4.7 Article

Z-scheme ZnO@PDA/CeO2 heterojunctions using polydopamine as electron transfer layer for enhanced photoelectrochemical H2 generation

期刊

MATERIALS TODAY ENERGY
卷 21, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.mtener.2021.100765

关键词

Z-scheme heterojunction; Electron transfer layer; PDA; Water splitting; ZnO/CeO2; H-2 generation

资金

  1. Scientific and Technical Research Council of Turkey (TUB_ITAK) [119M076]
  2. Ankara Yildirim Beyazit University Projects Office [5706, FMG-2020-2019]

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In this study, PDA-bridged ZnO@PDA/CeO2 Z-scheme heterojunctions were designed for efficient photoelectrochemical water splitting under visible LED illumination. The PDA-bridged construction resulted in improved photocurrent density and facilitated separation and pumping of photogenerated charge carriers. The Z-scheme charge transfer mechanism was verified, providing insights for next generation photocatalysts for solar energy conversion.
In this study, polydopamine (PDA)-bridged ZnO@PDA/CeO2 Z-scheme heterojunctions are rationally designed using PDA as an electron transfer mediator for an efficient photoelectrochemical water splitting under visible LED illumination. PDA-bridged construction not only provided the completely wrapping of ZnO nanoparticles (NPs) but also provided a biomimetic electron transfer layer with well-defined core shell morphologies. Thanks to this novel Z-scheme heterostructure, an improved photocurrent density is recorded for ZnO@PDA/CeO2 photoanodes (251 mA/cm(2) at 0.25 V vs. reversible hydrogen electrode [RHE]) under LED irradiation (30 mW/cm(2)), whereas a quite low photocurrent density (24 mA/cm(2) at 0.25 V vs. RHE) is obtained in dark due to low separation of electron-hole pairs. Our results suggest that the presence of PDA provided a solid-solid interfacial interaction (between semiconductors: ZnO and CeO2) that facilitated the separation and pumping of photogenerated charge carries for enhanced photo electrochemical water splitting. The Z-scheme charge transfer mechanism is verified using radical scavengers, radical trapping experiments, as well as X-ray photoelectron spectroscopy methods. This three-dimensional (3D) Z-scheme ternary heterostructures delivers a new insight in next generation of photocatalysts for efficient large-scale conversion of solar energy to H-2 fuels as well as renewable energy revolution. (C) 2021 Elsevier Ltd. All rights reserved.

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