Electrochemical characterization and in-vitro bio-assessment of AZ31B and AZ91E alloys as biodegradable implant materials
Author:
Publisher
Springer Science and Business Media LLC
Subject
Biomedical Engineering,Biomaterials,Bioengineering,Biophysics
Link
http://link.springer.com/content/pdf/10.1007/s10856-015-5545-9.pdf
Reference47 articles.
1. Witte F, Calliess T, Windhagen H. Biodegradable synthetic implant materials: clinical applications and immunological aspects. Orthopade. 2008;37:125–30.
2. Salahshoor M, Guo Y. Biodegradable orthopedic magnesium-calcium (MgCa) alloys, processing, and corrosion performance. Materials. 2012;5:135–55.
3. Gray-Munro JE, Seguin C, Strong M. Influence of surface modification on the in vitro corrosion rate of magnesium alloy AZ31. J Biomed Mater Res A. 2009;91:221–30.
4. Hanada K, Matsuzaki K, Huang X, Chino Y. Fabrication of Mg alloy tubes for biodegradable stent application. Mater Sci Eng C. 2013;33:4746–50.
5. Zhang E, Xu L, Yu G, Pan F, Yang K. In vivo evaluation of biodegradable magnesium alloy bone implant in the first 6 months implantation. J Biomed Mater Res A. 2009;90:882–93.
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1. Effect of Aging on Corrosion Resistance of AZ31 Magnesium Alloy;Journal of Materials Engineering and Performance;2023-04-20
2. Electrochemical evaluation of AZ31 Mg alloy in corrosion protection of titanium silicon oxide from Earle's solution;New Journal of Chemistry;2023
3. Biodegradable Mg Alloys for Orthopedic Implant Materials;Handbook of Biodegradable Materials;2023
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5. Micro Raman and XPS surface analysis to understand the electrochemical behaviour of AZ31 and AZ91 magnesium alloys as temporary implant materials.;Materials Today Communications;2022-06
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