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Hydrogen evolution with hot electrons on a plasmonic-molecular catalyst hybrid system.

Ananta DeyAmal MendalzAnna WachRobert Bericat VadellVitor R SilveiraPaul Maurice LeidingerThomas HuthwelkerVitalii ShtenderZbynek NovotnyLuca ArtigliaJacinto Sá
Published in: Nature communications (2024)
Plasmonic systems convert light into electrical charges and heat, mediating catalytic transformations. However, there is ongoing controversy regarding the involvement of hot carriers in the catalytic process. In this study, we demonstrate the direct utilisation of plasmon hot electrons in the hydrogen evolution reaction with visible light. We intentionally assemble a plasmonic nanohybrid system comprising NiO/Au/[Co(1,10-Phenanthrolin-5-amine) 2 (H 2 O) 2 ], which is unstable at water thermolysis temperatures. This assembly limits the plasmon thermal contribution while ensuring that hot carriers are the primary contributors to the catalytic process. By combining photoelectrocatalysis with advanced in situ spectroscopies, we can substantiate a reaction mechanism in which plasmon-induced hot electrons play a crucial role. These plasmonic hot electrons are directed into phenanthroline ligands, facilitating the rapid, concerted proton-electron transfer steps essential for hydrogen generation. The catalytic response to light modulation aligns with the distinctive profile of a hot carrier-mediated process, featuring a positive, though non-essential, heat contribution.
Keyphrases
  • visible light
  • electron transfer
  • energy transfer
  • single molecule
  • crystal structure
  • label free
  • oxidative stress
  • ionic liquid
  • diabetic rats
  • metal organic framework