The Role of Morphology and Phase Engineering in Molybdenum Sulfide for Robust Photoelectrochemical Hydrogen Evolution on III–V Photoelectrodes

Solar‐driven hydrogen production via photoelectrochemical (PEC) water splitting offers a direct route to decarbonized fuels without grid dependence. Although III–V semiconductors exhibit exceptional optoelectronic properties, their reliance on platinum group cocatalysts limits scalability. Here, we report a platinum group metal‐free (PGM‐free) hybrid photocathode integrating an epitaxially grown GaAs/Si:p junction with mixed‐phase MoS 2 nanostructures for efficient hydrogen evolution in acidic media. Through systematic control of morphology, crystallinity, and phase composition, we demonstrate that 1T′‐rich MoS 2 nanoflowers outperform exfoliated nanosheets, bulk 2H‐MoS 2 , and amorphous powder MoS x . The nanoflower architecture delivers higher saturation photocurrent densities and a positive shift in onset potential, attributed to enhanced charge transport, catalytic kinetics, and light penetration, while simultaneously improving stability. Notably, the hierarchical nanoflower morphology and 1T′ phase synergistically enhance photocurrent performance. The optimized GaAs/Si:p photocathodes modified with MoS 2 nanoflowers exhibit stable operation with a Faradaic efficiency of ~97% for hydrogen evolution. These findings establish morphology‐phase synergy as a critical design principle for developing PGM‐free PEC systems, paving the way for cost‐effective solar fuel production.

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Journal
ChemSusChem
Published
2026-09-26
DOI
https://doi.org/10.1002/cssc.71110
Primary Topic
2D Materials and Applications
Type
article
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article

The Role of Morphology and Phase Engineering in Molybdenum Sulfide for Robust Photoelectrochemical Hydrogen Evolution on III–V Photoelectrodes

Chrystelle Salameh, Damien Voiry, Bruno Fabre, Yoan Léger et al.
ChemSusChem
2D Materials and Applications
article

The Role of Morphology and Phase Engineering in Molybdenum Sulfide for Robust Photoelectrochemical Hydrogen Evolution on III–V Photoelectrodes

Chrystelle Salameh, Damien Voiry, Bruno Fabre, Yoan Léger, Zakaria Anfar, Nicolas Bertru, Gabriel Loget, Charles Cornet, Fatima Merhi
article en

Abstract

Solar‐driven hydrogen production via photoelectrochemical (PEC) water splitting offers a direct route to decarbonized fuels without grid dependence. Although III–V semiconductors exhibit exceptional optoelectronic properties, their reliance on platinum group cocatalysts limits scalability. Here, we report a platinum group metal‐free (PGM‐free) hybrid photocathode integrating an epitaxially grown GaAs/Si:p junction with mixed‐phase MoS 2 nanostructures for efficient hydrogen evolution in acidic media. Through systematic control of morphology, crystallinity, and phase composition, we demonstrate that 1T′‐rich MoS 2 nanoflowers outperform exfoliated nanosheets, bulk 2H‐MoS 2 , and amorphous powder MoS x . The nanoflower architecture delivers higher saturation photocurrent densities and a positive shift in onset potential, attributed to enhanced charge transport, catalytic kinetics, and light penetration, while simultaneously improving stability. Notably, the hierarchical nanoflower morphology and 1T′ phase synergistically enhance photocurrent performance. The optimized GaAs/Si:p photocathodes modified with MoS 2 nanoflowers exhibit stable operation with a Faradaic efficiency of ~97% for hydrogen evolution. These findings establish morphology‐phase synergy as a critical design principle for developing PGM‐free PEC systems, paving the way for cost‐effective solar fuel production.

ChemSusChemVol. 19(19)
École Nationale Supérieure de Chimie de Montpellier (FR), Centre National de la Recherche Scientifique (FR), Université de Bordeaux (FR), Université de Montpellier (FR), Institut National des Sciences Appliquées de Rennes (FR), Institut des Sciences Moléculaires (FR), Institut des Sciences Chimiques de Rennes (FR), Institut de Physique de Rennes (FR), Institut Européen des Membranes (FR), Institut Polytechnique de Bordeaux (FR), Université de Rennes (FR)
Openalex Percentile: Top 25%
2D Materials and Applications
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