Photoactive hybrid ZnO/ N-Ag -TiO2 films for photocatalytic water purification: nanofibers vs nanorods

Pierre G Ramos, L. Sánchez, Juan M. Rodriguez
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引用次数: 1

Abstract

The light absorption of wide bandgap semiconductors in contaminated water, allows them to promote redox chemical reactions. The foremost condition that ensures success is related to the spontaneous jump in the energy of the photogenerated charge carriers. The jump is from their conduction/valence band energy positions to the oxidizing/reducing levels of those contaminants, which produces the so-called heterogeneous photocatalytic water purification. In this work, ZnO thin films composed by nanostructured nanofibers and nanorods (NRs) were compared to address the drawbacks such as low absorption of the solar spectra, low active surface area, charge carrier’s recombination. These films were fabricated with various coupling and doped materials by electrospinning and hydrothermal techniques on fluorine-doped tin oxide (FTO) glass substrate. First, ZnO/TiO2 films were fabricated using different zinc acetate-to-PVA ratios by an electrostatically modified electrospinning technique and then sintered at 600°C. Second, ZnO doped with nitrogen and silver (ZnO:N-Ag) nanorods films were vertically supported on undoped and N doped ZnO seed layers fabricated with different N:Zn ratio in the solution precursor by a wet chemical method.
用于光催化水净化的光活性ZnO/ N-Ag -TiO2杂化膜:纳米纤维与纳米棒
宽禁带半导体在污染水中的光吸收,使它们能够促进氧化还原化学反应。确保成功的最重要条件与光生电荷载流子能量的自发跃迁有关。跳跃是从它们的传导/价带能位置到这些污染物的氧化/还原水平,这产生了所谓的多相光催化水净化。本文比较了纳米结构纳米纤维和纳米棒(NRs)组成的ZnO薄膜对太阳光谱的吸收低、活性表面积小、载流子的复合等缺点。采用静电纺丝和水热技术在掺氟氧化锡玻璃衬底上制备了各种耦合和掺杂材料。首先,采用静电改性静电纺丝技术,以不同的醋酸锌与pva比例制备ZnO/TiO2薄膜,然后在600℃下烧结。其次,用湿化学法在溶液前驱体中制备不同N:Zn比的未掺杂和N掺杂ZnO种子层上垂直支撑掺杂氮银的ZnO纳米棒膜(ZnO:N- ag)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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