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用于生物医学应用的柔韧和坚韧的超弹性 Co-Cr 合金。

Flexible and Tough Superelastic Co-Cr Alloys for Biomedical Applications.

机构信息

Department of Materials Science, Graduate School of Engineering, Tohoku University, Aobayama 6-6-02, Sendai, 980-8579, Japan.

Department of Materials Processing, Graduate School of Engineering, Tohoku University, Aobayama 6-6-02, Sendai, 980-8579, Japan.

出版信息

Adv Mater. 2022 Jul;34(27):e2202305. doi: 10.1002/adma.202202305. Epub 2022 Jun 3.

Abstract

The demand for biomaterials has been increasing along with the increase in the population of elderly people worldwide. The mechanical properties and high wear resistance of metallic biomaterials make them well-suited for use as substitutes or as support for damaged hard tissues. However, unless these biomaterials also have a low Young's modulus similar to that of human bones, bone atrophy inevitably occurs. Because a low Young's modulus is typically associated with poor wear resistance, it is difficult to realize a low Young's modulus and high wear resistance simultaneously. Also, the superelastic property of shape-memory alloys makes them suitable for biomedical applications, like vascular stents and guide wires. However, due to the low recoverable strain of conventional biocompatible shape-memory alloys, the demand for a new alloy system is high. The novel body-centered-cubic cobalt-chromium-based alloys in this work provide a solution to both of these problems. The Young's modulus of <001>-oriented single-crystal cobalt-chromium-based alloys is 10-30 GPa, which is similar to that of human bone, and they also demonstrate high wear and corrosion resistance. They also exhibit superelasticity with a huge recoverable strain up to 17.0%. For these reasons, the novel cobalt-chromium-based alloys can be promising candidates for biomedical applications.

摘要

随着全球老年人口的增加,对生物材料的需求也在不断增加。金属生物材料具有良好的机械性能和高耐磨性,非常适合用作受损硬组织的替代品或支撑物。然而,除非这些生物材料的杨氏模量也与人类骨骼相似,否则不可避免地会发生骨萎缩。因为低杨氏模量通常与耐磨性差有关,所以很难同时实现低杨氏模量和高耐磨性。此外,形状记忆合金的超弹性使其适用于生物医学应用,如血管支架和导丝。然而,由于传统生物相容性形状记忆合金的可恢复应变较低,因此对新型合金系统的需求很高。本工作中的新型体心立方钴铬基合金解决了这两个问题。<001>取向单晶钴铬基合金的杨氏模量为 10-30 GPa,与人类骨骼相似,同时具有高耐磨性和耐腐蚀性。它们还具有高达 17.0%的超弹性应变恢复能力。由于这些原因,新型钴铬基合金有望成为生物医学应用的候选材料。

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