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Charge transport phenomena in heterojunction photocatalysts: the WO3/TiO2 system as an archetypical model.

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Title: Charge transport phenomena in heterojunction photocatalysts: the WO3/TiO2 system as an archetypical model.
Authors: Iqbal, A
Kafizas, A
Sotelo-Vazquez, C
Wilson, R
Ling, M
Taylor, A
Blackman, C
Bevan, K
Parkin, I
Quesada-Cabrera, R
Item Type: Journal Article
Abstract: Recent studies have demonstrated the high efficiency through which nanostructured core-shell WO3/TiO2 (WT) heterojunctions can photocatalytically degrade model organic pollutants (stearic acid, QE ≈ 18% @ λ = 365 nm), and as such, has varied potential environmental and antimicrobial applications. The key motivation herein is to connect theoretical calculations of charge transport phenomena, with experimental measures of charge carrier behavior using transient absorption spectroscopy (TAS), to develop a fundamental understanding of how such WT heterojunctions achieve high photocatalytic efficiency (in comparison to standalone WO3 and TiO2 photocatalysts). This work reveals an order of magnitude enhancement in electron and hole recombination lifetimes, respectively located in the TiO2 and WO3 sides, when an optimally designed WT heterojunction photocatalyst operates under UV excitation. This observation is further supported by our computationally captured details of conduction band and valence band processes, identified as (i) dominant electron transfer from WO3 to TiO2 via the diffusion of excess electrons; and (ii) dominant hole transfer from TiO2 to WO3 via thermionic emission over the valence band edge. Simultaneously, our combined theoretical and experimental study offers a time-resolved understanding of what occurs on the micro- to milliseconds (μs-ms) time scale in this archetypical photocatalytic heterojunction. At the microsecond time scale, a portion of the accumulated holes in WO3 contribute to the depopulation of W5+ polaronic states, whereas the remaining accumulated holes in WO3 are separated from adjacent electrons in TiO2 up to 3 ms after photoexcitation. The presence of these exceptionally long-lived photogenerated carriers, dynamically separated by the WT heterojunction, is the origin of the superior photocatalytic efficiency displayed by this system (in the degradation of stearic acid). Consequently, our combined computational and experimental approach delivers a robust understanding of the direction of charge separation along with critical time-resolved insights into the evolution of charge transport phenomena in this model heterojunction photocatalyst.
Issue Date: 3-Mar-2021
Date of Acceptance: 4-Feb-2021
URI: http://hdl.handle.net/10044/1/87178
DOI: 10.1021/acsami.0c19692
ISSN: 1944-8244
Publisher: American Chemical Society
Start Page: 9781
End Page: 9793
Journal / Book Title: ACS Applied Materials and Interfaces
Volume: 13
Issue: 8
Copyright Statement: © 2021 American Chemical Society. This document is the Accepted Manuscript version of a Published Work that appeared in final form in ACS Applied Materials and Interfaces, after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acsami.0c19692
Sponsor/Funder: The Royal Society
Funder's Grant Number: RSG\R1\180434
Keywords: WO3/TiO2
charge transport
heterojunction photocatalyst
metal oxide semiconductors
WO3/TiO2
charge transport
heterojunction photocatalyst
metal oxide semiconductors
Nanoscience & Nanotechnology
03 Chemical Sciences
09 Engineering
Publication Status: Published
Conference Place: United States
Online Publication Date: 2021-02-17
Appears in Collections:Grantham Institute for Climate Change