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用于矫形应用的超高弹性允许应变和低磁导率的旋节线 Zr-Nb 合金。

Spinodal Zr-Nb alloys with ultrahigh elastic admissible strain and low magnetic susceptibility for orthopedic applications.

机构信息

School of Materials Science and Engineering, Xiangtan University, Xiangtan 411105, China.

School of Materials Science and Engineering, Xiangtan University, Xiangtan 411105, China.

出版信息

Acta Biomater. 2024 Aug;184:444-460. doi: 10.1016/j.actbio.2024.06.015. Epub 2024 Jun 17.

Abstract

Metallic biomaterials, such as stainless steels, cobalt-chromium-molybdenum (Co-Cr-Mo) alloys, and titanium (Ti) alloys, have long been used as load-bearing implant materials due to their metallic mechanical strength, corrosion resistance, and biocompatibility. However, their magnetic susceptibility and elastic modulus of more than 100 GPa significantly restrict their therapeutic applicability. In this study, spinodal ZrNb, ZrNb, and ZrNb (at.%) alloys were selected from the miscibility gap based on the Zr-Nb binary phase diagram and prepared by casting, cold rolling, and aging. Their microstructure, mechanical properties, corrosion resistance, magnetic susceptibility, and biocompatibility were systematically evaluated. Spinodal decomposition to alternating nanoscale Zr-rich β and Nb-rich β phases occurred in the cold-rolled Zr-Nb alloys during aging treatment at 650 °C. In addition, a minor amount of α phase was precipitated in ZrNb due to the thermodynamic instability of the Zr-rich β phase. Spinodal decomposition significantly improved the mechanical strength of the alloys due to nanosized dual-cubic reinforcement. The Zr-Nb alloys showed an electrochemical corrosion rate of 94-262 nm per year in Hanks' solution because of formation of dense passive films composed of ZrO and NbO during the polarization process. The magnetic susceptibilities of the Zr-Nb alloys were significantly lower than those of commercial Co-Cr-Mo and Ti alloys. The cell viability of the Zr-Nb alloys was more than 98 % toward MC3T3-E1 cells. Overall, the spinodal Zr-Nb alloys have enormous potential as bone-implant materials due to their outstanding overall mechanical properties, extraordinary corrosion resistance, low magnetic susceptibility, and sufficient bicompatibility. STATEMENT OF SIGNIFICANCE: This work reports on spinodal Zr-Nb alloys with heterostructure. Spinodal decomposition significantly improved their mechanical strength due to the nanosized dual-cubic reinforcement. The Zr-Nb alloys showed large corrosion resistance in Hanks' solution because of formation of dense passivation films composed of ZrO and NbO during the polarization process. The magnetic susceptibilities of the Zr-Nb alloys were significantly lower than those of commercial Co-Cr-Mo and Ti alloys. The cell viability of the Zr-Nb alloys was more than 98 % toward MC3T3-E1 cells. The results demonstrate that spinodal Zr-Nb alloys have enormous potential as bone-implant materials due to their outstanding overall mechanical properties, high corrosion resistance, low magnetic susceptibility, and sufficient biocompatibility.

摘要

金属生物材料,如不锈钢、钴铬钼(Co-Cr-Mo)合金和钛(Ti)合金,由于其金属机械强度、耐腐蚀性和生物相容性,长期以来一直被用作承重植入材料。然而,它们的磁敏感性和弹性模量超过 100GPa,严重限制了它们的治疗适用性。在这项研究中,根据 Zr-Nb 二元相图,从混溶性间隙中选择了具有弥散分解结构的 ZrNb、ZrNb 和 ZrNb(at.%)合金,并通过铸造、冷轧和时效制备。系统地评估了它们的微观结构、力学性能、耐腐蚀性、磁敏感性和生物相容性。在 650°C 的时效处理过程中,冷轧 Zr-Nb 合金中发生了纳米级富 Zrβ和富 Nbβ相的旋节分解。此外,由于富 Zrβ相的热力学不稳定性,ZrNb 中还析出了少量的α相。由于纳米双立方增强,旋节分解显著提高了合金的力学强度。在 Hanks 溶液中,Zr-Nb 合金的电化学腐蚀速率为每年 94-262nm,这是由于在极化过程中形成了由 ZrO 和 NbO 组成的致密钝化膜。Zr-Nb 合金的磁敏感性明显低于商用 Co-Cr-Mo 和 Ti 合金。Zr-Nb 合金对 MC3T3-E1 细胞的细胞活力超过 98%。总的来说,由于具有优异的综合力学性能、卓越的耐腐蚀性、低磁敏感性和足够的生物相容性,具有异质结构的弥散分解 Zr-Nb 合金具有作为骨植入材料的巨大潜力。

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