| Literature DB >> 33972426 |
Linan Zhou1,2, Minhan Lou2, Junwei Lucas Bao3,4, Chao Zhang2, Jun G Liu5, John Mark P Martirez6, Shu Tian1, Lin Yuan1, Dayne F Swearer1, Hossein Robatjazi1,2, Emily A Carter7,6,8, Peter Nordlander9,5, Naomi J Halas10,2,5.
Abstract
Light-induced hot carriers derived from the surface plasmons of metal nanostructures have been shown to be highly promising agents for photocatalysis. While both nonthermal and thermalized hot carriers can potentially contribute to this process, their specific role in any given chemical reaction has generally not been identified. Here, we report the observation that the H2-D2 exchange reaction photocatalyzed by Cu nanoparticles is driven primarily by thermalized hot carriers. The external quantum yield shows an intriguing S-shaped intensity dependence and exceeds 100% for high light intensities, suggesting that hot carrier multiplication plays a role. A simplified model for the quantum yield of thermalized hot carriers reproduces the observed kinetic features of the reaction, validating our hypothesis of a thermalized hot carrier mechanism. A quantum mechanical study reveals that vibrational excitations of the surface Cu-H bond is the likely activation mechanism, further supporting the effectiveness of low-energy thermalized hot carriers in photocatalyzing this reaction.Entities:
Keywords: carrier multiplication; hot electrons; photocatalysis; photochemistry; plasmon
Year: 2021 PMID: 33972426 DOI: 10.1073/pnas.2022109118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205