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Efficient photocatalytic removal of NO in indoor air with hierarchical bismuth oxybromide nanoplate microspheres under visible light

机译:可见光分级氢氧化铋纳米板微球高效光催化去除室内空气中的NO。

摘要

In this study, hierarchical bismuth oxybromide (BiOBr) nanoplate microspheres were used to remove NO in indoor air under visible light irradiation. The BiOBr microspheres were synthesized with a nonaqueous sol-gel method by using bismuth nitrate and cetyltrimethyl ammonium bromide as the precursors. On degradation of NO under visible light irradiation (λ 420 nm) at 400 part-per-billion level, which is typical concentration for indoor air quality, these nonaqueous sol-gel synthesized hierarchical BiOBr microspheres exhibited superior photocatalytic activity to the chemical precipitation synthesized counterpart BiOBr bulk powder and Degussa TiO 2 P25 as well as C doped TiO2. The excellent catalytic activity and the long-term activity of nonaqueous sol-gel synthesized BiOBr microsphereswereattributed to their special hierarchical structure, which was favorable for the diffusion of intermediates and final products of NO oxidation. Ion chromatograph results confirmed that nitric acid was produced on the surface of BiOBr microspheres during the photooxidation of NO in gas phase. This work suggests that the nonaqueous sol-gel synthesized BiOBr nanoplate microspheres are promising photocatalytic materials for indoor air purification.
机译:在这项研究中,使用分级氢溴酸铋(BiOBr)纳米板微球在可见光照射下去除室内空气中的NO。以硝酸铋和十六烷基三甲基溴化铵为前驱体,采用非水溶胶-凝胶法合成了BiOBr微球。这些非水溶胶-凝胶合成的分级BiOBr微球在可见光辐射(λ> 420 nm)下以400十亿分之一的水平降解NO(这是室内空气质量的典型浓度)时,具有比合成的化学沉淀更高的光催化活性相应的BiOBr块状粉末和Degussa TiO 2 P25以及C掺杂的TiO2。非水溶胶-凝胶合成的BiOBr微球具有优异的催化活性和长期活性,这归因于其特殊的分级结构,有利于中间产物和NO氧化产物的扩散。离子色谱结果证实,在气相中NO的光氧化过程中,BiOBr微球表面产生了硝酸。这项工作表明,非水溶胶-凝胶合成的BiOBr纳米板微球是有望用于室内空气净化的光催化材料。

著录项

  • 作者

    Ai Z; Ho W; Lee S; Zhang L;

  • 作者单位
  • 年度 2009
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  • 原文格式 PDF
  • 正文语种 eng
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