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用于承重永久性植入物的低弹性模量 Ti-Ta 合金:通过电化学表面工程提高抗生物降解性。

Low elastic modulus Ti-Ta alloys for load-bearing permanent implants: enhancing the biodegradation resistance by electrochemical surface engineering.

机构信息

Biomaterials and Engineering Materials (BEM) Laboratory, School of Engineering and Physical Sciences, James Cook University, Townsville, Queensland 4811, Australia.

Biomaterials and Engineering Materials (BEM) Laboratory, School of Engineering and Physical Sciences, James Cook University, Townsville, Queensland 4811, Australia.

出版信息

Mater Sci Eng C Mater Biol Appl. 2015 Jan;46:226-31. doi: 10.1016/j.msec.2014.10.038. Epub 2014 Oct 22.

DOI:10.1016/j.msec.2014.10.038
PMID:25491981
Abstract

In this study, the in vitro degradation behaviour of titanium-tantalum (Ti-Ta) alloys (10-30 wt.% Ta) was investigated and compared with conventional implant materials, i.e., commercially pure titanium (Cp-Ti) and titanium-aluminium-vanadium (Ti6Al4V) alloy. Among the three Ti-Ta alloys studied, the Ti20Ta (6.3×10(-4) mm/y) exhibited the lowest degradation rate, followed by Ti30Ta (1.2×10(-3) mm/y) and Ti10Ta (1.4×10(-3) mm/y). All the Ti-Ta alloys exhibited lower degradation rate than that of Cp-Ti (1.8×10(-3) mm/y), which suggests that Ta addition to Ti is beneficial. As compared to Ti6Al4V alloy (8.1×10(-4) mm/y), the degradation rate of Ti20Ta alloy was lower by ~22%. However, the Ti30Ta alloy, which has closer elastic modulus to that of natural bone, showed ~48% higher degradation rate than that of Ti6Al4V alloy. Hence, to improve the degradation performance of Ti30Ta alloy, an intermediate thin porous layer was formed electrochemically on the alloy followed by calcium phosphate (CaP) electrodeposition. The coated Ti30Ta alloy (3.8×10(-3) mm/y) showed ~53% lower degradation rate than that of Ti6Al4V alloy. Thus, the study suggests that CaP coated Ti30Ta alloy can be a viable material for load-bearing permanent implants.

摘要

在这项研究中,研究了钛钽(Ti-Ta)合金(10-30wt.%Ta)的体外降解行为,并将其与传统植入材料,即纯钛(Cp-Ti)和钛铝合金(Ti6Al4V)合金进行了比较。在所研究的三种 Ti-Ta 合金中,Ti20Ta(6.3×10(-4)mm/y)表现出最低的降解速率,其次是 Ti30Ta(1.2×10(-3)mm/y)和 Ti10Ta(1.4×10(-3)mm/y)。所有 Ti-Ta 合金的降解速率均低于 Cp-Ti(1.8×10(-3)mm/y),这表明 Ta 的添加对 Ti 是有益的。与 Ti6Al4V 合金(8.1×10(-4)mm/y)相比,Ti20Ta 合金的降解速率低约 22%。然而,Ti30Ta 合金的弹性模量更接近天然骨,其降解速率比 Ti6Al4V 合金高约 48%。因此,为了改善 Ti30Ta 合金的降解性能,在合金上电化学形成了一层中间多孔层,然后进行钙磷(CaP)电沉积。涂覆的 Ti30Ta 合金(3.8×10(-3)mm/y)的降解速率比 Ti6Al4V 合金低约 53%。因此,该研究表明,CaP 涂覆的 Ti30Ta 合金可以成为用于承重永久性植入物的可行材料。

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