4.8 Article

Robust hollow tubular ZnIn2S4 modified with embedded metal-organic-framework-layers: Extraordinarily high photocatalytic hydrogen evolution activity under simulated and real sunlight irradiation

期刊

APPLIED CATALYSIS B-ENVIRONMENTAL
卷 298, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apcatb.2021.120632

关键词

Metal-organic-framework-layers; Hollow tubular structure; Extraordinarily high photocatalytic hydrogen; evolution

资金

  1. Natural Science Foundation of Shanghai [19ZR1403500]
  2. National Natural Science Foundation of China (NNSFC) [21373054]
  3. Natural Science Foundation of Shanghai Science and Technology Committee [19DZ2270100]

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This research presents a facile one-step method to fabricate ZnIn2S4-MOFL photocatalysts with high efficiency for hydrogen evolution. The catalyst demonstrated exceptional PHE activity through the promotion of electron-hole pair separation in a direct Z-scheme photocatalytic system. The experimental results showed remarkable hydrogen evolution rates under different light conditions, indicating promising applications for ZnIn2S4-MOFL catalysts.
This work reported a facile one-step method for constructing hollow tubular ZnIn2S4 modified by metal-organicframework-layers (MOFL) with In-MOF as precursor to be efficient photocatalysts (ZnIn2S4-MOFL) for robust photocatalytic hydrogen evolution (PHE). The dominant catalyst of ZnIn2S4 and cocatalytic role of MOFL synergistically promoted the separation of electron and hole pairs due to the direct Z-scheme photocatalytic system, leading to an extraordinarily high PHE activity. The density functional theory (DFT) results revealed the remarkably decreased density of states (DOS) of ZnIn2S4 after coupling with the organic ligands of MOFL, indeed proving an effectively suppressed recombination of charge carriers and benefited the performance of photocatalytic reactions. Experimental PHE results showed that a large number of hydrogen bubbles were visible to naked eyes and the optimal hydrogen evolution reached 28.2 mmol/g/h, the highest value reported so far among ZnIn2S4-based photocatalysts, and almost 14.8 times higher than that of pristine ZnIn2S4. More importantly, the superior apparent quantum efficiencies (AQEs) of 22.67 % at monochromatic light (350 nm) and the stable hydrogen generation capability (5.7 mmol/g/h) under real sunlight irradiation all confirmed a promising catalyst of ZnIn2S4-MOFL for hydrogen evolution applications.

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