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在模拟生理环境中具有优异抗降解性能的生物相容性高熵合金

Biocompatible High Entropy Alloys with Excellent Degradation Resistance in a Simulated Physiological Environment.

作者信息

Shittu Jibril, Pole Mayur, Cockerill Irsalan, Sadeghilaridjani Maryam, Reddy L Vinod Kumar, Manivasagam Geetha, Singh Harpreet, Grewal Harpreet S, Arora Harpreet Singh, Mukherjee Sundeep

机构信息

Department of Materials Science and Engineering, University of North Texas, Denton, Texas 76203, United States.

Centre for Biomaterials, Cellular and Molecular Theranostics, Vellore Institute of Technology, Vellore, Tamil Nadu 632014, India.

出版信息

ACS Appl Bio Mater. 2020 Dec 21;3(12):8890-8900. doi: 10.1021/acsabm.0c01181. Epub 2020 Nov 18.

Abstract

Bioimplants are susceptible to simultaneous wear and corrosion degradation in the aggressive physiological environment. High entropy alloys with equimolar proportion of constituent elements represent a unique alloy design strategy for developing bioimplants due to their attractive mechanical properties, superior wear, and corrosion resistance. In this study, the tribo-corrosion behavior of an equiatomic MoNbTaTiZr high entropy alloy consisting of all biocompatible elements was evaluated and compared with 304 stainless steel as a benchmark. The high entropy alloy showed a low wear rate and a friction coefficient as well as quick and stable passivation in simulated body fluid. An increase from room temperature to body temperature showed excellent temperature assisted passivity and nobler surface layer of the high entropy alloy, resulting in four times better wear resistance compared to stainless steel. Stem cells and osteoblast cells displayed proliferation and migratory behavior, indicating in vitro biocompatibility. Several filopodia extensions on the cell periphery indicated early osteogenic commitment, and cell adhesion on the high entropy alloy. These results pave the way for utilizing the unique combination of tribo-corrosion resistance, excellent mechanical properties, and biocompatibility of MoNbTaTiZr high entropy alloy to develop bioimplants with improved service life and lower risk of implant induced cytotoxicity in the host body.

摘要

在具有侵蚀性的生理环境中,生物植入物易受到磨损和腐蚀降解的双重影响。具有等摩尔比例组成元素的高熵合金,因其具有吸引人的机械性能、卓越的耐磨性和耐腐蚀性,代表了一种开发生物植入物的独特合金设计策略。在本研究中,对一种由所有生物相容性元素组成的等原子MoNbTaTiZr高熵合金的摩擦腐蚀行为进行了评估,并与作为基准的304不锈钢进行了比较。该高熵合金在模拟体液中显示出低磨损率和摩擦系数,以及快速且稳定的钝化现象。从室温升高到体温,该高熵合金表现出优异的温度辅助钝化和更具惰性的表面层,其耐磨性比不锈钢高出四倍。干细胞和成骨细胞表现出增殖和迁移行为,表明其具有体外生物相容性。细胞周边的多个丝状伪足延伸表明早期成骨倾向以及细胞在高熵合金上的粘附。这些结果为利用MoNbTaTiZr高熵合金独特的摩擦腐蚀抗性、优异的机械性能和生物相容性组合来开发具有更长使用寿命和更低植入物诱导宿主机体细胞毒性风险的生物植入物铺平了道路。

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