Issue 10, 2022

Interfacial band bending induced charge-transfer regulation over Ag@ZIF-8@g-C3N4 to boost photocatalytic CO2 reduction into syngas

Abstract

Ternary Ag@ZIF-8@g-C3N4 was successfully constructed via a facile method. The doped Ag component simultaneously serves as a charge-transfer switcher, electron–hole mediator, and co-catalyst in this system. The Ag@ZIF-8@g-C3N4 heterostructure could support a high redox potential to drive the photoreduction of CO2 and MB photodegradation under visible light excitation. The M-S and UPS results indicated that a work-function regulation process was designed and engineered, and the Z-scheme charge-transfer pathway was more beneficial for enhanced CO2 reduction and MB degradation. Ag@ZIF-8@g-C3N4-10 (named AZC-10) showed a stable and drastic increase in electron consumption during CO2 reduction to syngas, approximately 158.05-, 3.45- and 2.1-times higher than the values for ZIF-8(Zn), g-C3N4, and ZIF-8@g-C3N4 (ZC), respectively. The dynamic kinetics of MB degradation were improved 9.4-fold compared to g-C3N4 (based on the rate constant). Based on the experimental results and characterization data, interfacial band bending was shown to induce charge-transfer switching, and a rational mechanism was proposed.

Graphical abstract: Interfacial band bending induced charge-transfer regulation over Ag@ZIF-8@g-C3N4 to boost photocatalytic CO2 reduction into syngas

Supplementary files

Article information

Article type
Paper
Submitted
28 Feb 2022
Accepted
05 Apr 2022
First published
05 Apr 2022

Catal. Sci. Technol., 2022,12, 3343-3355

Interfacial band bending induced charge-transfer regulation over Ag@ZIF-8@g-C3N4 to boost photocatalytic CO2 reduction into syngas

J. Li, Q. Zhang, L. Zhang, J. Zhang, Y. Liu, N. Zhang and Y. Fang, Catal. Sci. Technol., 2022, 12, 3343 DOI: 10.1039/D2CY00403H

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