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Potentiostatic, Potentiodynamic and Impedance Study of TiO2 Layers Deposited of 316 LVM Steel Used for Coronary Stents

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The objective of the study is assessment of suitability of the ALD method for application of a TiO2 layer on surface of 316LVM steel used for production of vessel stents. Selection of the appropriate process parameters for application of the layer affects its electrochemical properties, which largely determine resistance of the biomaterial to corrosion in the blood environment, thus affecting its hemocompatibility. To assess resistance of the AISI 316LVM steel with modified surface to corrosion, voltammetric and impedance measurements were conducted. The proposed variant of surface processing allows safe deformation of the TiO2 layer without its delamination.
Twórcy
autor
  • Silesian University of Technology, Faculty of Biomedical Engineering, 40 Roosevelta Str., 41-800 Zabrze
autor
  • Silesian University of Technology, Faculty of Mechanical Engineering, 18A Konarskiego Str., 44-100 Gliwice, Poland
autor
  • Silesian University of Technology, Faculty of Biomedical Engineering, 40 Roosevelta Str., 41-800 Zabrze
autor
  • Silesian University of Technology, Faculty of Mechanical Engineering, 18A Konarskiego Str., 44-100 Gliwice, Poland
autor
  • Silesian University of Technology, Faculty of Biomedical Engineering, 40 Roosevelta Str., 41-800 Zabrze
Bibliografia
  • [1] M. Basiaga, Z. Paszenda, W. Walke, P. Karasiński, J. Marciniak J. Information Technologies in Biomedicine, Advances in Intelligent Systems and Computing. Springer 284, 411-420 (2014).
  • [2] M. Kiel, J. Marciniak, J. Szewczenko. Information Technologies in Biomedicine, Advances in Inteliligent Systems and Computing 69, 447- 456 (2010).
  • [3] M. Basiaga, W. Walke, Z. Paszenda, A. Kajzer, Materiali in Tehnologije 50, 1, 153-158 (2016).
  • [4] W. Walke, Z. Paszenda, M. Basiaga, P. Karasiński, M. Kaczmarek, Information Technologies in Biomedicine, Advances in Intelligent Systems and Computing Springer 284, 403-410 (2014).
  • [5] M. R. Saleem, P. Silfsten, S. Honkanen, J. Turunen. Thin Solid Films 520, 5442-5446 (2012).
  • [6] L. Aarik, T. Arroval, R. Rammula, H. Mändar, V. Sammelselg, J. Aarik. Thin Solid Films 542, 100-107 (2013)
  • [7] H. Kumagai, Y. Masuda, T. Shinagawa. Journal of Crystal Growth. 314, 146-150 (2011).
  • [8] L. Wang, X. Zhao, M. H. Ding, H. Zheng et all Applied Surface Science 340, 113-119 (2015).
  • [9] B. S. Lim, A. Rahtu, R.G. Gordon. Nature Materials 2, 749 -754 (2003)
  • [10] W. Walke, M. Staszuk. International Conference on Advanced Computational Engineering and Experimenting - ACE-X 2015, Munich, Germany.
  • [11] M. Staszuk, W. Walke, Z. Opilski. Materialwissenschaft & Werkstofftechnik 47, 5, 1-9 (2016).
  • [12] C.X. Shan, X. Hou, K.-L. Choy Surface & Coatings Technology 202, 2399-2402 (2008).
  • [13] A. Kajzer, W. Kajzer, J. Dzielicki, D. Matejczyk. Acta of Bioengineering and Biomechanics 2, 35-44 (2015).
  • [14] ASTM F2129-08 Standard Test Method for Conducting Cyclic Potentiodynamic Polarization Measurements to Determine the Corrosion Susceptibility of Small Implant Devices.
  • [15] E. Marin, L. Guzman, A. Lanzutti, W. Ensinger, L. Fedrizzi. Thin Solid Films 522, 283-288 (2012).
  • [16] E. Martin, A. Lanzutti, L. Paussa, L. Guzman, L. Fedrizzi. Materials and Corrosion 66, 909-914 (2015).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-77bfcbd2-4003-434f-a41b-d28529fd189a
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