Dumbbell gold nanoparticle dimer antennas with advanced optical properties
Plasmonic nanoantennas have found broad applications in the fields of photovoltaics, electroluminescence, non-linear optics and for plasmon enhanced spectroscopy and microscopy. Of particular interest are fundamental limitations beyond the dipolar approximation limit. We introduce asymmetric gold na...
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doaj-24c192d18f354e5fb8418625f888a7a02020-11-24T21:48:53ZengBeilstein-InstitutBeilstein Journal of Nanotechnology2190-42862018-08-01912188219710.3762/bjnano.9.2052190-4286-9-205Dumbbell gold nanoparticle dimer antennas with advanced optical propertiesJanning F. Herrmann0Christiane Höppener1NanoBioPhotonics Group, Physikalisches Institut, Westfälische Wilhelms-Universität Münster, Wilhelm-Klemm-Straße 10, 48149 Münster, GermanyLeibniz Institut für Photonische Technologien, Jena, Albert-Einsteinstraße 9, 07743 Jena, GermanyPlasmonic nanoantennas have found broad applications in the fields of photovoltaics, electroluminescence, non-linear optics and for plasmon enhanced spectroscopy and microscopy. Of particular interest are fundamental limitations beyond the dipolar approximation limit. We introduce asymmetric gold nanoparticle antennas (AuNPs) with improved optical near-field properties based on the formation of sub-nanometer size gaps, which are suitable for studying matter with high-resolution and single molecule sensitivity. These dumbbell antennas are characterized in regard to their far-field and near-field properties and are compared to similar dimer and trimer antennas with larger gap sizes. The tailoring of the gap size down to sub-nanometer length scales is based on the integration of rigid macrocyclic cucurbituril molecules. Stable dimer antennas are formed with an improved ratio of the electromagnetic field enhancement and confinement. This ratio, taken as a measure of the performance of an antenna, can even exceed that exhibited by trimer AuNP antennas composed of comparable building blocks with larger gap sizes. Fluctuations in the far-field and near-field properties are observed, which are likely caused by distinct deviations of the gap geometry arising from the faceted structure of the applied colloidal AuNPs.https://doi.org/10.3762/bjnano.9.205atomistic plasmonicsdumbbell dimer antennaselectromagnetic field enhancementlight confinementnanolensnanoscale morphology |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Janning F. Herrmann Christiane Höppener |
spellingShingle |
Janning F. Herrmann Christiane Höppener Dumbbell gold nanoparticle dimer antennas with advanced optical properties Beilstein Journal of Nanotechnology atomistic plasmonics dumbbell dimer antennas electromagnetic field enhancement light confinement nanolens nanoscale morphology |
author_facet |
Janning F. Herrmann Christiane Höppener |
author_sort |
Janning F. Herrmann |
title |
Dumbbell gold nanoparticle dimer antennas with advanced optical properties |
title_short |
Dumbbell gold nanoparticle dimer antennas with advanced optical properties |
title_full |
Dumbbell gold nanoparticle dimer antennas with advanced optical properties |
title_fullStr |
Dumbbell gold nanoparticle dimer antennas with advanced optical properties |
title_full_unstemmed |
Dumbbell gold nanoparticle dimer antennas with advanced optical properties |
title_sort |
dumbbell gold nanoparticle dimer antennas with advanced optical properties |
publisher |
Beilstein-Institut |
series |
Beilstein Journal of Nanotechnology |
issn |
2190-4286 |
publishDate |
2018-08-01 |
description |
Plasmonic nanoantennas have found broad applications in the fields of photovoltaics, electroluminescence, non-linear optics and for plasmon enhanced spectroscopy and microscopy. Of particular interest are fundamental limitations beyond the dipolar approximation limit. We introduce asymmetric gold nanoparticle antennas (AuNPs) with improved optical near-field properties based on the formation of sub-nanometer size gaps, which are suitable for studying matter with high-resolution and single molecule sensitivity. These dumbbell antennas are characterized in regard to their far-field and near-field properties and are compared to similar dimer and trimer antennas with larger gap sizes. The tailoring of the gap size down to sub-nanometer length scales is based on the integration of rigid macrocyclic cucurbituril molecules. Stable dimer antennas are formed with an improved ratio of the electromagnetic field enhancement and confinement. This ratio, taken as a measure of the performance of an antenna, can even exceed that exhibited by trimer AuNP antennas composed of comparable building blocks with larger gap sizes. Fluctuations in the far-field and near-field properties are observed, which are likely caused by distinct deviations of the gap geometry arising from the faceted structure of the applied colloidal AuNPs. |
topic |
atomistic plasmonics dumbbell dimer antennas electromagnetic field enhancement light confinement nanolens nanoscale morphology |
url |
https://doi.org/10.3762/bjnano.9.205 |
work_keys_str_mv |
AT janningfherrmann dumbbellgoldnanoparticledimerantennaswithadvancedopticalproperties AT christianehoppener dumbbellgoldnanoparticledimerantennaswithadvancedopticalproperties |
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