4.8 Article

Constructing a system for effective utilization of photogenerated electrons and holes: Photocatalytic selective transformation of aromatic alcohols to aromatic aldehydes and hydrogen evolution over Zn3In2S6 photocatalysts

Journal

APPLIED CATALYSIS B-ENVIRONMENTAL
Volume 242, Issue -, Pages 302-311

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.apcatb.2018.10.004

Keywords

Photocatalysis; Zn3In2S6; Aromatic alcohol; Aromatic aldehyde; Hydrogen

Funding

  1. Natural Science Foundation of China (NSFC) [51472005, 21603002, 51772118]
  2. Natural Science Foundation of Anhui province [1608085QB37, 1808085QE141]
  3. Outstanding Youth Foundation of Anhui Province [1808085J24]
  4. Open Foundation of Nano-mineral materials and application of the Ministry of Education Engineering Research Center [NGM2018KF006]
  5. Materials Science and Engineering Key Discipline Foundation [AKZDXK2015A01]

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In a reaction system, the simultaneously efficient utilization of photogenerated electrons and holes to realize the photocatalytic selective redox reactions of organics has been a hot topic. In this paper, the Zn3In2S6 samples were synthesized via a simple solvothermal method with different solvents, which could make full use of photo generated electrons and holes to achieve the photocatalytic selective transformation of aromatic alcohols to aromatic aldehydes and hydrogen evolution under mild conditions. The results show that the Zn3In2S6 synthesized with water (Zn3In2S6-W) exhibits the highest photocatalytic performance among the selected samples, with which the yields of benzaldehyde and hydrogen reach up to 732 and 708.8 pmol under light irradiation (lambda >= 380 nm) for 4 h, respectively. The molar ratios between aldehydes and hydrogen are close to 1: 1. The apparent quantum efficiency is about 6.48% for wavelength lambda = 380 10 nm over Zn3In2S6-W sample. A possible reaction mechanism for the photocatalytic selective transformation of benzyl alcohol to benzaldehyde and hydrogen evolution under light irradiation is proposed. This work highlights that a reaction system is developed to effectively make use of the photogenerated electrons and holes for selective transformation of aromatic alcohols to aromatic aldehydes and hydrogen evolution over Zn3In2S6 photocatalysts under mild conditions.

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