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Super-Resolution Mapping of a Chemical Reaction Driven by Plasmonic Near-Fields

Author
Abstract

Plasmonic nanoparticles have recently emerged as promising photocatalysts for light-driven chemical conversions. Their illumination results in the generation of highly energetic charge carriers, elevated surface temperatures, and enhanced electromagnetic fields. Distinguishing between these often-overlapping processes is of paramount importance for the rational design of future plasmonic photocatalysts. However, the study of plasmon-driven chemical reactions is typically performed at the ensemble level and, therefore, is limited by the intrinsic heterogeneity of the catalysts. Here, we report an in situ single-particle study of a fluorogenic chemical reaction driven solely by plasmonic near-fields. Using super-resolution fluorescence microscopy, we map the position of individual product molecules with an ∼30 nm spatial resolution and demonstrate a clear correlation between the electric field distribution around individual nanoparticles and their super-resolved catalytic activity maps. Our results can be extended to systems with more complex electric field distributions, thereby guiding the design of future advanced photocatalysts.

Year of Publication
2021
Journal
ACS Nano Letters
Volume
21
Issue
5
Number of Pages
2149-2155
Date Published
02/2021
DOI
10.1021/acs.nanolett.0c04837
PId
1ac7f6f9881f39e6bfc07daed374b46e
Alternate Journal
ACS Nano Lett.
Label
OA
Journal Article
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