School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, People's Republic of China.
Acta Biomater. 2013 Jun;9(6):7043-53. doi: 10.1016/j.actbio.2013.02.019. Epub 2013 Feb 18.
The mechanical properties and biocompatibility of an Ni-free Zr-based bulk metallic glass (BMG) Zr60.14Cu22.31Fe4.85Al9.7Ag3 were investigated in detail to evaluate its potential as a biomaterial. The BMG was found to have a low Young's modulus of 82±1.9GPa, a high strength of 1720±28MPa and a high fracture toughness of 94±19MPam(1/2), as well as good fatigue strength over 400MPa. The corrosion behavior of the alloy was investigated in simulated body fluid (SBF) by electrochemical measurements, which indicates that the Zr-based BMG has a better corrosion resistance than pure Zr and Ti6Al4V. X-ray photoelectron spectroscopy analysis revealed that the passive film formed on the BMG surface is enriched in Al- and Zr-oxides, which could account for the good corrosion resistance of the BMG. On the other hand, metal ion release of the BMG in SBF was determined by inductively coupled plasma mass spectrometry after the BMG was immersed in SBF at 37°C for 30days, showing a ppb (ngml(-1)) level of metal ion release. The in vitro test via cell culture indicates that the BMG exhibits a cytotoxicity of Grade 0-1, which is as good as Ti6Al4V alloy. Cell adhesion morphological analysis shows that the cells were flattened and well spread out on the surfaces of the BMG, showing that the BMG had good biocompatibility. The combination of good mechanical properties and biocompatibility demonstrates that the Ni-free Zr-based BMG studied in this work is a good candidate for a new type of load-bearing biomedical material.
详细研究了一种无镍 Zr 基大块非晶合金(BMG)Zr60.14Cu22.31Fe4.85Al9.7Ag3 的力学性能和生物相容性,以评估其作为生物材料的潜力。研究发现,该 BMG 的杨氏模量低至 82±1.9GPa,强度高达 1720±28MPa,断裂韧性高达 94±19MPam(1/2),且疲劳强度超过 400MPa。通过电化学测量研究了合金在模拟体液(SBF)中的腐蚀行为,表明 Zr 基 BMG 的耐腐蚀性优于纯 Zr 和 Ti6Al4V。X 射线光电子能谱分析表明,在 BMG 表面形成的钝化膜富含 Al 和 Zr 氧化物,这可以解释 BMG 的良好耐腐蚀性。另一方面,通过电感耦合等离子体质谱法(ICP-MS)测定了 BMG 在 SBF 中浸泡 30 天后的金属离子释放量,释放量达到 ppb(ngml(-1)) 级。通过细胞培养进行的体外测试表明,BMG 的细胞毒性为 0-1 级,与 Ti6Al4V 合金相当。细胞黏附形态分析表明,细胞在 BMG 表面扁平且展开良好,表明 BMG 具有良好的生物相容性。良好的力学性能和生物相容性表明,本研究中所研究的无镍 Zr 基 BMG 是一种新型承重生物医学材料的良好候选材料。