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Efficient visible light-induced H2 production by g-C3N4/NiFe Prussian blue composites
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Title
Efficient visible light-induced H2 production by g-C3N4/NiFe Prussian blue composites
Issued Date
2024-10
Citation
Kim, Minsun. (2024-10). Efficient visible light-induced H2 production by g-C3N4/NiFe Prussian blue composites. Journal of Environmental Chemical Engineering, 12(5). doi: 10.1016/j.jece.2024.113222
Type
Article
Author Keywords
solar hydrogen productiongraphitic carbon nitridePrussian blue analogphotocatalytic efficiencyrenewable energyheterostructure composite
Keywords
GRAPHITIC CARBON NITRIDEONE-STEP SYNTHESISPHOTOCATALYTIC H-2 EVOLUTIONHYDROGEN EVOLUTIONDOPED G-C3N4FACILE SYNTHESISEOSIN YWATERCOCATALYSTCO2
ISSN
2213-2929
Abstract
Hydrogen (H2) produced via photocatalytic water splitting shows great potential as a renewable alternative to fossil fuels, as it uses clean and renewable resources (water and solar light). However, low efficiency remains a significant challenge for this technology. In this study, we synthesized novel graphitic carbon nitride (GCN)–Prussian blue analog (PBA) heterostructure composites using suitable PBAs for photocatalytic reactions, and explored their application in visible-light-induced H2 production. GCN-PBA heterostructure composites were synthesized using PBAs containing Ni, Co, and Fe, and their photocatalytic activities under visible light irradiation were compared. The visible-light absorption characteristics and H2 production efficiency of the GCN-PBA composites were characterized. The GCN-NiFe heterostructure composite showed excellent visible-light-induced H2 production efficiency, indicating effective charge separation and transfer characteristics that enhanced the photocatalytic activity of GCN. These findings contribute to the development of efficient photocatalytic materials for solar H2 production, thereby contributing to the advancement of renewable energy technologies. © 2024 Elsevier Ltd
URI
http://hdl.handle.net/20.500.11750/57138
DOI
10.1016/j.jece.2024.113222
Publisher
Elsevier
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김순현
Kim, Soonhyun김순현

Division of Energy & Environmental Technology

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