Zhao Hui, Cheng Jing, Zhao Chaochao, Wen Min, Wang Rui, Wu Di, Wu Zhaoying, Yang Fang, Sheng Liyuan
School of Material Science and Engineering, Xi'an Shiyou University, Xi'an 710065, China.
PKU-HKUST ShenZhen-HongKong Institution, Shenzhen 518057, China.
Materials (Basel). 2025 Apr 9;18(8):1718. doi: 10.3390/ma18081718.
Magnesium (Mg) alloys have gained much attention for biomedical applications, due to their attractive properties, such as high specific strength, low density, low elasticity modulus, high damping capacity, biodegradation, and relatively good cytocompatibility. However, the biomedical use of Mg alloys also faces several challenges, primarily due to their low corrosion resistance and insufficient strength. Therefore, improving the strength and corrosion resistance of biomedical Mg alloys has become a critical issue. This review briefly summarizes the selection of appropriate alloying elements for biomedical Mg alloys, which is the fundamental factor in determining their microstructure, cytocompatibility, mechanical properties, and corrosion performance. It also discusses typical thermomechanical processing methods, including hot extrusion, hot rolling and hot forging, and examines the influence of deformation mode on microstructure, mechanical properties, and degradation behavior. Specifically, combining different thermomechanical processing methods could be an optimal choice, as it leverages the high efficiency and effectiveness of each method. Finally, the clinical application of biomedical Mg alloys in various fields are summarized and discussed to highlight their potential prospect and corresponding challenges. This review aims to provide insights for the rationale design and development of high-performance biomedical Mg alloys for widespread clinical applications.
镁(Mg)合金因其具有诸如高比强度、低密度、低弹性模量、高阻尼能力、生物可降解性以及相对良好的细胞相容性等吸引人的特性,在生物医学应用方面备受关注。然而,镁合金的生物医学应用也面临一些挑战,主要是由于其耐腐蚀性低和强度不足。因此,提高生物医学镁合金的强度和耐腐蚀性已成为一个关键问题。本综述简要总结了生物医学镁合金合适合金元素的选择,这是决定其微观结构、细胞相容性、力学性能和腐蚀性能的基本因素。还讨论了典型的热机械加工方法,包括热挤压、热轧和热锻造,并研究了变形模式对微观结构、力学性能和降解行为的影响。具体而言,结合不同的热机械加工方法可能是一个最佳选择,因为它利用了每种方法的高效率和有效性。最后,总结并讨论了生物医学镁合金在各个领域的临床应用,以突出其潜在前景和相应挑战。本综述旨在为高性能生物医学镁合金的合理设计和开发提供见解,以实现广泛的临床应用。