Department of Mechanical and Aerospace Engineering, Samueli School of Engineering, University of California, Los Angeles, California, USA.
Department of Bioengineering, Samueli School of Engineering, University of California, Los Angeles, California, USA.
J Biomed Mater Res B Appl Biomater. 2022 Oct;110(10):2266-2275. doi: 10.1002/jbm.b.35075. Epub 2022 May 6.
Bioabsorbable metals are increasingly attracting attention for their potential use as materials for degradable implant devices. Zinc (Zn) alloys have shown great promises due to their good biocompatibility and favorable degradation rate. However, it has been difficult to maintain an appropriate balance among strength, ductility, biocompatibility, and corrosion rate for Zn alloys historically. In this study, the microstructure, chemical composition, mechanical properties, biocompatibility, and corrosion rate of a new ternary zinc-iron-silicon (Zn-Fe-Si) alloy system was studied as a novel material for potential biodegradable implant applications. The results demonstrated that the in situ formed Fe-Si intermetallic phases enhanced the mechanical strength of the material while maintaining a favorable ductility. With Fe-Si reinforcements, the microhardness of the Zn alloys was enhanced by up to 43%. The tensile strength was increased by up to 76% while elongation to failure remained above 30%. Indirect cytotoxicity testing showed the Zn-Fe-Si system had good biocompatibility. Immersion testing revealed the corrosion rate of Zn-Fe-Si system was not statistically different from pure Zn. To understand the underlying phase formation mechanism, the reaction process in this ternary system during the processing was also studied via phase evolution and Gibbs free energy analysis. The results suggest the Zn-Fe-Si ternary system is a promising new material for bioabsorbable metallic medical devices.
可吸收金属因其作为可降解植入装置材料的潜在用途而越来越受到关注。锌 (Zn) 合金由于其良好的生物相容性和适宜的降解速率而显示出巨大的应用前景。然而,在历史上,一直难以在强度、延展性、生物相容性和腐蚀速率之间保持适当的平衡。在这项研究中,研究了一种新的三元锌-铁-硅 (Zn-Fe-Si) 合金系统的微观结构、化学成分、力学性能、生物相容性和腐蚀速率,作为潜在可生物降解植入物应用的新型材料。结果表明,原位形成的 Fe-Si 金属间化合物相提高了材料的力学强度,同时保持了良好的延展性。通过添加 Fe-Si 增强相,Zn 合金的显微硬度最高提高了 43%。拉伸强度最高提高了 76%,而断裂伸长率仍保持在 30%以上。间接细胞毒性试验表明 Zn-Fe-Si 体系具有良好的生物相容性。浸泡试验表明,Zn-Fe-Si 体系的腐蚀速率与纯 Zn 无统计学差异。为了了解潜在的相形成机制,还通过相演变和吉布斯自由能分析研究了该三元体系在加工过程中的反应过程。结果表明,Zn-Fe-Si 三元体系是一种很有前途的可吸收金属医用器件新材料。