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通过添加约……对临床认可的镁锌合金体系进行优化

Optimization of the clinically approved mg-Zn alloy system through the addition of ca.

作者信息

Roh Hyung-Jin, Park Jaeho, Lee Sun-Hee, Kim Do-Hyang, Lee Gwang-Chul, Jeon Hojeong, Chae Minseong, Lee Kang-Sik, Sun Jeong-Yun, Lee Dong-Ho, Han Hyung-Seop, Kim Yu-Chan

机构信息

Nanostructural Material Laboratory, Department of Advanced Materials, Yonsei University, Seoul, 03722, Republic of Korea.

Center for Biomaterials, Korea Institute of Science and Technology, Seoul, 02792, Republic of Korea.

出版信息

Biomater Res. 2022 Sep 5;26(1):41. doi: 10.1186/s40824-022-00283-5.

Abstract

BACKGROUND

Although several studies on the Mg-Zn-Ca system have focused on alloy compositions that are restricted to solid solutions, the influence of the solid solution component of Ca on Mg-Zn alloys is unknown. Therefore, to broaden its utility in orthopedic applications, studies on the influence of the addition of Ca on the microstructural, mechanical, and corrosion properties of Mg-Zn alloys should be conducted. In this study, an in-depth investigation of the effect of Ca on the mechanical and bio-corrosion characteristics of the Mg-Zn alloy was performed for the optimization of a clinically approved Mg alloy system comprising Ca and Zn.

METHODS

The Mg alloy was fabricated by gravitational melting of high purity Mg, Ca, and Zn metal grains under an Ar gas environment. The surface and cross-section were observed using scanning electron microscopy (SEM) and transmission electron microscopy (TEM) to analyze their crystallographic structures. Electrochemical and immersion tests in Hank's balanced salt solution were used to analyze their corrosion resistance. Tensile testing was performed with universal testing equipment to investigate the impact of Ca addition. The examination of cytotoxicity for biometric determination was in line with the ISO10993 standard.

RESULTS

In this study, the 0.1% Ca alloy had significantly retarded grain growth due to the formation of the tiny and well-dispersed CaMgZn phase. In addition, the yield strength and elongation of the 0.1% Ca alloy were more than 50% greater than the 2% Zn alloy. The limited cell viability of the 0.3% Ca alloy could be attributed to its high corrosion rate, whereas the 0.1% Ca alloy demonstrated cell viability of greater than 80% during the entire experimental period.

CONCLUSION

The effect of the addition of Ca on the microstructure, mechanical, and corrosion characteristics of Mg-Zn alloys was analyzed in this work. The findings imply that the Mg-Zn alloy system could be optimized by adding a small amount of Ca, improving mechanical properties while maintaining corrosion rate, thus opening the door to a wide range of applications in orthopedic surgery.

摘要

背景

尽管关于镁 - 锌 - 钙体系的多项研究集中于局限于固溶体的合金成分,但钙的固溶体成分对镁 - 锌合金的影响尚不清楚。因此,为扩大其在骨科应用中的效用,应开展关于添加钙对镁 - 锌合金微观结构、力学性能和腐蚀性能影响的研究。在本研究中,对钙对镁 - 锌合金力学和生物腐蚀特性的影响进行了深入研究,以优化一种包含钙和锌且已获临床批准的镁合金体系。

方法

在氩气环境下通过重力熔炼高纯度镁、钙和锌金属颗粒来制备镁合金。使用扫描电子显微镜(SEM)和透射电子显微镜(TEM)观察表面和横截面,以分析其晶体结构。在汉克平衡盐溶液中进行电化学和浸泡试验,以分析其耐腐蚀性。使用通用测试设备进行拉伸试验,以研究添加钙的影响。生物测定的细胞毒性检测符合ISO10993标准。

结果

在本研究中,由于形成了细小且分散良好的CaMgZn相,0.1%钙合金的晶粒生长明显受到抑制。此外,0.1%钙合金的屈服强度和伸长率比2%锌合金高出50%以上。0.3%钙合金有限的细胞活力可归因于其高腐蚀速率,而0.1%钙合金在整个实验期间的细胞活力大于80%。

结论

本工作分析了添加钙对镁 - 锌合金微观结构、力学和腐蚀特性的影响。研究结果表明,通过添加少量钙可以优化镁 - 锌合金体系,在保持腐蚀速率的同时改善力学性能,从而为骨科手术中的广泛应用打开大门。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9db5/9446879/aa6722f145f8/40824_2022_283_Fig1_HTML.jpg

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