Effect of surface modification by nitrogen ion implantation on the electrochemical and cellular behaviors of super-elastic NiTi shape memory alloy

The aim of this investigation was to enhance the biological behavior of NiTi shape memory alloy while preserving its super-elastic behavior in order to facilitate its compatibility for application in human body. The surfaces of NiTi samples were bombarded by three different nitrogen doses. Small-ang...

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Veröffentlicht in:Journal of materials science. Materials in medicine 2014-12, Vol.25 (12), p.2605-2617
Hauptverfasser: Maleki-Ghaleh, H., Khalil-Allafi, J., Sadeghpour-Motlagh, M., Shakeri, M. S., Masoudfar, S., Farrokhi, A., Beygi Khosrowshahi, Y., Nadernezhad, A., Siadati, M. H., Javidi, M., Shakiba, M., Aghaie, E.
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Sprache:eng
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Zusammenfassung:The aim of this investigation was to enhance the biological behavior of NiTi shape memory alloy while preserving its super-elastic behavior in order to facilitate its compatibility for application in human body. The surfaces of NiTi samples were bombarded by three different nitrogen doses. Small-angle X-ray diffraction was employed for evaluating the generated phases on the bombarded surfaces. The electrochemical behaviors of the bare and surface-modified NiTi samples were studied in simulated body fluid (SBF) using electrochemical impedance and potentio-dynamic polarization tests. Ni ion release during a 2-month period of service in the SBF environment was evaluated using atomic absorption spectrometry. The cellular behavior of nitrogen-modified samples was studied using fibroblast cells. Furthermore, the effect of surface modification on super-elasticity was investigated by tensile test. The results showed the improvement of both corrosion and biological behaviors of the modified NiTi samples. However, no significant change in the super-elasticity was observed. Samples modified at 1.4E18 ion cm −2 showed the highest corrosion resistance and the lowest Ni ion release.
ISSN:0957-4530
1573-4838
DOI:10.1007/s10856-014-5283-4