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Degradation behavior of pure Mg in the physiological medium and growth mechanism of surface corrosion product films

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【作者】 Chenyu WangMingshan SunChao YangHaiyang WangJie WangLin MaoYao YangTao YingPaul K.ChuXiaoqin Zeng

【Author】 Chenyu Wang;Mingshan Sun;Chao Yang;Haiyang Wang;Jie Wang;Lin Mao;Yao Yang;Tao Ying;Paul K.Chu;Xiaoqin Zeng;National Engineering Research Center of Light Alloy Net Forming,School of Materials Science and Engineering,Shanghai Jiao Tong University;Kunming Branch of the 705 Research Institute of CSSC;Shanghai Institute for Minimally Invasive Therapy,School of Medical Instrument and Food Engineering,University of Shanghai for Science and Technology;Department of Physics,Department of Materials Science & Engineering,and Department of Biomedical Engineering,City University of Hong Kong;

【通讯作者】 Chao Yang;Xiaoqin Zeng;

【机构】 National Engineering Research Center of Light Alloy Net Forming,School of Materials Science and Engineering,Shanghai Jiao Tong UniversityKunming Branch of the 705 Research Institute of CSSCShanghai Institute for Minimally Invasive Therapy,School of Medical Instrument and Food Engineering,University of Shanghai for Science and TechnologyDepartment of Physics,Department of Materials Science & Engineering,and Department of Biomedical Engineering,City University of Hong Kong

【摘要】 Pure Mg boasting a relatively small corrosion rate is a potential biodegradable metal material for implants.However,its degradation behavior in the complex physiological environment is still a lack of understanding.In this work,we investigated the effect of corrosion product film layers on the degradation behavior of pure Mg in physiological environments.Pure Mg shows a faster corrosion rate in simulated body fluid (SBF) compared to Na Cl solution.Hydrogen evolution experiments indicate that the degradation rate of pure Mg in SBF decreases rapidly within the first 12 h but stabilizes afterward.The rapid deposition of low-solubility calcium phosphate on the pure Mg in SBF provides protection to the substrate,resulting in a gradual decrease in the degradation rates.Consequently,the corrosion product film of pure Mg formed in SBF exhibits a layered structure,with the upper layer consisting of dense Ca3(PO42/Mg3(PO42and the lower layer consisting of Mg(OH)2/Mg O.Electrochemical impedance spectroscopy (EIS) shows that the resistance of the corrosion product film increases over time,indicating gradual strengthening of the corrosion resistance.The 4-week degradation results in the femoral marrow cavity of mice are consistent with the result in SBF in vitro.

【Abstract】 Pure Mg boasting a relatively small corrosion rate is a potential biodegradable metal material for implants.However,its degradation behavior in the complex physiological environment is still a lack of understanding.In this work,we investigated the effect of corrosion product film layers on the degradation behavior of pure Mg in physiological environments.Pure Mg shows a faster corrosion rate in simulated body fluid (SBF) compared to Na Cl solution.Hydrogen evolution experiments indicate that the degradation rate of pure Mg in SBF decreases rapidly within the first 12 h but stabilizes afterward.The rapid deposition of low-solubility calcium phosphate on the pure Mg in SBF provides protection to the substrate,resulting in a gradual decrease in the degradation rates.Consequently,the corrosion product film of pure Mg formed in SBF exhibits a layered structure,with the upper layer consisting of dense Ca3(PO42/Mg3(PO42and the lower layer consisting of Mg(OH)2/Mg O.Electrochemical impedance spectroscopy (EIS) shows that the resistance of the corrosion product film increases over time,indicating gradual strengthening of the corrosion resistance.The 4-week degradation results in the femoral marrow cavity of mice are consistent with the result in SBF in vitro.

【基金】 supported by the National Natural Science Foundation of China (52127801);Postdoctoral Fellowship Program of CPSF under Grant Number GZC20231545;China Postdoctoral Science Foundation (2024T170557 and2023M742224);Shanghai Post-doctoral Excellence Program(No.2023440);City University of Hong Kong Donation Grants (DON-RMG No.9229021 and 9220061)
  • 【文献出处】 Journal of Magnesium and Alloys ,镁合金学报(英文) , 编辑部邮箱 ,2025年04期
  • 【分类号】TG174.4
  • 【下载频次】1
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