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Dual S-Scheme Charge Transfer Pathway in g-C3N4 Quantum Dots/HKUST-1/TiO2 Ternary Heterojunctions for Photocatalytic
Yu Qiao1, Hao Lu2, Xusheng Wang3
1Key Laboratory of Preparation and Application of Environmental Friendly Materials (Jilin Normal University), Ministry of Education, Changchun 130103, China.
Abstract:
Constructing dual S-scheme heterojunctions is an innovative strategy to boost photocatalysis by promoting photoinduced charge migration and retaining high redox potentials. Herein, we developed a facile green method to prepare g-C3N4 quantum dots (QDs)/HKUST-1/TiO2 dual S-scheme heterojunctions via depositing g-C3N4 QDs in situ on spherical HKUST-1/TiO2. 15% g-C3N4 QDs/HKUST-1/TiO2 exhibited a significantly enhanced tetracycline (TC) degradation performance (97.02% degradation rate, 0.02177 min-1 reaction rate constant (kapp)) compared to g-C3N4 QDs and HKUST-1/TiO2, attributed to the enlarged specific surface area and accelerated charge separation (verified by experiments). It also showed excellent photostability. ESR confirmed •O2-, •OH, and h+ as key active species. LC-MS and online FTIR spectroscopy analyzed TC degradation intermediates, pathways, and toxicity. Finally, experimental combined with theoretical calculation results further elucidated the possible dual S-scheme mechanism. The dual S-scheme mechanism endows this system with a relatively high redox capacity, fully utilizing the reducing ability of electrons on the conduction band of g-C3N4 QDs and the oxidizing ability of holes on the valence band of TiO2. This work is contributory to designing novel dual S-scheme photocatalysts and efficient purification of wastewater in environmental remediation.
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