Developing Zn-2Cu-xLi (x < 0.1 wt %) alloys with suitable mechanical properties, degradation behaviors and cytocompatibility for vascular stents.

Xiyuan Zhang, Jialin Niu, Kelvin Wai-Kwok Yeung, Hua Huang, Zhiqiang Gao, Chun Chen, Qingqing Guan, Guangjian Zhang, Linlin Zhang, Guanhua Xue, Guangyin Yuan
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引用次数: 0

Abstract

Biodegradable Zn alloys show great potential for vascular stents due to their moderate degradation rates and acceptable biocompatibility. However, the poor mechanical properties limit their applications. In this study, low alloyed Zn-2Cu-xLi (x = 0.004, 0.01, 0.07 wt %) alloys with favorable mechanical properties were developed. The microstructure consists of fine equiaxed η-Zn grains, micron, submicron-sized and coherent nano ε-CuZn4 phases. The introduced Li exists as a solute in the η-Zn matrix and ε-CuZn4 phase, and results in the increase of ε-CuZn4 volume fraction, the refinement of grains and more uniform distribution of grain sizes. As Li content increases, the strength of alloys is dramatically improved by grain boundary strengthening, precipitate strengthening of ε-CuZn4 and solid solution strengthening of Li. Zn-2Cu-0.07Li alloy has the optimal mechanical properties with a tensile yield strength of 321.8 MPa, ultimate tensile strength of 362.3 MPa and fracture elongation of 28.0 %, exceeding the benchmark of stents. It also has favorable mechanical property stability, weak tension compression yield asymmetry and strain rate sensitivity. It exhibits uniform degradation and a little improved degradation rate of 89.5 μm∙year-1, due to the improved electrochemical activity by increased ε-CuZn4 volume fraction, and generates Li2CO3 and LiOH. It shows favorable cytocompatibility without adverse influence on endothelial cell viability by trace Li+. The fabricated microtubes show favorable mechanical properties, and stents exhibit an average radial strength of 118 kPa. The present study indicates that Zn-2Cu-0.07Li alloy is a potential and promising candidate for vascular stent applications. STATEMENT OF SIGNIFICANCE: Zn alloys are promising candidates for biodegradable vascular stents. However, improving their mechanical properties is challenging. Combining the advantages of Cu and trace Li, Zn-2Cu-xLi (x < 0.1 wt %) alloys were developed for stents. As Li increases, the strength of alloys is dramatically improved by refined grains, increased volume fraction of ε-CuZn4 and solid solution of Li. Zn-2Cu-0.07Li alloy exhibits a TYS exceeding 320 MPa, UTS exceeding 360 MPa and fracture EL of nearly 30 %. It shows favorable mechanical stability, degradation behaviors and cytocompatibility. The alloy was fabricated into microtubes and stents for mechanical property tests to verify application feasibility for the first time. This indicates that Zn-2Cu-0.07Li alloy has great potential for vascular stent applications.

Abstract Image

开发具有合适机械性能、降解行为和细胞相容性的 Zn-2Cu-xLi (x < 0.1 wt%)合金,用于血管支架。
可生物降解锌合金具有适中的降解率和可接受的生物相容性,因此在血管支架方面显示出巨大的潜力。然而,较差的机械性能限制了它们的应用。本研究开发了具有良好机械性能的低合金 Zn-2Cu-xLi(x = 0.004、0.01、0.07 wt%)合金。其微观结构包括细小的等轴η-Zn 晶粒、微米级、亚微米级和相干的纳米ε-CuZn4 相。引入的锂作为溶质存在于 η-Zn 基体和 ε-CuZn4 相中,导致 ε-CuZn4 体积分数增加、晶粒细化和晶粒尺寸分布更均匀。随着锂含量的增加,通过晶界强化、ε-CuZn4 的沉淀强化和锂的固溶强化,合金的强度显著提高。Zn-2Cu-0.07Li 合金具有最佳的机械性能,拉伸屈服强度为 321.8 兆帕,极限拉伸强度为 362.3 兆帕,断裂伸长率为 28.0%,超过了支架的基准。它还具有良好的机械性能稳定性、弱拉伸压缩屈服不对称和应变速率敏感性。由于增加了 ε-CuZn4 的体积分数,提高了电化学活性,并生成了 Li2CO3 和 LiOH,因此它具有均匀的降解性和 89.5 μm∙year-1 的略微提高的降解率。它具有良好的细胞相容性,微量 Li+ 不会对内皮细胞的活力产生不利影响。制成的微管具有良好的机械性能,支架的平均径向强度为 118 kPa。本研究表明,Zn-2Cu-0.07Li 合金在血管支架应用方面具有潜力和前景。意义说明:锌合金是生物可降解血管支架的理想候选材料。然而,改善其机械性能是一项挑战。结合铜和痕量锂的优点,开发出了用于支架的 Zn-2Cu-xLi (x < 0.1 wt%)合金。随着锂含量的增加,通过细化晶粒、增加ε-CuZn4 的体积分数以及锂的固溶,合金的强度显著提高。Zn-2Cu-0.07Li 合金的 TYS 超过 320 兆帕,UTS 超过 360 兆帕,断裂 EL 接近 30%。它具有良好的机械稳定性、降解行为和细胞相容性。该合金被制成微管和支架,并进行了力学性能测试,首次验证了其应用的可行性。这表明 Zn-2Cu-0.07Li 合金在血管支架应用方面具有巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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