Journal of Advanced Manufacturing Technology. Vol. 89, No. 9-12, pp. 2953–2965. DOI 10.1007/s00170-016-9206-z
  • 53. Rokosz K., Hryniewicz T. (2017). Comparative SEM and EDX analysis of surface coatings created on niobium and titanium alloys after Plasma Electrolytic Oxidation (PEO). Tehnički vjesnik-Technical Gazette. Vol. 24, No. 2, pp. 465-472.
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b18b7727-26ce-48c1-bb9a-f05c627e9a48
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