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Retardation of Degradation of Biomedical Magnesium Alloy by Plasma‐Based Deposition Technique

    Research output: Conference PapersRGC 32 - Refereed conference paper (without host publication)peer-review

    Abstract

    Magnesium-based materials have been reconsidered as revolutionary metallic biomaterials due to their favorable biodegradation and Young's modulus similar to that of human bone. However, most magnesium alloys suffer from a biodegradation rate that is too high, particularly in the early stage. Hydrogen bubbles and surface alkalization can also influence tissue growth during the degradation process. Therefore, it is necessary to modify the surface of Mg alloys in order to mitigate degradation in the early stage to ensure proper tissue healing and growth. In this work, ceramic coatings are deposited on biodegradable magnesium alloys by sputtering to reduce the electrochemical activity in the simulated physiological environment. AlOxNy ceramic coatings are successfully deposited on AZ31 magnesium alloys with Al or Ti interlayers. Polarization tests and electrochemical impedance spectroscopy (EIS) are conducted to evaluate the corrosion resistance in the cell culture medium. The AlOxNy ceramic coating can effectively reduce the electrochemical activity of AZ31 and significantly improve the surface mechanical properties. The Ti interlayer increases corrosion of Mg alloy due to the presence of defects. The Al interlayer compromises the surface mechanical properties, but does not produce negative effects on the degradation in the cell culture media.
    Original languageEnglish
    DOIs
    Publication statusPublished - Jul 2012
    Event39th IEEE International Conference on Plasma Science (ICOPS 2012) - Edinburgh International Conference Centre, Edinburgh, United Kingdom
    Duration: 8 Jul 201212 Jul 2012

    Conference

    Conference39th IEEE International Conference on Plasma Science (ICOPS 2012)
    Abbreviated titleICOPS 2012
    PlaceUnited Kingdom
    CityEdinburgh
    Period8/07/1212/07/12

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