Reaction-level identification of viable five-atom 2D MxSey allotropes for solar photocatalytic overall water splitting

Efficient solar hydrogen production through photocatalytic overall water splitting requires more than appropriate band gaps and favorable band-edge alignment, yet this requirement is often underestimated in computational screening of two-dimensional photocatalysts. Here, we combine USPEX global structural search and first-principles calculations to identify viable five-atom 2D M x Se y allotropes (M = Si, Ge, Sn; x + y = 5) for solar photocatalytic overall water splitting. Starting from 11,280 converged structures, 91 semiconducting monolayers were identified, among which 16 electronically promising allotropes were retained after HSE06 band-edge alignment and corrected solar-to-hydrogen efficiency screening. Family-wide analysis shows that Se-rich stoichiometries and low-symmetry surface-inequivalent allotropes enlarge the pool of potential candidates by promoting intrinsic polarity, band-edge charge separation, and anisotropic carrier transport. However, these favorable electronic features do not by themselves ensure overall-water-splitting feasibility. The decisive factor is the thermodynamic compatibility of hydrogen and oxygen evolution within a common pH window, followed by structural robustness under operating conditions. Under this reaction-level screening framework, GeSe 4 -4 emerges as the most viable candidate, operating within pH 3–5 with a predicted corrected solar-to-hydrogen efficiency of 17.41–20.86%, which can be further increased to 22.10% under + 4% biaxial tensile strain. Phonon calculations and ab initio molecular dynamics simulations, including solvent-assisted simulations, further support its stability. These results establish composition-structure–reactivity criteria for identifying viable 2D photocatalysts for solar hydrogen production and clarify why many electronically attractive candidates fail at the reaction level.

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Publication Details

Journal
Fuel
Published
2026-09-12
DOI
https://doi.org/10.1016/j.fuel.2026.141315
Primary Topic
Advanced Photocatalysis Techniques
Type
article
Field-Weighted Citation Impact
0.00

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article

Reaction-level identification of viable five-atom 2D MxSey allotropes for solar photocatalytic overall water splitting

Li-Bo Zhan, Xiaohu Li, Wenkai Zhao, Chuan‐Lu Yang et al.
Fuel
Advanced Photocatalysis Techniques
article

Reaction-level identification of viable five-atom 2D MxSey allotropes for solar photocatalytic overall water splitting

Li-Bo Zhan, Xiaohu Li, Wenkai Zhao, Chuan‐Lu Yang, Bohan Li
article en

Abstract

Efficient solar hydrogen production through photocatalytic overall water splitting requires more than appropriate band gaps and favorable band-edge alignment, yet this requirement is often underestimated in computational screening of two-dimensional photocatalysts. Here, we combine USPEX global structural search and first-principles calculations to identify viable five-atom 2D M x Se y allotropes (M = Si, Ge, Sn; x + y = 5) for solar photocatalytic overall water splitting. Starting from 11,280 converged structures, 91 semiconducting monolayers were identified, among which 16 electronically promising allotropes were retained after HSE06 band-edge alignment and corrected solar-to-hydrogen efficiency screening. Family-wide analysis shows that Se-rich stoichiometries and low-symmetry surface-inequivalent allotropes enlarge the pool of potential candidates by promoting intrinsic polarity, band-edge charge separation, and anisotropic carrier transport. However, these favorable electronic features do not by themselves ensure overall-water-splitting feasibility. The decisive factor is the thermodynamic compatibility of hydrogen and oxygen evolution within a common pH window, followed by structural robustness under operating conditions. Under this reaction-level screening framework, GeSe 4 -4 emerges as the most viable candidate, operating within pH 3–5 with a predicted corrected solar-to-hydrogen efficiency of 17.41–20.86%, which can be further increased to 22.10% under + 4% biaxial tensile strain. Phonon calculations and ab initio molecular dynamics simulations, including solvent-assisted simulations, further support its stability. These results establish composition-structure–reactivity criteria for identifying viable 2D photocatalysts for solar hydrogen production and clarify why many electronically attractive candidates fail at the reaction level.

FuelVol. 430
Shandong University of Aeronautics (CN), Ludong University (CN), Chinese Academy of Sciences (CN), Xinjiang Astronomical Observatory (CN)
National Natural Science Foundation of China, Natural Science Foundation of Shandong Province
Clean water and sanitation
Openalex Percentile: Top 29%
Advanced Photocatalysis Techniques
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