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All-solution-processed BiVO4/SnO2 nanorods-axial-heterostructure with improved charge collection properties for solar water-splitting
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Publication Year
2022-11-15
Publisher
Elsevier Ltd
Citation
Ceramics International, Vol.48, pp.33101-33107
Keyword
Axial heterostructureBiVO4Charge collectionNanorodsSnO2Water splitting
Mesh Keyword
All solutionsAxial heterostructureCharge collectionCoating growthHydrothermal growthPhotocurrent densityPhotoelectrodeSb-doped SnOSnO 2Water splitting
All Science Classification Codes (ASJC)
Electronic, Optical and Magnetic MaterialsCeramics and CompositesProcess Chemistry and TechnologySurfaces, Coatings and FilmsMaterials Chemistry
Abstract
Constructing heterostructure by coupling structures with a one-dimensional morphology is a promising method to enhance photoelectrodes' charge collection and light absorption properties for photoelectrochemical water splitting. Herein, we aimed to synthesize a BiVO4 (BVO)/Sb-doped SnO2 (SSO) nanorods-axial-heterostructure (NAH) via the facile solution-based methods of spin coating and hydrothermal growth. The thicknesses of the BVO layer and SSO nanorods were optimized by controlling the spin coating and hydrothermal growth cycles to maximize photocurrent generation. The resultant BVO/SSO NAH photoanode has a three times greater photocurrent density (2.3 mA cm−2 at 1.23 V vs. the reversible hydrogen electrode) than pristine BVO film (0.75 mA cm−2). This enhanced photocurrent density is attributed to the excellent charge collection (separation + transfer) property induced by the heterointerface (i.e., type II heterojunction) and the bottom single-crystalline SSO nanorods. Furthermore, the BVO/SSO NAH shows the highest photocurrent density of 3.2 mA cm−2, Faradaic efficiency of ∼93%, and long-term stability over 2 h via coupling with FeOOH oxygen evolution electrocatalyst. This study suggests that the axial heterostructure is a superior design platform for developing efficient photoelectrodes.
ISSN
0272-8842
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/32836
DOI
https://doi.org/10.1016/j.ceramint.2022.07.244
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Type
Article
Funding
This research was supported by the Basic Science Research Program through the National Research Foundation of Korea , funded by the Ministry of Science, ICT, and Future Planning (Grant Numbers NRF-2019R1A2C2002024 and 2021R1A4A1031357 ).
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Cho, In Sun 조인선
Department of Materials Science Engineering
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