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Photoactive titania nanostructured thin films: Synthesis and characteristics of ordered helical nanocoil array

机译:光活性二氧化钛纳米结构薄膜:有序螺旋纳米线阵列的合成与特性

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摘要

Titania nanostructured thin films have been prepared by anodization of titanium foils at different voltages in the 10–20 V range. They have been characterized by field emission scanning electron microscopy (FESEM), glancing angle X-ray diffraction (GAXRD), UV–vis diffuse reflectance and current–time transients during the anodization process. The observed nanostructure differs from that reported for titania nanotubes (hollow columns) and can be described as helical nanocoils which form an ordered array over the entire surface. The model of formation of these nanostructures (TNT) has been also proposed. The voltage applied during the anodization influences the mean dimension of these TNT, their wall thickness and also their degree of packing. A linear relationship between the wall thickness, in the 5–10 nm range, and the band gap is observed. The behavior of these samples in the photo-generation of current by irradiation with a low-power lamp simulating solar spectrum has been also studied. A main factor which determine with photo-behavior is the band gap which in turn depends on the characteristics of the TNT. Increasing the voltage during anodization increases the wall thickness and the band gap shifts toward visible region with an improvement of the photo-generated current density. It is also demonstrated that the formation of these helical nanocoils improve the photo-generated current with respect to the sample samples after short anodization where only a titania layer is formed.
机译:通过在10-20 V范围内的不同电压下对钛箔进行阳极氧化处理,制备了Titania纳米结构薄膜。它们的特点是在阳极氧化过程中具有场发射扫描电子显微镜(FESEM),掠射角X射线衍射(GAXRD),紫外可见漫反射和电流-时间瞬变。所观察到的纳米结构与报道的二氧化钛纳米管(空心柱)的纳米结构不同,可以描述为在整个表面上形成有序阵列的螺旋纳米线圈。还提出了这些纳米结构(TNT)的形成模型。阳极氧化过程中施加的电压会影响这些TNT的平均尺寸,壁厚以及堆积程度。在5-10 nm范围内的壁厚与带隙之间存在线性关系。还研究了这些样品在模拟太阳光谱的低功率灯照射下光生电流中的行为。决定光行为的主要因素是带隙,其又取决于TNT的特性。阳极氧化过程中增加电压会增加壁厚,并且带隙会朝着可见区域移动,从而提高了光生电流密度。还证明了相对于仅形成二氧化钛层的短时间阳极氧化之后的样品样品,这些螺旋纳米线圈的形成改善了光生电流。

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