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在可生物降解镁合金中实现高性能:Mg-Zn-Ca 体系的挑战与前景综述

Attaining High Functional Performance in Biodegradable Mg-Alloys: An Overview of Challenges and Prospects for the Mg-Zn-Ca System.

作者信息

Vinogradov Alexei, Merson Evgeniy, Myagkikh Pavel, Linderov Mikhail, Brilevsky Alexandr, Merson Dmitry

机构信息

Department of Mechanical and Industrial Engineering, Norwegian University of Science and Technology, 4791 Trondheim, Norway.

Magnesium Research Center, Kumamoto University, Kumamoto 860-8555, Japan.

出版信息

Materials (Basel). 2023 Feb 3;16(3):1324. doi: 10.3390/ma16031324.

Abstract

This article presents a concise overview of modern achievements and existing knowledge gaps in the area of biodegradable magnesium alloys. Hundreds of Mg-based alloys have been proposed as candidates for temporary implants, and this number tends to increase day by day. Therefore, while reviewing common aspects of research in this field, we confine ourselves primarily to the popular Mg-Zn-Ca system, taken as a representative example. Over the last decades, research activities in this area have grown enormously and have produced many exciting results. Aiming at highlighting the areas where research efforts are still scarce, we review the state-of-the-art processing techniques and summarize the functional properties attained via a wide variety of processing routes devised towards achieving a desired properties profile, including the mechanical response in terms of strength, ductility, and fatigue resistance paired with biocompatibility and bio-corrosion resistance or controlled degradability. We pay keen attention to a summary of corrosion properties and mechano-chemical interactions between an aggressive environment and loaded Mg-based structures, resulting in stress corrosion cracking and premature corrosion fatigue failures. The polemic issues and challenges practitioners face in their laboratory research are identified and discussed.

摘要

本文简要概述了可生物降解镁合金领域的现代成就和现有的知识空白。数百种镁基合金已被提议作为临时植入物的候选材料,而且这一数量还在日益增加。因此,在回顾该领域研究的共同方面时,我们主要将自己局限于作为典型例子的常见Mg-Zn-Ca体系。在过去几十年里,该领域的研究活动大幅增加,并取得了许多令人兴奋的成果。为了突出研究工作仍然匮乏的领域,我们回顾了最先进的加工技术,并总结了通过为实现所需性能而设计的各种加工路线所获得的功能特性,包括强度、延展性和抗疲劳性方面的力学响应,以及生物相容性、抗生物腐蚀或可控降解性。我们密切关注腐蚀特性以及侵蚀性环境与加载的镁基结构之间的机械化学相互作用的总结,这些相互作用会导致应力腐蚀开裂和过早的腐蚀疲劳失效。确定并讨论了从业者在实验室研究中面临的有争议的问题和挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a12/9920771/fdedf525a0aa/materials-16-01324-g001.jpg

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