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Effects of PHB and PLA coatings on the corrosion behavior of ultrathin Mg sheets in artificial blood plasma containing BSA

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【作者】 Bi-Wei SunJu-Yi YangJian-Wei DaiYan-Bin ZhaoLu ZhangZi-Jian HuangJing BaiFeng XuePaul K.ChuCheng-Lin Chu

【Author】 Bi-Wei Sun;Ju-Yi Yang;Jian-Wei Dai;Yan-Bin Zhao;Lu Zhang;Zi-Jian Huang;Jing Bai;Feng Xue;Paul K.Chu;Cheng-Lin Chu;School of Materials Science and Engineering,Southeast University;Jiangsu Key Laboratory for Advanced Metallic Materials,Southeast University;Jiangsu JITRI Surface Engineering Technology Research Institute;Institute of Medical Devices (Suzhou),Southeast University;Department of Physics,Department of Materials Science and Engineering,Department of Biomedical Engineering,City University of Hong Kong;

【通讯作者】 Cheng-Lin Chu;

【机构】 School of Materials Science and Engineering,Southeast UniversityJiangsu Key Laboratory for Advanced Metallic Materials,Southeast UniversityJiangsu JITRI Surface Engineering Technology Research InstituteInstitute of Medical Devices (Suzhou),Southeast UniversityDepartment of Physics,Department of Materials Science and Engineering,Department of Biomedical Engineering,City University of Hong Kong

【摘要】 Biodegradable polymer coatings are commonly used as protective barriers on magnesium(Mg) and its alloys.The properties of polymers,such as crystallinity and degradation properties,have a crucial impact on their corrosion resistance.In this work,polyhydroxybutyrate(PHB) coatings are deposited on Mg sheets with a thickness similar to that of cardiovascular stents to assess the degradation behavior,and poly-lactic acid(PLA)-coated Mg is also investigated to compare the structure-propertyperformance relationship.The hydrogen evolution volume(HEV) of the PHB-coated sample decreases by 30% after immersion in artificial blood plasma(AP) for 7 days,whereas the PL A-coated sample shows an increase of 154%.The PHB coating also shows excellent durability at a constant voltage,compared to severe rupture of the PLA coating.The degradation behavior of the coated-Mg samples is evaluated in AP solution containing different concentrations of the bovine serum albumin(BSA).Corrosion is inhibited as the protein concentration increases.The degradation rates of the Mg,PLA-coated Mg,and PHBcoated Mg decrease by 65%,88%,and 75% for 5 g L-1 BSA,respectively.Our results reveal that higher crystallinity and less acidic degradation products give rise to better durability,while the acid self-catalytic effect leads to the failure of PLA.The protein-polymer interactions are determined and the empirical relationship of HEV is established.

【Abstract】 Biodegradable polymer coatings are commonly used as protective barriers on magnesium(Mg) and its alloys.The properties of polymers,such as crystallinity and degradation properties,have a crucial impact on their corrosion resistance.In this work,polyhydroxybutyrate(PHB) coatings are deposited on Mg sheets with a thickness similar to that of cardiovascular stents to assess the degradation behavior,and poly-lactic acid(PLA)-coated Mg is also investigated to compare the structure-propertyperformance relationship.The hydrogen evolution volume(HEV) of the PHB-coated sample decreases by 30% after immersion in artificial blood plasma(AP) for 7 days,whereas the PL A-coated sample shows an increase of 154%.The PHB coating also shows excellent durability at a constant voltage,compared to severe rupture of the PLA coating.The degradation behavior of the coated-Mg samples is evaluated in AP solution containing different concentrations of the bovine serum albumin(BSA).Corrosion is inhibited as the protein concentration increases.The degradation rates of the Mg,PLA-coated Mg,and PHBcoated Mg decrease by 65%,88%,and 75% for 5 g L-1 BSA,respectively.Our results reveal that higher crystallinity and less acidic degradation products give rise to better durability,while the acid self-catalytic effect leads to the failure of PLA.The protein-polymer interactions are determined and the empirical relationship of HEV is established.

【基金】 jointly supported by the National Natural Science Foundation of China (No.52171236);State Key Program of the National Natural Science Foundation of China (No.52231005);Open Research Fund of Jiangsu Key Laboratory for Advanced Metallic Materials,Southeast University (No. AMM2024A01);Suzhou Science and Technology Project (Nos. SJC2023005 and SZS2023023);City University of Hong Kong Donation Research Grants (Nos.DON-RMG 9229021 and 9220061);Hong Kong Innovation and Technology Fund (Nos.ITF GHP/212/ 22GD and CityU 440399);Hong Kong PDFS_RGC Postdoctoral Fellowship Scheme (Nos.PDFS2122-1S08 and CityU 9061014);Hong Kong HMRF (Health and Medical Research Fund) (Nos. 2120972 and CityU 9211320)
  • 【文献出处】 Rare Metals ,稀有金属(英文版) , 编辑部邮箱 ,2025年08期
  • 【分类号】R318.08;TG174.4
  • 【下载频次】1
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