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Defect-Tolerant Plasmonic Elliptical Resonators for Long-Range Energy Transfer

[Image: see text] Energy transfer allows energy to be moved from one quantum emitter to another. If this process follows the Förster mechanism, efficient transfer requires the emitters to be extremely close (<10 nm). To increase the transfer range, nanophotonic structures have been explored for p...

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Autores principales: Antolinez, Felipe V., Winkler, Jan M., Rohner, Patrik, Kress, Stephan J. P., Keitel, Robert C., Kim, David K., Marqués-Gallego, Patricia, Cui, Jian, Rabouw, Freddy T., Poulikakos, Dimos, Norris, David J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6774304/
https://www.ncbi.nlm.nih.gov/pubmed/31294956
http://dx.doi.org/10.1021/acsnano.9b03201
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author Antolinez, Felipe V.
Winkler, Jan M.
Rohner, Patrik
Kress, Stephan J. P.
Keitel, Robert C.
Kim, David K.
Marqués-Gallego, Patricia
Cui, Jian
Rabouw, Freddy T.
Poulikakos, Dimos
Norris, David J.
author_facet Antolinez, Felipe V.
Winkler, Jan M.
Rohner, Patrik
Kress, Stephan J. P.
Keitel, Robert C.
Kim, David K.
Marqués-Gallego, Patricia
Cui, Jian
Rabouw, Freddy T.
Poulikakos, Dimos
Norris, David J.
author_sort Antolinez, Felipe V.
collection PubMed
description [Image: see text] Energy transfer allows energy to be moved from one quantum emitter to another. If this process follows the Förster mechanism, efficient transfer requires the emitters to be extremely close (<10 nm). To increase the transfer range, nanophotonic structures have been explored for photon- or plasmon-mediated energy transfer. Here, we fabricate high-quality silver plasmonic resonators to examine long-distance plasmon-mediated energy transfer. Specifically, we design elliptical resonators that allow energy transfer between the foci, which are separated by up to 10 μm. The geometry of the ellipse guarantees that all plasmons emitted from one focus are collected and channeled through different paths to the other focus. Thus, energy can be transferred even if a micrometer-sized defect obstructs the direct path between the focal points. We characterize the spectral and spatial profiles of the resonator modes and show that these can be used to transfer energy between green- and red-emitting colloidal quantum dots printed with subwavelength accuracy using electrohydrodynamic nanodripping. Rate-equation modeling of the time-resolved fluorescence from the quantum dots further confirms the long-distance energy transfer.
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spelling pubmed-67743042019-10-03 Defect-Tolerant Plasmonic Elliptical Resonators for Long-Range Energy Transfer Antolinez, Felipe V. Winkler, Jan M. Rohner, Patrik Kress, Stephan J. P. Keitel, Robert C. Kim, David K. Marqués-Gallego, Patricia Cui, Jian Rabouw, Freddy T. Poulikakos, Dimos Norris, David J. ACS Nano [Image: see text] Energy transfer allows energy to be moved from one quantum emitter to another. If this process follows the Förster mechanism, efficient transfer requires the emitters to be extremely close (<10 nm). To increase the transfer range, nanophotonic structures have been explored for photon- or plasmon-mediated energy transfer. Here, we fabricate high-quality silver plasmonic resonators to examine long-distance plasmon-mediated energy transfer. Specifically, we design elliptical resonators that allow energy transfer between the foci, which are separated by up to 10 μm. The geometry of the ellipse guarantees that all plasmons emitted from one focus are collected and channeled through different paths to the other focus. Thus, energy can be transferred even if a micrometer-sized defect obstructs the direct path between the focal points. We characterize the spectral and spatial profiles of the resonator modes and show that these can be used to transfer energy between green- and red-emitting colloidal quantum dots printed with subwavelength accuracy using electrohydrodynamic nanodripping. Rate-equation modeling of the time-resolved fluorescence from the quantum dots further confirms the long-distance energy transfer. American Chemical Society 2019-07-11 2019-08-27 /pmc/articles/PMC6774304/ /pubmed/31294956 http://dx.doi.org/10.1021/acsnano.9b03201 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Antolinez, Felipe V.
Winkler, Jan M.
Rohner, Patrik
Kress, Stephan J. P.
Keitel, Robert C.
Kim, David K.
Marqués-Gallego, Patricia
Cui, Jian
Rabouw, Freddy T.
Poulikakos, Dimos
Norris, David J.
Defect-Tolerant Plasmonic Elliptical Resonators for Long-Range Energy Transfer
title Defect-Tolerant Plasmonic Elliptical Resonators for Long-Range Energy Transfer
title_full Defect-Tolerant Plasmonic Elliptical Resonators for Long-Range Energy Transfer
title_fullStr Defect-Tolerant Plasmonic Elliptical Resonators for Long-Range Energy Transfer
title_full_unstemmed Defect-Tolerant Plasmonic Elliptical Resonators for Long-Range Energy Transfer
title_short Defect-Tolerant Plasmonic Elliptical Resonators for Long-Range Energy Transfer
title_sort defect-tolerant plasmonic elliptical resonators for long-range energy transfer
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6774304/
https://www.ncbi.nlm.nih.gov/pubmed/31294956
http://dx.doi.org/10.1021/acsnano.9b03201
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