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Alchemically-glazed plasmonic nanocavities using atomic layer metals: controllably synergizing catalysis and plasmonics.

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Peer-reviewed

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Abstract

Plasmonic nanocavities offer exceptional confinement of light, making them effective for energy conversion applications. However, limitations with stability, materials, and chemical activity have impeded their practical implementation. Here we integrate ultrathin palladium (Pd) metal films from sub- to few- atomic monolayers inside plasmonic nanocavities using underpotential deposition. Despite the poor plasmonic properties of bulk Pd in the visible region, minimal loss in optical field enhancement is delivered along with Pd chemical enhancement, as confirmed by ab initio calculations. Such synergistic effects significantly enhance photocatalytic activity of the plasmonic nanocavities as well as photostability by suppressing surface atom migration. We show the atomic alchemical-glazing approach is general for a range of catalytic metals that bridge plasmonic and chemical catalysis, yielding broad applications in photocatalysis for optimal chemical transformation.

Description

Journal Title

Nat Commun

Conference Name

Journal ISSN

2041-1723
2041-1723

Volume Title

Publisher

Nature Portfolio

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Except where otherwised noted, this item's license is described as Attribution 4.0 International
Sponsorship
Engineering and Physical Sciences Research Council (EP/L027151/1)
EPSRC (EP/X037770/1)
EPSRC (EP/Y008162/1)
European Commission Horizon 2020 (H2020) ERC (883703)
European Commission Horizon 2020 (H2020) Research Infrastructures (RI) (861950)
Horizon Europe UKRI Underwrite MSCA (EP/X023443/1)
EPSRC (EP/Y008294/1)
We acknowledge funding from EPSRC (EP/L027151/1, EP/X037770/1 and EP/Y008162/1), and ERC (Project No. 883703 PICOFORCE and 861950 POSEIDON). S.H. acknowledges funding from the Fundamental Research Funds for the Central Universities (Xiamen University: No. 20720240137). E.S.A.G acknowledges support from the German National Academy of Sciences Leopoldina (LPDS 2022-01). B.d.N acknowledges support from the Winton Programme for the Physics of Sustainability, and the Royal Society in the form of a University Research Fellowship URF \R1\211162