Tanji Ayoub, Fan Xuesong, Sakidja Ridwan, Liaw Peter K, Hermawan Hendra
Department of Mining, Metallurgical, and Materials Engineering, Laval University, Quebec City, QC G1V 0A6, Canada.
Department of Materials Science and Engineering, The University of Tennessee, Knoxville, TN 37996, USA.
J Funct Biomater. 2024 Oct 14;15(10):305. doi: 10.3390/jfb15100305.
A family of TiHfZrNb high-entropy alloys has been considered novel biomaterials for high-performance, small-sized implants. The present work evaluates the role of niobium on passivation kinetics and electrochemical characteristics of passive film on TiHfZrNb alloys formed in Hanks' simulated body fluid by analyzing electrochemical data with three analytical models. Results confirm that higher niobium content in the alloys reinforces the compactness of the passive film by favoring the dominance of film formation and thickening mechanism over the dissolution mechanism. Higher niobium content enhances the passivation kinetics to rapidly form the first layer, and total surface coverage reinforces the capacitive-resistant behavior of the film by enrichment with niobium oxides and reduces the point defect density and their mobility across the film, lowering pitting initiation susceptibility. With the high resistance to dissolution and rapid repassivation ability in the aggressive Hanks' simulated body fluid, the TiHfZrNb alloys confirm their great potential as new materials for biomedical implants and warrant further biocompatibility testing.
TiHfZrNb高熵合金系被认为是用于高性能小型植入物的新型生物材料。本研究通过用三种分析模型分析电化学数据,评估了铌对TiHfZrNb合金在汉克斯模拟体液中形成的钝化膜的钝化动力学和电化学特性的作用。结果证实,合金中较高的铌含量通过促进成膜和增厚机制而非溶解机制的主导作用,增强了钝化膜的致密性。较高的铌含量提高了钝化动力学,使其能迅速形成第一层,并且总的表面覆盖率通过富集铌氧化物增强了膜的容抗行为,降低了点缺陷密度及其在膜中的迁移率,降低了点蚀引发的敏感性。由于在具有侵蚀性的汉克斯模拟体液中具有高抗溶解能力和快速再钝化能力,TiHfZrNb合金证实了其作为生物医学植入物新材料的巨大潜力,值得进一步进行生物相容性测试。