Issue 21, 2024

Interlayer Ag nanoparticle-anchored Mo,W:BVO/NiCo2O4 heterojunctions for the synergistic enhancement of photoelectrochemical water splitting activity

Abstract

Spinel oxide NiCo2O4 is introduced as an emerging material for photocatalytic oxygen precipitating catalysts. The NiCo2O4 hollow spheres prepared using the template method combine a large specific surface area with high electrical conductivity and exhibit excellent catalytic properties. Building on this significant improvement, our research aims to enhance the photoelectrochemical performance of Mo,W:BVO/NiCo2O4 heterojunctions by integrating hollow NiCo2O4 during BiVO4 fabrication, thereby improving the charge transfer and water oxidation kinetics of Mo,W:BVO/NiCo2O4 photoanodes. Additionally, the deposition of Ag as a middle layer prevents oxidation issues during the PEC process, resulting in the most significant enhancement of photocurrent. Compared to a reversible hydrogen electrode, the obtained photoanodes achieve a photocurrent density of 5.30 mA cm−2 at 1.23 V vs. RHE. Through experimental and theoretical demonstrations, our work provides novel insights into modifying BiVO4 photoanodes using oxygen precipitating catalysts and noble metals to improve their photoelectrochemical performance.

Graphical abstract: Interlayer Ag nanoparticle-anchored Mo,W:BVO/NiCo2O4 heterojunctions for the synergistic enhancement of photoelectrochemical water splitting activity

Supplementary files

Article information

Article type
Paper
Submitted
27 Jan 2024
Accepted
24 Apr 2024
First published
26 Apr 2024

CrystEngComm, 2024,26, 2829-2835

Interlayer Ag nanoparticle-anchored Mo,W:BVO/NiCo2O4 heterojunctions for the synergistic enhancement of photoelectrochemical water splitting activity

W. Zhai, L. Wang, S. Chu, L. Ding, J. Li, H. Chen and Z. Jiao, CrystEngComm, 2024, 26, 2829 DOI: 10.1039/D4CE00082J

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