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电抛光和光电催化氧化生物医学镍钛形状记忆合金的微观结构、镍抑制及力学特性

Microstructure, nickel suppression and mechanical characteristics of electropolished and photoelectrocatalytically oxidized biomedical nickel titanium shape memory alloy.

作者信息

Chu C L, Guo C, Sheng X B, Dong Y S, Lin P H, Yeung K W K, Chu Paul K

机构信息

Southeast University, Nanjing, China.

出版信息

Acta Biomater. 2009 Jul;5(6):2238-45. doi: 10.1016/j.actbio.2009.01.046. Epub 2009 Feb 5.

Abstract

A new surface modification protocol encompassing an electropolishing pretreatment (EP) and subsequent photoelectrocatalytic oxidation (PEO) has been developed to improve the surface properties of biomedical nickel titanium (NiTi) shape memory alloy (SMA). Electropolishing is a good way to improve the resistance to localized breakdown of NiTi SMA whereas PEO offers the synergistic effects of advanced oxidation and electrochemical oxidation. Our results indicate that PEO leads to the formation of a sturdy titania film on the EP NiTi substrate. There is an Ni-free zone near the top surface and a graded interface between the titania layer and NiTi substrate, which bodes well for both biocompatibility and mechanical stability. In addition, Ni ion release from the NiTi substrate is suppressed, as confirmed by the 10-week immersion test. The modulus and hardness of the modified NiTi surface increase with larger indentation depths, finally reaching plateau values of about 69 and 3.1GPa, respectively, which are slightly higher than those of the NiTi substrate but much lower than those of a dense amorphous titania film. In comparison, after undergoing only EP, the mechanical properties of NiTi exhibit an inverse change with depth. The deformation mechanism is proposed and discussed. Our results indicate that surface modification by dual EP and PEO can notably suppress Ni ion release and improve the biocompatibility of NiTi SMA while the surface mechanical properties are not compromised, making the treated materials suitable for hard tissue replacements.

摘要

一种新的表面改性方案已被开发出来,该方案包括电抛光预处理(EP)和随后的光电催化氧化(PEO),以改善生物医学镍钛(NiTi)形状记忆合金(SMA)的表面性能。电抛光是提高NiTi形状记忆合金抗局部击穿能力的好方法,而光电催化氧化则具有先进氧化和电化学氧化的协同效应。我们的结果表明,光电催化氧化会在经过电抛光的NiTi基底上形成坚固的二氧化钛薄膜。在靠近顶面处存在一个无镍区,并且在二氧化钛层与NiTi基底之间存在渐变界面,这对生物相容性和机械稳定性都有很好的预示。此外,10周浸泡试验证实,NiTi基底的镍离子释放受到抑制。改性NiTi表面的模量和硬度随着压痕深度的增加而增大,最终分别达到约69GPa和3.1GPa的稳定值,略高于NiTi基底但远低于致密非晶二氧化钛薄膜。相比之下,仅经过电抛光后,NiTi的力学性能随深度呈现相反变化。对变形机制进行了提出和讨论。我们的结果表明,通过电抛光和光电催化氧化进行表面改性可以显著抑制镍离子释放并提高NiTi形状记忆合金的生物相容性,同时不损害表面力学性能,使得处理后的材料适用于硬组织替代物。

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