Issue 32, 2023

High solar-to-hydrogen efficiency in the novel derivatives of group-III trichalcogenides for photocatalytic water splitting: the effect of elemental composition

Abstract

Two-dimensional (2D) materials with intrinsic electric fields (EF) are considered promising photocatalysts for hydrogen production from water splitting, but are still restricted by the solar-to-hydrogen (STH) efficiency. Here, we designed and investigated the derived 2D MNX3 and MNXY2 (M, N = In/Ga/Al; X, Y = S/Se/Te) monolayers as potential photocatalysts for water splitting applications. The light absorption of most MNX3/MNXY2 derivatives is significantly enhanced compared with their parent M2X3 monolayers. The introduction of Te with more diffuse valence orbitals than S/Se can effectively reduce the band gap of the MNX3/MNXY2 derivatives, enhancing their light absorption abilities. Some 2D MNX3 and MNXY2 monolayers with STH efficiencies ≥20% are further screened. Interestingly, driven by vacancy defects, the GaAlSSe2-β monolayer can achieve the overall water-splitting process purely by the photoexcited carriers without the need for cocatalysts. Our work provides a prospective strategy for designing new highly efficient photocatalysts for water splitting applications based on the available parent materials by modulating the synergistic relation of bandgap, intrinsic EF, and overpotential.

Graphical abstract: High solar-to-hydrogen efficiency in the novel derivatives of group-III trichalcogenides for photocatalytic water splitting: the effect of elemental composition

Supplementary files

Article information

Article type
Paper
Submitted
08 Mar 2023
Accepted
17 Jun 2023
First published
21 Jun 2023

J. Mater. Chem. A, 2023,11, 17007-17019

High solar-to-hydrogen efficiency in the novel derivatives of group-III trichalcogenides for photocatalytic water splitting: the effect of elemental composition

H. Ma, W. Zhao, S. Yuan, H. Ren, H. Zhu, Y. Chi and W. Guo, J. Mater. Chem. A, 2023, 11, 17007 DOI: 10.1039/D3TA01443F

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