State Key Lab of Powder Metallurgy, Central South University, Changsha, 410083, PR China.
Mater Sci Eng C Mater Biol Appl. 2020 Feb;107:110327. doi: 10.1016/j.msec.2019.110327. Epub 2019 Oct 21.
In this work, Ti and Mg alloys were made into composites by using spark plasma sintering, in order to combine the high stiffness of Ti and biodegradability of Mg alloys. The effect of the content of Mg-3Zn alloy on the degradability was studied by using electrochemical corrosion, immersion in simulated body fluid and incubation of Saos-2 cells. The results show that Ti-Mg metal-metal composites (MMCs) exhibit low Young's modulus (31-48 GPa) and good yield strength (616.5-642.8 MPa). The modulus and strength both decrease with the content of Mg-3Zn alloy increasing. The electrochemical corrosion rates of Ti-Mg MMCs were much lower than that of monolithic Mg-3Zn alloys. After an immersion for 21 days, Ti matrix remained integrity and Mg phase dissolved in the solution, inducing the formation of apatite layer on the MMCs. The precipitation of apatite increased with the content of Mg-3Zn alloy increasing. In vitro study indicated that Ti-10Mg and Ti-20 Mg MMCs possessed good biocompatibility to Saos-2 cells, while the biocompatibility of Ti-30 Mg MMCs decreased slightly. In summary, Ti-Mg MMCs are promising implant materials with adjustable degradation rates and improved biocompatibility for orthopedic applications.
在这项工作中,采用火花等离子烧结法将 Ti 和 Mg 合金制成复合材料,以结合 Ti 的高刚度和 Mg 合金的生物降解性。通过电化学腐蚀、模拟体液浸泡和 Saos-2 细胞孵育研究了 Mg-3Zn 合金含量对降解性的影响。结果表明,Ti-Mg 金属-金属复合材料(MMCs)表现出低杨氏模量(31-48 GPa)和良好的屈服强度(616.5-642.8 MPa)。随着 Mg-3Zn 合金含量的增加,模量和强度均降低。Ti-Mg MMCs 的电化学腐蚀速率远低于单相 Mg-3Zn 合金。浸泡 21 天后,Ti 基体保持完整,Mg 相溶解在溶液中,导致 MMCs 上形成磷灰石层。磷灰石的沉淀随着 Mg-3Zn 合金含量的增加而增加。体外研究表明,Ti-10Mg 和 Ti-20Mg MMCs 对 Saos-2 细胞具有良好的生物相容性,而 Ti-30Mg MMCs 的生物相容性略有下降。总之,Ti-Mg MMCs 是一种有前途的植入材料,具有可调节的降解率和改善的生物相容性,适用于骨科应用。