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用于生物医学应用的具有典型高溶解性稀土元素的单相镁合金设计:概念与验证。

Design of single-phased magnesium alloys with typically high solubility rare earth elements for biomedical applications: Concept and proof.

作者信息

Bian Dong, Chu Xiao, Xiao Jin, Tong Zhipei, Huang He, Jia Qinggong, Liu Jianing, Li Wenting, Yu Hui, He Yue, Ma Limin, Wang Xiaolan, Li Mei, Yang Tao, Huang Wenhan, Zhang Chi, Yao Mengyu, Zhang Yu, Xu Zhigang, Guan Shaokang, Zheng Yufeng

机构信息

Medical Research Center, Guangdong Provincial People's Hospital, Guangdong Academy of Medical Sciences, Guangzhou, 510080, China.

Department of Orthopedics, Guangdong Provincial People's Hospital, Guangdong Academy of Medical Sciences, Guangzhou, 510080, China.

出版信息

Bioact Mater. 2022 Oct 1;22:180-200. doi: 10.1016/j.bioactmat.2022.09.018. eCollection 2023 Apr.

Abstract

Rare earth elements (REEs) have been long applied in magnesium alloys, among which the mischmetal-containing WE43 alloy has already got the CE mark approval for clinical application. A considerable amount of REEs (7 wt%) is needed in that multi-phased alloy to achieve a good combination of mechanical strength and corrosion resistance. However, the high complex RE addition accompanied with multiple second phases may bring the concern of biological hazards. Single-phased Mg-RE alloys with simpler compositions were proposed to improve the overall performance, i.e., "Simpler alloy, better performance". The single-phased microstructure can be successfully obtained with typical high-solubility REEs (Ho, Er or Lu) through traditional smelting, casting and extrusion in a wide compositional range. A good corrosion resistance with a macroscopically uniform corrosion mode was guaranteed by the homogeneously single-phased microstructure. The bimodal-grained structure with plenty of sub-grain microstructures allow us to minimize the RE addition to <1 wt%, without losing mechanical properties. The single-phased Mg-RE alloys show comparable mechanical properties to the clinically-proven Mg-based implants. They exhibited similar and performances (without local or systematic toxicity in SD-rats) compared to a high purity magnesium. In addition, metal elements in our single-phased alloys can be gradually excreted through the urinary system and digestive system, showing no consistent accumulation of RE in main organs, i.e., less burden on organs. The novel concept in this study focuses on the simplification of Mg-RE based alloys for biomedical purpose, and other biodegradable metals with single-phased microstructures are expected to be explored.

摘要

稀土元素(REEs)长期以来一直应用于镁合金中,其中含混合稀土的WE43合金已获得临床应用的CE标志认证。在那种多相合金中需要大量的稀土元素(7 wt%)才能实现机械强度和耐腐蚀性的良好结合。然而,高含量复杂的稀土添加以及多个第二相可能会引发生物危害的担忧。为了提高整体性能,即“合金更简单,性能更优良”,人们提出了成分更简单的单相Mg-RE合金。通过传统的熔炼、铸造和挤压工艺,在较宽的成分范围内使用典型的高溶解度稀土元素(钬、铒或镥)能够成功获得单相微观结构。均匀的单相微观结构保证了良好的耐腐蚀性以及宏观上均匀的腐蚀模式。具有大量亚晶粒微观结构的双峰晶粒结构使我们能够将稀土添加量降至<1 wt%,同时又不损失机械性能。单相Mg-RE合金的机械性能与经临床验证的镁基植入物相当。与高纯度镁相比,它们表现出相似的性能(在SD大鼠中无局部或全身毒性)。此外,我们单相合金中的金属元素可通过泌尿系统和消化系统逐渐排出,在主要器官中没有稀土元素的持续积累,即对器官的负担较小。本研究中的新概念侧重于简化用于生物医学目的的Mg-RE基合金,预计还将探索其他具有单相微观结构的可生物降解金属。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9908/9531051/1737bb7392c5/ga1.jpg

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