4.7 Article Proceedings Paper

Ag-based semiconductor photocatalysts in environmental purification

Journal

APPLIED SURFACE SCIENCE
Volume 358, Issue -, Pages 46-56

Publisher

ELSEVIER
DOI: 10.1016/j.apsusc.2015.07.139

Keywords

Photocatalysis; Semiconductor; Visible light; Ag-based photocatalysts

Funding

  1. National Natural Science Foundation of China [21067004, 21263005]
  2. Yangfan Project of Guangdong Province
  3. Young Science and Technology Project of Jiangxi Province Natural Science Foundation China [20133BAB21003]
  4. Landing Project of Science and Technology of Colleges and Universities in Jiangxi Province [KJLD14046]
  5. Young Scientist Training Project of Jiangxi Province [20122BCB23015]
  6. Yuanhang Engineering of Jiangxi Province
  7. Graduate innovation project of Jiangxi Province [3104000089, 3104100013]
  8. Graduate innovation project of Jiangxi University of Science and Technology [3104100039]

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Over the past decades, with the fast development of global industrial development, various organic pollutants discharged in water have become a major source of environmental pollution in waste fields. Photocatalysis, as green and environmentally friendly technology, has attracted much attention in pollutants degradation due to its efficient degradation rate. However, the practical application of traditional semiconductor photocatalysts, e.g. TiO2, ZnO, is limited by their weak visible light adsorption due to their wide band gaps. Nowadays, the study in photocatalysts focuses on new and narrow band gap semiconductors. Among them, Ag-based semiconductors as promising visible light-driven photocatalysts have aroused much interesting due to their strong visible light responsibility. Most of Ag-based semiconductors could exhibit high initial photocatalytic activity. But they easy suffer from poor stability because of photochemical corrosion. Design heterojunction, increasing specific surface area, enriching pore structure, regulating morphology, controlling crystal facets, and producing plasmonic effects were considered as the effective strategies to improve the photocatalytic performance of Ag-based photocatalyts. Moreover, combining the superior properties of carbon materials (e.g. carbon quantum dots, carbon nano-tube, carbon nanofibers, graphene) with Ag-based semiconductor could produce high efficient composite photocatalyts. (C) 2015 Elsevier B.V. All rights reserved.

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