Xu Jingyuan, Zhang Jiawen, Shi Yangfan, Tang Jincheng, Huang Danni, Yan Ming, Dargusch Matthew S
School of Mechanical and Mining Engineering, The University of Queensland, Brisbane 4072, Australia.
Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, China.
Materials (Basel). 2022 Feb 25;15(5):1749. doi: 10.3390/ma15051749.
Ti is widely used as a material for orthopedic implants. As rapid and effective osseointegration is a key factor for the successful application of implants, biologically inert Ti materials start to show inherent limitations, such as poor surface cell adhesion, bioactivity, and bone-growth-inducing capabilities. Surface modification can be an efficient and effective approach to addressing the biocompatibility, mechanical, and functionality issues of the various Ti implant materials. In this study, we have overviewed more than 140 papers to summarize the recent progress in the surface modification of Ti implants by physical and/or chemical modification approaches, aiming at optimizing their wear resistance, biocompatibility, and antimicrobial properties. As an advanced manufacturing technology for Ti and Ti alloys, additive manufacturing was particularly addressed in this review. We also provide an outlook for future research directions in this field as a contribution to the development of advanced Ti implants for biomedical applications.
钛被广泛用作骨科植入物的材料。由于快速有效的骨整合是植入物成功应用的关键因素,生物惰性钛材料开始显示出固有的局限性,如表面细胞粘附性差、生物活性和骨生长诱导能力不足。表面改性可以是解决各种钛植入材料的生物相容性、机械性能和功能问题的一种有效方法。在本研究中,我们综述了140多篇论文,总结了通过物理和/或化学改性方法对钛植入物进行表面改性的最新进展,旨在优化其耐磨性、生物相容性和抗菌性能。作为钛及钛合金的先进制造技术,增材制造在本综述中得到了特别关注。我们还展望了该领域未来的研究方向,为生物医学应用的先进钛植入物的发展做出贡献。