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Silver Nanoparticle Chains for Ultra-Long-Range Plasmonic Waveguides for Nd(3+) Fluorescence

Plasmonic waveguides have been shown to be a promising approach to confine and transport electromagnetic energy beyond the diffraction limit. However, ohmic losses generally prevent their integration at micrometric or millimetric scales. Here, we present a gain-compensated plasmonic waveguide based...

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Autores principales: Fernández-Martínez, Javier, Carretero-Palacios, Sol, Molina, Pablo, Bravo-Abad, Jorge, Ramírez, Mariola O., Bausá, Luisa E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9737231/
https://www.ncbi.nlm.nih.gov/pubmed/36500918
http://dx.doi.org/10.3390/nano12234296
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author Fernández-Martínez, Javier
Carretero-Palacios, Sol
Molina, Pablo
Bravo-Abad, Jorge
Ramírez, Mariola O.
Bausá, Luisa E.
author_facet Fernández-Martínez, Javier
Carretero-Palacios, Sol
Molina, Pablo
Bravo-Abad, Jorge
Ramírez, Mariola O.
Bausá, Luisa E.
author_sort Fernández-Martínez, Javier
collection PubMed
description Plasmonic waveguides have been shown to be a promising approach to confine and transport electromagnetic energy beyond the diffraction limit. However, ohmic losses generally prevent their integration at micrometric or millimetric scales. Here, we present a gain-compensated plasmonic waveguide based on the integration of linear chains of Ag nanoparticles on an optically active Nd(3+)-doped solid-state gain medium. By means of dual confocal fluorescence microscopy, we demonstrate long-range optical energy propagation due to the near-field coupling between the plasmonic nanostructures and the Nd(3+) ions. The subwavelength fluorescence guiding is monitored at distances of around 100 µm from the excitation source for two different emission ranges centered at around 900 nm and 1080 nm. In both cases, the guided fluorescence exhibits a strong polarization dependence, consistent with the polarization behavior of the plasmon resonance supported by the chain. The experimental results are interpreted through numerical simulations in quasi-infinite long chains, which corroborate the propagation features of the Ag nanoparticle chains at both excitation (λ(exc) = 590 nm) and emission wavelengths. The obtained results exceed by an order of magnitude that of previous reports on electromagnetic energy transport using linear plasmonic chains. The work points out the potential of combining Ag nanoparticle chains with a small interparticle distance (~2 nm) with rare-earth-based optical gain media as ultra-long-range waveguides with extreme light confinement. The results offer new perspectives for the design of integrated hybrid plasmonic–photonic circuits based on rare-earth-activated solid-state platforms.
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spelling pubmed-97372312022-12-11 Silver Nanoparticle Chains for Ultra-Long-Range Plasmonic Waveguides for Nd(3+) Fluorescence Fernández-Martínez, Javier Carretero-Palacios, Sol Molina, Pablo Bravo-Abad, Jorge Ramírez, Mariola O. Bausá, Luisa E. Nanomaterials (Basel) Article Plasmonic waveguides have been shown to be a promising approach to confine and transport electromagnetic energy beyond the diffraction limit. However, ohmic losses generally prevent their integration at micrometric or millimetric scales. Here, we present a gain-compensated plasmonic waveguide based on the integration of linear chains of Ag nanoparticles on an optically active Nd(3+)-doped solid-state gain medium. By means of dual confocal fluorescence microscopy, we demonstrate long-range optical energy propagation due to the near-field coupling between the plasmonic nanostructures and the Nd(3+) ions. The subwavelength fluorescence guiding is monitored at distances of around 100 µm from the excitation source for two different emission ranges centered at around 900 nm and 1080 nm. In both cases, the guided fluorescence exhibits a strong polarization dependence, consistent with the polarization behavior of the plasmon resonance supported by the chain. The experimental results are interpreted through numerical simulations in quasi-infinite long chains, which corroborate the propagation features of the Ag nanoparticle chains at both excitation (λ(exc) = 590 nm) and emission wavelengths. The obtained results exceed by an order of magnitude that of previous reports on electromagnetic energy transport using linear plasmonic chains. The work points out the potential of combining Ag nanoparticle chains with a small interparticle distance (~2 nm) with rare-earth-based optical gain media as ultra-long-range waveguides with extreme light confinement. The results offer new perspectives for the design of integrated hybrid plasmonic–photonic circuits based on rare-earth-activated solid-state platforms. MDPI 2022-12-03 /pmc/articles/PMC9737231/ /pubmed/36500918 http://dx.doi.org/10.3390/nano12234296 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fernández-Martínez, Javier
Carretero-Palacios, Sol
Molina, Pablo
Bravo-Abad, Jorge
Ramírez, Mariola O.
Bausá, Luisa E.
Silver Nanoparticle Chains for Ultra-Long-Range Plasmonic Waveguides for Nd(3+) Fluorescence
title Silver Nanoparticle Chains for Ultra-Long-Range Plasmonic Waveguides for Nd(3+) Fluorescence
title_full Silver Nanoparticle Chains for Ultra-Long-Range Plasmonic Waveguides for Nd(3+) Fluorescence
title_fullStr Silver Nanoparticle Chains for Ultra-Long-Range Plasmonic Waveguides for Nd(3+) Fluorescence
title_full_unstemmed Silver Nanoparticle Chains for Ultra-Long-Range Plasmonic Waveguides for Nd(3+) Fluorescence
title_short Silver Nanoparticle Chains for Ultra-Long-Range Plasmonic Waveguides for Nd(3+) Fluorescence
title_sort silver nanoparticle chains for ultra-long-range plasmonic waveguides for nd(3+) fluorescence
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9737231/
https://www.ncbi.nlm.nih.gov/pubmed/36500918
http://dx.doi.org/10.3390/nano12234296
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