4.6 Article

Surface oxygen vacancy assisted electron transfer and shuttling for enhanced photocatalytic activity of a Z-scheme CeO2-Agl nanocomposite

Journal

RSC ADVANCES
Volume 6, Issue 23, Pages 19341-19350

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c5ra27533d

Keywords

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Funding

  1. National Research Foundation of Korea (NRF) grants - Korean government (MEST and MSIP) [2007-0056095, 2013S1A2A2035406, 2013R1A1A2009575, 2014R1A4A1001690]
  2. Global Research Laboratory Program [2009-00439]
  3. Max Planck POSTECH/KOREA Research Initiative Program through National Research Foundation of Korea (NRF) - Ministry of Science, ICT & Future Planning [2011-0031558]

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Surface-oxygen-vacancy-promoted Z-scheme CeO2-Agl heterostructured photocatalysts were successfully fabricated via a hydrothermal route combined with a precipitation process. Surface oxygen vacancies were formed on the synthesized CeO2-Agl photocatalyst, as determined by X-ray photoelectron spectroscopy. These oxygen vacancies could extend the lifetime of the charge carriers and enhance the photocatalytic activity of these catalysts for rhodamine B (RhB) dye degradation. Among the as-synthesized photocatalysts, the 20 wt% CeO2-Agl (CA-2) nanocomposite demonstrated the highest photocatalytic activity towards the degradation of RhB with 3.28- and 29.8-fold higher activity than pure Agl and CeO2 nanostructures, respectively. In addition, to ensure the visible light photocatalytic activity of the CeO2-Agl nanocomposite, decomposition studies were performed using a colorless substrate such as phenol. The mechanism for the enhanced photocatalytic performance of the CeO2-Agl photocatalyst is proposed to be based on efficient separation of photogenerated electron-hole pairs through a Z-scheme system, in which oxygen vacancy states promote charge separation. Experiments using scavengers of reactive species combined with photoluminescence analysis provide significant evidence for the oxygen-vacancy-mediated Z-scheme mechanism of the photocatalyst. Moreover, the as-prepared oxygen-deficient CeO2-Agl photocatalysts exhibited excellent cycling stability.

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