首页> 外文期刊>Journal of nanoscience and nanotechnology >Influence of Thermal Modification and Morphology of TiO2 Nanotubes on Their Electrochemical Properties for Biosensors Applications
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Influence of Thermal Modification and Morphology of TiO2 Nanotubes on Their Electrochemical Properties for Biosensors Applications

机译:TiO2纳米管热改性和形态对生物传感器应用的电化学性质的影响

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摘要

The morphology of self-assembled TiO2 nanotubes layer plays a key role in electrical conductivity and biocompatibility properties in terms of cell proliferation, adhesion and mineralization. Many research studies have been reported in using a TiO2 nanotubes for different medical applications, there is a lack of unified correlation between TNT morphology and its electrochemical properties. The aim of this study was to examine the effects of diameter and annealing conditions on TiO2 nanotubes with identical height and their behaviour as biosensor platform. TiO2 nanotubes layer, 1000 nm thick with nanotubes of diameters in range: 25 divided by 100 nm, was prepared by anodizing of the titanium foil in ethylene glycol solution. To change the crystal structure and improve the electrical conductivity of the semiconductive TiO2 nanotubes layer the thermal treatment by annealing in argon, nitrogen or air was used. Basing on the electrochemical tests, the XPS and scanning microscopy examinations, as well as the contact angle measurements and the amperometric detection of potassium ferricyanide, it was concluded that the 1000 nm thick TiO2 nanotubes layer with nanotubes of 50 nm diameter, annealed in argon, showed the best physicochemical properties, which helps investigate the adsorption immobilization mechanism. The possibility of using TNT as a biosensor platform was confirmed in hydrogen detection.
机译:在细胞增殖,粘附和矿化方面,自组装TiO2纳米管层的形态在电导率和生物相容性特性中起着关键作用。已经报道了许多研究研究在使用TiO2纳米管用于不同的医学应用中,TNT形态与其电化学性质之间缺乏统一的相关性。本研究的目的是检查直径和退火条件对TiO2纳米管的影响,具有相同的高度及其行为作为生物传感器平台。通过氧乙二醇溶液中的钛箔阳极氧化制备TiO2纳米管层,与纳米管的纳米管厚度为100nm,由乙二醇溶液中的钛箔阳极氧化制备。为了改变晶体结构并改善半导体TiO2纳米管的导电性,使用通过在氩气中退火的热处理,氮气或空气。基于电化学试验,XPS和扫描显微镜检查,以及与铁氰化钾的接触角测量和电流检测,得出结论是,1000nm厚的TiO2纳米管层具有50nm直径的纳米管,氩气退火,显示出最佳的物理化学性质,有助于研究吸附固定机制。在氢检测中确认了使用TNT作为生物传感器平台的可能性。

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