4.6 Article

Oxygen-doping of ZnIn2S4 nanosheets towards boosted photocatalytic CO2 reduction

期刊

JOURNAL OF ENERGY CHEMISTRY
卷 57, 期 -, 页码 1-9

出版社

ELSEVIER
DOI: 10.1016/j.jechem.2020.08.024

关键词

ZnIn2S4; Nanosheets; Oxygen doping; Electronic properties; Photocatalysis; CO2 reduction

资金

  1. National Natural Science Foundation of China [21976116, 21902095]
  2. Shaanxi Science and Technology Program [2020KWZ005]
  3. SAFEA of China (Highend foreign expert project) [G20190241013]
  4. Natural Foundation of Shaanxi Province [2020JQ711]
  5. Group Linkage Program of Alexander-von-Humboldt Foundation of Germany
  6. scientific research startup fund of Shannxi University of Science and Technology

向作者/读者索取更多资源

By doping oxygen into ultrathin ZnIn2S4 nanosheets, the photocatalytic activity was significantly enhanced, attributed to the upward shift of CBM and QCE effect induced by oxygen doping, leading to improved charge separation efficiency. This work provides insights into the role of elemental doping in photocatalysis for highly efficient artificial photosynthesis.
Engineering the electronic properties of semiconductor-based photocatalysts using elemental doping is an effective approach to improve their catalytic activity. Nevertheless, there still remain contradictions regarding the role of the dopants played in photocatalysis. Herein, ultrathin ZnIn2S4 (ZIS) nanosheets with oxygen doping were synthesized by a one-pot solvothermal method. XRD, XPS and Raman spectral measurements support the presence of lattice oxygen in the oxygen-doped ZIS (O-ZIS) sample. With optimum doping of oxygen, the ultrathin O-ZIS nanosheets show enhanced CO2-to-CO conversion activity with a CO-evolving rate of 1680 lmol h(-1) g(-1) under visible light irradiation, which is about 7 times higher than that of the pristine ZIS. First-principle calculations support that doping of oxygen in the lattice of ZnI2S4 nanosheets plays a key role in tuning its electronic properties. The remarkable photocatalytic performance of O-ZIS can be assigned to a synergistic consequence of a unique ultrathin-layered structure and an upward shift of the conduction band minimum (CBM) caused by the oxygen doping into ZIS and the quantum confinement effect (QCE) induced by the decreased particle size after doping as well as to the improved charge separation efficiency. The present work offers a simple elemental doping method to promote charge separation at atomic level and illustrates the roles played by oxygen doping in photocatalysis, giving new insights into highly efficient artificial photosynthesis. (C) 2020 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.

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