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Beyond band bending in the WO3/BiVO4 heterojunction: insight from DFT and experiment

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Title: Beyond band bending in the WO3/BiVO4 heterojunction: insight from DFT and experiment
Authors: Rafols i Belles, C
Selim, S
Harrison, NM
Ahmad, EA
Kafizas, A
Item Type: Journal Article
Abstract: Heterojunction photocatalysts can significantly enhance the efficiency of photocatalytic water splitting. It is well known that the key to such improvements lies at the interfacial region where charge separation occurs. Understanding the origins of this interfacial enhancement can enable the design of better performing water splitting devices. Therefore, in this work, a novel theoretical–experimental approach is developed for the study of photocatalytic heterojunctions using the model system – WO3/BiVO4, where it has been shown that the quantum efficiency of water splitting can approach unity at certain wavelengths. Our photoelectrochemical measurements of this heterojunction show a significantly enhanced performance over its separate components when illuminated through the BiVO4 side but not the WO3 side. This is indicative of more efficient electron transfer (i.e. from BiVO4 to WO3) than hole transfer (i.e. from WO3 to BiVO4) across the junction. Our classical band bending model of this junction predicts noticeable interfacial barriers, but could not explain the reduced performance under back illumination. Our atomistic model was used to investigate the effect of interfacial reconstructions and chemical interactions on the electronic structure of the system. The model reveals a non-staggered valence band, in contrast to the staggered conduction band, due to strong hybridization of valence band orbitals in both materials across the interface. This non-staggered valence band does not provide an energetic driving force for charge separation for hole transfer (i.e. from WO3 to BiVO4 under back illumination). Hence, a significant improvement in performance is only observed under front illumination. This combined approach, using both experiment and theory, results in a more complete understanding of a heterojunction photocatalyst system and provides unique insight into the interfacial effects that arise when two semiconductor materials are brought together, going beyond traditional band bending models.
Issue Date: 1-Jan-2019
Date of Acceptance: 6-Nov-2018
URI: http://hdl.handle.net/10044/1/65606
DOI: https://dx.doi.org/10.1039/c8se00420j
ISSN: 2398-4902
Publisher: Royal Society of Chemistry
Start Page: 264
End Page: 271
Journal / Book Title: Sustainable Energy and Fuels
Volume: 3
Issue: 1
Copyright Statement: © 2019 The Royal Society of Chemistry.
Sponsor/Funder: Engineering & Physical Science Research Council (EPSRC)
The Royal Society
Funder's Grant Number: EP/P023118/1
RSG\R1\180434
Keywords: Science & Technology
Physical Sciences
Technology
Chemistry, Physical
Energy & Fuels
Materials Science, Multidisciplinary
Chemistry
Materials Science
THIN-FILM
BIVO4 PHOTOANODES
CHARGE SEPARATION
WO3 PHOTOANODES
WATER
EFFICIENT
PHOTOLYSIS
HYDROGEN
Publication Status: Published
Online Publication Date: 2018-11-09
Appears in Collections:Chemistry
Centre for Environmental Policy
Faculty of Natural Sciences