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Dual functional WO3/BiVO4 heterostructures for efficient photoelectrochemical water splitting and glycerol degradation
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Metadata
Document Title
Dual functional WO3/BiVO4 heterostructures for efficient photoelectrochemical water splitting and glycerol degradation
Author
Peerakiatkhajohn P., Yun J.-H., Butburee T., Lyu M., Takoon C., Thaweesak S.
Affiliations
Faculty of Environment and Resource Studies, Mahidol University, Nakhon Pathom, 73170, Thailand; Department of Environmental Science and Engineering, College of Engineering, Kyung Hee University, 1732 Deogyeong-daero, Giheung-gu, Gyeonggi-do, Yongin-si, 17104, South Korea; National Nanotechnology Center, National Science and Technology Development Agency, 111 Thailand Science Park, Pathum Thani, 12120, Thailand; Nanomaterials Centre, School of Chemical Engineering and Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland, St Lucia, QLD 4123, Australia; Mahidol University Frontier Research Facility (MU-FRF), Mahidol University, Nakhon Pathom, 73170, Thailand; Department of Chemical Engineering, Faculty of Engineering, Burapha University, Chon Buri, 20131, Thailand
Type
Article
Source Title
RSC Advances
ISSN
20462069
Year
2023
Volume
13
Issue
27
Page
18974-18982
Open Access
All Open Access, Gold, Green
Publisher
Royal Society of Chemistry
DOI
10.1039/d3ra02691d
Format
Abstract
Dual functional heterojunctions of tungsten oxide and bismuth vanadate (WO3/BiVO4) photoanodes are developed and their applications in photoelectrochemical (PEC) water splitting and mineralization of glycerol are demonstrated. The thin-film WO3/BiVO4 photoelectrode was fabricated by a facile hydrothermal method. The morphology, chemical composition, crystalline structure, chemical state, and optical absorption properties of the WO3/BiVO4 photoelectrodes were characterized systematically. The WO3/BiVO4 photoelectrode exhibits a good distribution of elements and a well-crystalline monoclinic WO3 and monoclinic scheelite BiVO4. The light-absorption spectrum of the WO3/BiVO4 photoelectrodes reveals a broad absorption band in the visible light region with a maximum absorption of around 520 nm. The dual functional WO3/BiVO4 photoelectrodes achieved a high photocurrent density of 6.85 mA cm?2, which is 2.8 times higher than that of the pristine WO3 photoelectrode in the presence of a mixture of 0.5 M Na2SO4 and 0.5 M glycerol electrolyte under AM 1.5 G (100 mW cm?2) illumination. The superior PEC performance of the WO3/BiVO4 photoelectrode was attributed to the synergistic effects of the superior crystal structure, light absorption, and efficient charge separation. Simultaneously, glycerol plays an essential role in increasing the efficiency of hydrogen production by suppressing charge recombination in the water redox reaction. Moreover, the WO3/BiVO4 photoelectrode shows the total organic carbon (TOC) removal efficiency of glycerol at about 82% at 120 min. Notably, the WO3/BiVO4 photoelectrode can be a promising photoelectrode for simultaneous hydrogen production and mineralization of glycerol with a simple, economical, and environmentally friendly approach. ? 2023 The Royal Society of Chemistry.
Industrial Classification
Knowledge Taxonomy Level 1
Knowledge Taxonomy Level 2
Knowledge Taxonomy Level 3
License
CC BY-NC
Rights
Authors
Publication Source
WOS