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Photocatalytic degradation of Rhodamine B by TiO2/ZnO nanofibers under visible-light irradiation

机译:可见光下TiO2 / ZnO纳米纤维对罗丹明B的光催化降解

摘要

Reduction of contaminants in polluted water can be effectively enhanced by a suitable photocatalyst that utilizes an extended light adsorption spectrum, presents a large surface-to-volume ratio to enhance contact with the contaminants, and reduces the inefficiency from recombination of electron-hole pairs. Based on these objectives, TiO2/ZnO nanofibers are synthesized with small diameter having 10-nm poly-crystallites of large surface area by electrospinning followed by calcination. With different concentrations of zinc acetate in the precursor solutions between 0.15%-0.6%, the diameter of the finished nanofibers ranges from 80 to 130 nm. The photocatalytic activities of nanofibers are studied systematically by the degradation of Rhodamine B dye under the 420-nm visible-light irradiation. Photocatalytical activity can be optimized by introducing an appropriate amount of Zn (0.30 wt.% ZnAc in precursor) to maximize the available hydroxyl radicals for oxidation of the dye. Also, the optimal catalyst loading has been determined to be 2 g of TiO 2/ZnO nanofibers per liter of water treated after balancing the enhanced active sites with increasing catalyst and catalyst over-dosage that results in solution opacity and catalyst agglomeration. Therefore, enhanced photodegradation of dyes with photocatalyst nanofiber under visible irradiation can be realized. A kinetic model has been developed to describe successfully the photodegradation of RhB.
机译:合适的光催化剂可以有效地提高污水中污染物的减少程度,该光催化剂利用扩展的光吸收光谱,具有大的表面积与体积之比以增强与污染物的接触,并降低电子-空穴对重组带来的效率低下。基于这些目的,通过电纺丝然后煅烧来合成具有大表面积的10nm多晶的小直径的TiO 2 / ZnO纳米纤维。当前体溶液中乙酸锌的浓度在0.15%-0.6%之间时,最终纳米纤维的直径范围为80至130 nm。通过在420nm可见光照射下降解若丹明B染料,系统地研究了纳米纤维的光催化活性。可以通过引入适量的Zn(前体中0.30 wt。%ZnAc)来优化光催化活性,以最大化用于染料氧化的可用羟基自由基。同样,在平衡了增强的活性中心与增加的催化剂和催化剂的过量用量(导致溶液不透明性和催化剂结块)之间取得平衡之后,确定的最佳催化剂负载量为每升处理后的水2 g TiO 2 / ZnO纳米纤维。因此,可以实现在可见光下用光催化剂纳米纤维增强染料的光降解。已开发出动力学模型来成功描述RhB的光降解。

著录项

  • 作者

    Pei CC; Leung WWF;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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