Quantifying the relationship between electric field enhancement and plasmon-driven electron transfer
Abstract
Plasmonic materials interact strongly with light to create localized, out-of-equilibrium environments with intense electromagnetic fields known as hotspots. After forming, hotspots dissipate energy into their surroundings and can transfer energy and charge carriers to nearby molecules, giving plasmonic materials the potential to drive reactions with sunlight. However, the field needs a better mechanistic understanding of plasmon–molecule interactions and how the local plasmon environment, specifically the electromagnetic field enhancement and spatial distribution of hotspots, impacts the reaction yield. In this work, we mapped plasmon-driven charge transfer across ordered plasmonic substrates using diffraction-limited surface-enhanced Raman spectroscopy (SERS) microscopy to understand the relationship between the average local electric field enhancement and charge transfer reaction yield. We tracked the plasmon-induced electron transfer to buckminsterfullerene (C60) and found that areas with the greatest SERS intensity were not the areas with the greatest ensemble-averaged reduction of C60, suggesting that areas with higher electric field enhancement—or “hotter,” more enhancing hotspots—do not improve the charge transfer reaction yield. This work shows that efforts to improve plasmon-driven charge transfer should not merely focus on creating substrates with extremely enhancing regions but also consider how other factors could optimize photoreduction yields.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (2)
MaKenna M. Koble
Department of Chemistry, University of Minnesota , Minneapolis, Minnesota 55455,
Renee R. Frontiera
Department of Chemistry