Title :
Bioactivity and corrosion behavior of magnesium alloys treated by plasma electrolytic oxidation
Author :
Jin, Fanya ; Liu, Xiangmei ; Chu, Paul K. ; Xu, Guidong ; Shen, Liru ; Tong, Honghui
Author_Institution :
Dept. of Phys. & Mater. Sci., City Univ. of Hong Kong, Kowloon
Abstract :
Summary form only given. As a lightweight and nontoxic metal with mechanical properties similar to those of natural bones, magnesium based materials have attracted much interest in biomedical engineering. As the materials are both biocompatible and biodegradable, they can be used in many orthopedic and load-bearing applications. However, the poor corrosion resistance of magnesium-based biomedical implants in a physiological environment has hampered their use as substitutes for human hard tissues. Recently, plasma electrolytic oxidation (PEO) that is derived from anodic oxidation technology has been applied to treat valve-metals such as Al, Mg, Ti and their alloys. By utilizing micro-arc plasma discharges sustained at a high voltage in aqueous solutions, various oxide films can be formed on these metals to improve their surface properties such as wear and corrosion resistance as well as bioactivity. In this work, PEO treatments are conducted on magnesium alloys in different electrolytes and different voltage modes. The corrosion resistance is determined in simulated body fluids (SBF) based on the potentiodynamic polarization curves, and the surface bioactivity is investigated by monitoring the apatite inducing capability. The structure and chemistry of the plasma-formed surface oxide which exhibits a porous structure are evaluated. Our results show that the corrosion resistance and bioactivity of the PEO Mg alloys are much improved
Keywords :
arcs (electric); biological tissues; biomedical engineering; biomedical materials; corrosion resistance; electrolysis; electrolytes; magnesium alloys; orthopaedics; oxidation; plasma chemistry; plasma materials processing; porous materials; surface chemistry; surface structure; wear resistance; anodic oxidation technology; apatite; aqueous solutions; biomedical engineering; biomedical implants; corrosion resistance; electrolytes; human hard tissues; lightweight nontoxic metal; load-bearing applications; magnesium alloys; mechanical properties; microarc plasma discharges; natural bones; orthopedic applications; physiological environment; plasma electrolytic oxidation; porous structure; potentiodynamic polarization curves; simulated body fluids; surface bioactivity; surface chemistry; surface structure; wear resistance; Biodegradable materials; Corrosion; Immune system; Magnesium; Oxidation; Plasma applications; Plasma materials processing; Plasma properties; Surface resistance; Surface treatment;
Conference_Titel :
Plasma Science, 2006. ICOPS 2006. IEEE Conference Record - Abstracts. The 33rd IEEE International Conference on
Conference_Location :
Traverse City, MI
Print_ISBN :
1-4244-0125-9
DOI :
10.1109/PLASMA.2006.1707207