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用于可生物降解植入物应用的 Mg-Zr-Sr-Dy 合金的力学性能、腐蚀和生物相容性。

Mechanical properties, corrosion, and biocompatibility of Mg-Zr-Sr-Dy alloys for biodegradable implant applications.

机构信息

School of Engineering, RMIT University, Melbourne, Victoria, 3001, Australia.

School of Mechanical Engineering, Huaihai Institute of Technology, Lianyungang, Jiangsu 222005, China.

出版信息

J Biomed Mater Res B Appl Biomater. 2018 Aug;106(6):2425-2434. doi: 10.1002/jbm.b.34051. Epub 2017 Nov 28.

Abstract

This study investigates the microstructure, mechanical properties, corrosion behavior, and biocompatibility of magnesium (Mg)-based Mg1Zr2SrxDy (x = 0, 1, 1.63, 2.08 wt %) alloys for biodegradable implant applications. The corrosion behavior of the Mg-based alloys has been evaluated in simulated body fluid using an electrochemical technique and hydrogen evolution. The biocompatibility of the Mg-based alloys has been assessed using SaSO2 cells. Results indicate that the addition of Dy to Mg-Zr-Sr alloy showed a positive impact on the corrosion behavior and significantly decreased the degradation rates of the alloys. The degradation rate of Mg1Zr2Sr1.0Dy decreased from 17.61 to 12.50 mm year of Mg1Zr2Sr2.08Dy based on the hydrogen evolution. The ultimate compressive strength decreased from 270.90 MPa for Mg1Zr2Sr1Dy to 236.71 MPa for Mg1Zr2Sr2.08Dy. An increase in the addition of Dy to the Mg-based alloys resulted in an increase in the volume fraction of the Mg Dy phase, which mitigated the galvanic effect between the Mg Sr phase and the Mg matrix, and led to an increase in the corrosion resistance of the base alloy. The biocompatibility of the Mg-based alloys was enhanced with decreasing corrosion rates. Mg1Zr2Sr2.08Dy exhibited the lowest corrosion rate and the highest biocompatibility compared with the other Mg-based alloys. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 106B: 2425-2434, 2018.

摘要

本研究旨在探究适用于可生物降解植入物的镁(Mg)基 Mg1Zr2SrxDy(x=0、1、1.63、2.08wt%)合金的微观结构、力学性能、腐蚀行为和生物相容性。采用电化学技术和析氢法评价了 Mg 基合金在模拟体液中的腐蚀行为。采用 SaSO2 细胞评估了 Mg 基合金的生物相容性。结果表明,Dy 对 Mg-Zr-Sr 合金的添加对腐蚀行为有积极影响,并显著降低了合金的降解速率。Mg1Zr2Sr1.0Dy 的降解速率从基于析氢的 17.61mm/year 降低到了 Mg1Zr2Sr2.08Dy 的 12.50mm/year。Mg1Zr2Sr1Dy 的最大压缩强度从 270.90MPa 降低到了 Mg1Zr2Sr2.08Dy 的 236.71MPa。随着 Dy 在 Mg 基合金中添加量的增加,Mg Dy 相的体积分数增加,从而缓解了 Mg Sr 相和 Mg 基体之间的电偶效应,提高了基体合金的耐腐蚀性。随着腐蚀速率的降低,Mg 基合金的生物相容性得到了增强。与其他 Mg 基合金相比,Mg1Zr2Sr2.08Dy 表现出最低的腐蚀速率和最高的生物相容性。©2017Wiley Periodicals, Inc. J 生物材料研究杂志 B:应用生物材料,106B:2425-2434,2018 年。

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