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首页> 外文期刊>Journal of nanoscience and nanotechnology >Fabrication of Highly Ordered TiO_2 Nanotubes from Fluoride Containing Aqueous Electrolyte by Anodic Oxidation and Their Photoelectrochemical Response
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Fabrication of Highly Ordered TiO_2 Nanotubes from Fluoride Containing Aqueous Electrolyte by Anodic Oxidation and Their Photoelectrochemical Response

机译:含氟电解质水溶液阳极氧化法制备高序TiO_2纳米管及其光电化学响应

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摘要

The fabrication of TiO_2 nanotubes (TNT) was carried out by electrochemical anodization of Ti in aqueous electrolyte containing NH_4F. The effect of electrolyte pH, applied voltage, fluoride concentration and anodization duration on the formation of TNT was investigated. It was observed that self-organized TNT can be formed by adjusting the electrolyte to pH 2-4 whereby applied voltage of 10-20 V can be performed to produce highly ordered, well-organized TNT. At 20 V, TNT can be fabricated in the concentration range of 0.07 M to 0.20 M NH_4F. Higher fluoride concentration leads to etching of Ti surface and reveals the Ti grain boundaries. The prepared TNT films also show an increase in depth and in size with time and the growth of TNT films reach a steady state after 120 minutes. The morphology and geometrical aspect of the TNT would be an important factor influencing the photoelectrochemical response, with higher photocurrent response is generally associated with thicker layer of TNT. Consequently, one can tailor the resulting TNT to desired surface morphologies by simply manipulating the electrochemical parameters for wide applications such as solar energy conversion and photoelectrocatalysis.
机译:TiO_2纳米管(TNT)的制备是通过在含NH_4F的水性电解质中对Ti进行电化学阳极氧化来进行的。研究了电解液pH,施加电压,氟化物浓度和阳极氧化时间对TNT形成的影响。观察到可以通过将电解质调节至pH 2-4来形成自组织的TNT,由此可以施加10-20V的施加电压以产生高度有序的,组织良好的TNT。在20 V下,可以在0.07 M至0.20 M NH_4F的浓度范围内制造TNT。较高的氟化物浓度会导致Ti表面的腐蚀,并露出Ti晶界。制备的TNT膜还显示出深度和尺寸随时间增加,并且TNT膜的生长在120分钟后达到稳态。 TNT的形态和几何形状是影响光电化学反应的重要因素,较高的光电流响应通常与较厚的TNT层有关。因此,人们可以通过简单地操纵电化学参数来将得到的TNT调整为所需的表面形貌,以实现广泛的应用,例如太阳能转换和光电催化。

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