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具有生物降解性的 Zn-1Mg-0.1Ca 和 Zn-1Mg-0.5Ca 的微观结构、力学性能和体外行为。

Microstructure, mechanical properties, and in vitro behavior of biodegradable Zn-1Mg-0.1Ca and Zn-1Mg-0.5Ca.

机构信息

School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing, 100083, China.

Department of Orthopedic Surgery, The Sixth Medical Center of PLA General Hospital, Beijing, 100048, China.

出版信息

J Mater Sci Mater Med. 2020 Oct 12;31(10):88. doi: 10.1007/s10856-020-06444-z.

Abstract

In the present study, the microstructure, mechanical properties, corrosion behavior, wettability, haemocompatibility, and cytocompatibility of the as-cast and as-rolled biodegradable Zn-1Mg-0.1Ca and Zn-1Mg-0.5Ca have been systematically investigated to evaluate their feasibility as potential biodegradable materials. The results demonstrated that the Zn-1Mg-0.1Ca have significantly improved mechanical properties, with the yield strength (YS), ultimate tensile strength (UTS), and elongation of as-rolled Zn-1Mg-0.1Ca are (209.04 ± 28.31) MPa, (331.51 ± 40.06) MPa, and (35.43 ± 3.53)%, respectively. Wettability test results demonstrated that the Zn-1Mg-0.1Ca and Zn-1Mg-0.5Ca have hydrophilic surfaces that can enhance cell responses and tissue-implant interactions. The haemocompatibility evaluation showed that the hemolysis ratio of Zn-1Mg-0.1Ca have a low hemolysis ratio of 0.6%; the platelets remain sphere morphology and are not activated. High cell viability indicates the cytocompatibility of the as-rolled Zn-1Mg-0.1Ca alloy. The Zn-1Mg-0.1Ca alloy can be considered as new suitable biodegradable Zn-based alloys for further biomedical applications.

摘要

在本研究中,系统地研究了铸态和轧制态可生物降解 Zn-1Mg-0.1Ca 和 Zn-1Mg-0.5Ca 的微观结构、力学性能、腐蚀行为、润湿性、血液相容性和细胞相容性,以评估它们作为潜在可生物降解材料的可行性。结果表明,Zn-1Mg-0.1Ca 的力学性能得到了显著提高,其轧制态的屈服强度(YS)、极限抗拉强度(UTS)和伸长率分别为(209.04±28.31)MPa、(331.51±40.06)MPa 和(35.43±3.53)%。润湿性测试结果表明,Zn-1Mg-0.1Ca 和 Zn-1Mg-0.5Ca 具有亲水表面,可增强细胞反应和组织-植入物相互作用。血液相容性评价表明,Zn-1Mg-0.1Ca 的溶血率较低,为 0.6%;血小板保持球体形态,未被激活。高细胞活力表明轧制态 Zn-1Mg-0.1Ca 合金具有细胞相容性。Zn-1Mg-0.1Ca 合金可被视为新型合适的可生物降解 Zn 基合金,可进一步用于生物医学应用。

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