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Surface properties and bioactivity of TiO2 nanotube array prepared by two-step anodic oxidation for biomedical applications

机译:两步阳极氧化制备的TiO2纳米管阵列的表面性质和生物活性

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摘要

A highly ordered TiO2 nanotube array has been prepared on a commercial pure titanium substrate in a hydrofluoric (HF) electrolyte using a DC power source through two-step anodic oxidation. The morphology, composition, wettability and surface energy of the nanotube array have been characterized by using a field-emission scanning electron microscope (FE-SEM), a transmission electron microscope (JEM-2010) with energy-dispersive X-ray spectrometer EDX (INCA OXFORD), X-ray diffraction method, an atomic force microscope (AFM), an optical contact angle measuring device and the Owens method with two liquids. The electrochemical behaviours of anodic oxidation films with different structures have been investigated in Sodium Lactate Ringer's Injection at 37±1°C by potentiodynamic polarization curve and electrochemical impedance spectroscopy. The formation mechanism of the nanotube array and the advantages of two-step oxidation have been discussed according to the experimental observation and the characterized results. Meanwhile, the structural changes of nanotubes are analysed according to the results of impedance spectroscopy. Cytotoxicity testing and cell adhesion and proliferation have been studied in order to evaluate the bioactivity of the nanotube array film. The diameters of nanotubes are in the range of 120–140 nm. The nanotube surface shows better wettability and higher surface energy compared to the bare substrate. The nanotube surface exhibits a wide passivation range and good corrosion resistance. The growth of the nanotube array is the result of the combined action of the anodization and field-assisted dissolution. The nanotube array by two-step oxidation becomes more regular and orderly. Moreover, the nanotube array surface is non-toxic and favourable to cell adhesion and proliferation. Such nanotube array films are expected to have significant biomedical applications.
机译:使用直流电源通过两步阳极氧化,在氢氟酸(HF)电解质中的商业纯钛基板上制备了高度有序的TiO2纳米管阵列。纳米管阵列的形貌,组成,润湿性和表面能通过使用场发射扫描电子显微镜(FE-SEM),透射电子显微镜(JEM-2010)和能量色散X射线光谱仪EDX( (INCA OXFO​​RD),X射线衍射法,原子力显微镜(AFM),光学接触角测量装置以及两种液体的Owens方法。通过电位动力学极化曲线和电化学阻抗谱研究了乳酸钠林格注射液在37±1℃下对不同结构的阳极氧化膜的电化学行为。根据实验观察和表征结果,探讨了纳米管阵列的形成机理和两步氧化的优点。同时,根据阻抗谱的结果分析了纳米管的结构变化。为了评估纳米管阵列膜的生物活性,已经研究了细胞毒性测试以及细胞粘附和增殖。纳米管的直径在120-140 nm之间。与裸衬底相比,纳米管表面显示出更好的润湿性和更高的表面能。纳米管表面具有宽的钝化范围和良好的耐腐蚀性。纳米管阵列的生长是阳极氧化和现场辅助溶解共同作用的结果。通过两步氧化的纳米管阵列变得更规则和有序。而且,纳米管阵列表面是无毒的并且有利于细胞粘附和增殖。预期这种纳米管阵列膜具有重要的生物医学应用。

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