4.7 Article

Rational design of direct Z-scheme heterostructure NiCoP/ZIS for highly efficient photocatalytic hydrogen evolution under visible light irradiation

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出版社

ELSEVIER
DOI: 10.1016/j.seppur.2021.119153

关键词

Z-scheme heterojunction; Visible-light driven photocatalysts; Hydrogen evolution; ZnIn2S4; NiCoP

资金

  1. LiaoNing Science and Technology Development Foundation Guided by Central Government [2021JH6/10500141]

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Construction of Z-scheme heterojunctions is an efficient strategy to improve charge-separation efficiency for solar energy conversion. In this study, a novel direct Z-scheme catalyst of NiCoP/ZIS was designed and prepared, showing enhanced photocatalytic hydrogen production performance. This work provides a promising approach for rational design of efficient visible-light-driven photocatalysts.
Construction of Z-scheme heterojunctions has been recognized as one of the most efficient strategies to significantly improve the charge-separation efficiency and achieve highly efficient solar energy conversion in photochemical reactions. Herein, a novel direct Z-scheme catalyst of NiCoP/ZIS was rational designed and prepared by dispersing ternary metal phosphide NiCoP in ZnIn2S4 (ZIS) nanoflowers under solvothermal method. The compact heterojunction structural characteristic of NiCoP/ZIS afford the composite prominent enhanced photocatalytic hydrogen (H-2) production performance. The relative quantities of Ni and Co in NiCoP/ZIS composite can significantly influence the photocatalytic activities of the material, and the 37.5% Ni0.7Co0.3P/ZIS composite with a Ni/Co mole ratio of 0.7: 0.3 had the best hydrogen production efficiency with a hydrogen evolution rate of 3.84 mmol g(-1)h(-1), which is approximately 8 times higher than that of single ZIS. The apparent quantum efficiency (AQE) for 37.5% Ni0.7Co0.3P/ZIS is about 5.14% under the incident monochromatic light of 405 nm. The subsequent electrochemical analyses proved the significant roles of the direct Z-scheme hetero-junction in accumulating the electrons at the conduction bands of ZIS with more negative potential, which contributed to the stronger reduction activity in the promoted hydrogen generation for Ni0.7Co0.3P/ZIS. This work not only reported a a novel direct Z-scheme catalyst of NiCoP/ZIS heterostructure with enhanced photocatalytic hydrogen generation performance, but also provided a promising approach to rational design and construct efficient visible-light-driven photocatalysts for solar energy utilization.

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