Abstract
Plasmonic-assisted solar-driven photocatalytic water splitting for hydrogen production represents a sustainable strategy for green energy generation. However, conventional plasmonic enhancement via photo-induced electron injection into water molecules faces a key limitation: weak interfacial H2O adsorption characterized by restriction solely to H-atom-mediated interactions, which severely constrains reaction kinetics. Simultaneously, the novel quantum-corrected plasmonic effect could improve the electron models in optoelectronic device; however, within the domain of photocatalytic water splitting, experimental validations of this effect remain relatively scarce. Here, we harness the quantum-corrected plasmonic effect via Au25 nanocluster incorporation to realize and enhance photocatalytic overall water splitting performance, facilitated by modulated surface adsorption behavior through electron-deficient Auδ+ active sites originating from the size effect and interband transitions. In this case, the Auδ+ active sites enhance the antibonding-orbital occupancy of adsorbed Au-O species, accelerating both multipath electron injection and the activation process of water molecules, ultimately facilitating the cleavage of H─O bonds. Consequently, it achieves H2 and O2 evolution rates of 1.07 and 0.54 mmol h−1 under light irradiation with catalyst ZnIn2S4-Au25, resolving the long-standing challenge of incomplete overall water splitting for sole Au nanoparticle-decorated photocatalysts, providing a promising strategy for photocatalytic overall water splitting and new insights into designing nanocluster-based photocatalysts.
| Original language | English |
|---|---|
| Journal | Advanced Materials |
| DOIs | |
| State | Accepted/In press - 2026 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- adsorption
- catalysis
- electron
- hydrogen production
- materials science
- nanoclusters
- photocatalysis
- photocatalytic water splitting
- water splitting
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