Mapping the local particle plasmon sensitivity with a scanning probe

We probe the local sensitivity of an optically excited plasmonic nanoparticle by changing the local dielectric environment through a scanning glass fiber tip. Recording the particle plasmon scattering spectrum for each tip position allows us to observe spectral resonance shifts concurrent with chang...

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Veröffentlicht in:Nanoscale 2016-09, Vol.8 (36), p.16449-16454
Hauptverfasser: Krug, Markus K, Schaffernak, Gernot, Belitsch, Martin, Gašpari, Marija, Leitgeb, Verena, Trügler, Andreas, Hohenester, Ulrich, Krenn, Joachim R, Hohenau, Andreas
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container_end_page 16454
container_issue 36
container_start_page 16449
container_title Nanoscale
container_volume 8
creator Krug, Markus K
Schaffernak, Gernot
Belitsch, Martin
Gašpari, Marija
Leitgeb, Verena
Trügler, Andreas
Hohenester, Ulrich
Krenn, Joachim R
Hohenau, Andreas
description We probe the local sensitivity of an optically excited plasmonic nanoparticle by changing the local dielectric environment through a scanning glass fiber tip. Recording the particle plasmon scattering spectrum for each tip position allows us to observe spectral resonance shifts concurrent with changes in scattering intensity and plasmon damping. For the tip-induced spectral shifts we find the strongest sensitivity at the particle edges, in accordance with the spatial plasmonic field profile. In contrast, the strongest sensitivity occurs at the center of the particle if the scattering intensity is probed at the short wavelength slope of the plasmon resonance instead of the resonance position. This bears important implications for plasmonic sensing, in particular when done at a single light wavelength. A gold nanoparticle is scanned with a dielectric tip while optical scattering spectra are acquired for each tip position to map plasmon resonance changes.
doi_str_mv 10.1039/c6nr05800k
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source Royal Society Of Chemistry Journals 2008-; Alma/SFX Local Collection
subjects Chemistry
Nanostructure
Plasmonics
Plasmons
Resonance scattering
Scanning
Scattering
Spectra
Wavelengths
title Mapping the local particle plasmon sensitivity with a scanning probe
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