Journal
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 48, Issue 7, Pages 2532-2541Publisher
PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2022.10.151
Keywords
Graphitic carbon nitride; Anthraquinone; Nickel titanate; S-scheme photocatalyst
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A novel anthraquinone (AQ) integrated and S-scheme-based NiTiO3-gC(3)N(4) (NT-gCN) photocatalytic system is synthesized with an improved electron transfer rate for hydrogen production. The AQ-NT-gCN photocatalyst exhibits a significantly enhanced H-2 evolution rate, attributed to the spatial separation of charge carriers expedited by AQ. The radical trapping test data provide evidence for the S-scheme charge transfer mechanism in AQ-NT-gCN.
A novel anthraquinone (AQ) integrated and S-scheme-based NiTiO3-gC(3)N(4) (NT-gCN) photocatalytic system is synthesized with an improved electron transfer rate for hydrogen production. Materials characterization using spectroscopic techniques reveal the intimate heterojunction interface between NT and gCN as well as integration of AQ with the binary composite. The synthesized AQ-NT-gCN photocatalyst exhibits a significantly enhanced H-2 evolution rate (576 mmol g(-1) h(-1)), which is similar to 22 and 33% higher than that of NT-gCN and gCN, respectively, attributed to the spatial separation of charge carriers expedited by AQ. The radical trapping test data provide evidence for the S-scheme charge transfer mechanism in AQ-NT-gCN. The present study opens a new avenue for developing an S-scheme heterojunction by integrating binary composite with an organic molecule to improve the solar to energy conversion efficiency.(c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
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