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Traditional alloying strategies for enhancing the corrosion resistance of biodegradable Mg alloys often face challenges in achieving a balance between biocompatibility and corrosion control. This study exploited the adsorption of ZrO2 onto the calcium phosphate (Ca-P) layer to enhance the long-term corrosion resistance of a Mg alloy. The addition of trace Zr facilitated the thickening of the Ca-P salts adsorption layer formed during degradation. The results showed that Mg-Zn-Nd-Zr alloy with diffusely distributed nano Zr-rich phase presented higher corrosion rate in the short-term immersion due to the galvanic corrosion between the Zr-rich phases and the ɑ-Mg substrate. However, enhanced long-term corrosion resistance was observed, which is attributed to the presence of Zr. Nano Zr-rich phase facilitated the adsorption and deposition of Ca-P compounds, resulting in the formation of a more homogenous protective layer. And the Ca:P (atom ratio) is 1.54, close to that of hydroxyapatite structure. This study proposed and verified a new method to enhance the long-term corrosion resistance of biomedical Mg alloys, promising for future application.
This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/)
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