Issue 21, 2024

LaVO4 with alkali metal doping for enhanced photocatalytic water splitting

Abstract

It is essential to design and fabricate semiconductor-based photocatalysts with excellent activity to split H2O into H2 and O2 using sunlight because of the depletion of fossil resources and environmental pollution. LaVO4 is a visible light catalyst with a narrow band gap, satisfactory stability, and a low price. Therefore, in this work, alkali metal-doped LaVO4 was manufactured. Alkali metal-modified LaVO4 was prepared by a hydrothermal method as a photocatalyst for water splitting under visible light illumination, and a series of characterizations was carried out. The results showed that alkali metal doping improved the catalytic performance of pure LaVO4 and mainly optimized the hydrogen and oxygen production of Na-doped LaVO4 so that a maximum H2 and O2 evolution of 2.83 and 0.71 μmol g−1 h−1, respectively was obtained. The superior photocatalytic activity of Na-doped LaVO4 was mainly attributed to synergistic effects, including the extended visible-light response and improved charge separation. This study provides a new idea for the design of a highly efficient LaVO4-based water-cracking photocatalyst.

Graphical abstract: LaVO4 with alkali metal doping for enhanced photocatalytic water splitting

Supplementary files

Article information

Article type
Paper
Submitted
29 Feb 2024
Accepted
30 Apr 2024
First published
01 May 2024

New J. Chem., 2024,48, 9748-9755

LaVO4 with alkali metal doping for enhanced photocatalytic water splitting

L. Yan, F. Zhang, F. Liu, X. Lei, X. Liu, X. Jin, X. Zhu, T. Pei and H. Chen, New J. Chem., 2024, 48, 9748 DOI: 10.1039/D4NJ00961D

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