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Raman amplification in the ultra-small limit of Ag nanoparticles on SiO(2) and graphene: Size and inter-particle distance effects

Size, shape and hot spots are crucial to optimize Raman amplification from metallic nanoparticle (NPs). The amplification from radius = 1.8 ± 0.4 nm ultra-small silver NPs was explored. Increasing NP density redshifts and widens their plasmon that, according to simulations for NPs arrays, is origina...

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Autores principales: Cortijo-Campos, Sandra, Ramírez-Jiménez, Rafael, Climent-Pascual, Esteban, Aguilar-Pujol, Montserrat, Jiménez-Villacorta, Félix, Martínez, Lidia, Jiménez-Riobóo, Rafael, Prieto, Carlos, de Andrés, Alicia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116317/
https://www.ncbi.nlm.nih.gov/pubmed/33154608
http://dx.doi.org/10.1016/j.matdes.2020.108702
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author Cortijo-Campos, Sandra
Ramírez-Jiménez, Rafael
Climent-Pascual, Esteban
Aguilar-Pujol, Montserrat
Jiménez-Villacorta, Félix
Martínez, Lidia
Jiménez-Riobóo, Rafael
Prieto, Carlos
de Andrés, Alicia
author_facet Cortijo-Campos, Sandra
Ramírez-Jiménez, Rafael
Climent-Pascual, Esteban
Aguilar-Pujol, Montserrat
Jiménez-Villacorta, Félix
Martínez, Lidia
Jiménez-Riobóo, Rafael
Prieto, Carlos
de Andrés, Alicia
author_sort Cortijo-Campos, Sandra
collection PubMed
description Size, shape and hot spots are crucial to optimize Raman amplification from metallic nanoparticle (NPs). The amplification from radius = 1.8 ± 0.4 nm ultra-small silver NPs was explored. Increasing NP density redshifts and widens their plasmon that, according to simulations for NPs arrays, is originated by the reduction of the interparticle distance, d, becoming remarkable for d ≤ R. Inter-particle interaction red-shifts (N130 nm) and widens (N90 nm) the standard plasmon of non-interacting spherical particles. Graphene partly delocalizes the carriers enhancing the NIR spectral weight. Raman amplification of graphene phonons is moderate and depends smoothly on d while that of Rhodamine 6G (R6G) varies almost exponentially due to their location at hotspots that depend strongly on d. The experimental correlation between amplification and plasmon position is well reproduced by simulations. The amplification originated by the ultra-small NPs is compared to that of larger particles, granular silver films with 7 < R < 15 nm grains, with similar extinction values. The amplification is found to be larger for the 1.8nm NPs due to the higher surface/volume ration that allows higher density of hot spots. It is demonstrated that Raman amplification can be efficiently increased by depositing low density layers of ultra-small NPs on top of granular films.
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spelling pubmed-71163172020-11-04 Raman amplification in the ultra-small limit of Ag nanoparticles on SiO(2) and graphene: Size and inter-particle distance effects Cortijo-Campos, Sandra Ramírez-Jiménez, Rafael Climent-Pascual, Esteban Aguilar-Pujol, Montserrat Jiménez-Villacorta, Félix Martínez, Lidia Jiménez-Riobóo, Rafael Prieto, Carlos de Andrés, Alicia Mater Des Article Size, shape and hot spots are crucial to optimize Raman amplification from metallic nanoparticle (NPs). The amplification from radius = 1.8 ± 0.4 nm ultra-small silver NPs was explored. Increasing NP density redshifts and widens their plasmon that, according to simulations for NPs arrays, is originated by the reduction of the interparticle distance, d, becoming remarkable for d ≤ R. Inter-particle interaction red-shifts (N130 nm) and widens (N90 nm) the standard plasmon of non-interacting spherical particles. Graphene partly delocalizes the carriers enhancing the NIR spectral weight. Raman amplification of graphene phonons is moderate and depends smoothly on d while that of Rhodamine 6G (R6G) varies almost exponentially due to their location at hotspots that depend strongly on d. The experimental correlation between amplification and plasmon position is well reproduced by simulations. The amplification originated by the ultra-small NPs is compared to that of larger particles, granular silver films with 7 < R < 15 nm grains, with similar extinction values. The amplification is found to be larger for the 1.8nm NPs due to the higher surface/volume ration that allows higher density of hot spots. It is demonstrated that Raman amplification can be efficiently increased by depositing low density layers of ultra-small NPs on top of granular films. 2020-04-02 /pmc/articles/PMC7116317/ /pubmed/33154608 http://dx.doi.org/10.1016/j.matdes.2020.108702 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Cortijo-Campos, Sandra
Ramírez-Jiménez, Rafael
Climent-Pascual, Esteban
Aguilar-Pujol, Montserrat
Jiménez-Villacorta, Félix
Martínez, Lidia
Jiménez-Riobóo, Rafael
Prieto, Carlos
de Andrés, Alicia
Raman amplification in the ultra-small limit of Ag nanoparticles on SiO(2) and graphene: Size and inter-particle distance effects
title Raman amplification in the ultra-small limit of Ag nanoparticles on SiO(2) and graphene: Size and inter-particle distance effects
title_full Raman amplification in the ultra-small limit of Ag nanoparticles on SiO(2) and graphene: Size and inter-particle distance effects
title_fullStr Raman amplification in the ultra-small limit of Ag nanoparticles on SiO(2) and graphene: Size and inter-particle distance effects
title_full_unstemmed Raman amplification in the ultra-small limit of Ag nanoparticles on SiO(2) and graphene: Size and inter-particle distance effects
title_short Raman amplification in the ultra-small limit of Ag nanoparticles on SiO(2) and graphene: Size and inter-particle distance effects
title_sort raman amplification in the ultra-small limit of ag nanoparticles on sio(2) and graphene: size and inter-particle distance effects
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116317/
https://www.ncbi.nlm.nih.gov/pubmed/33154608
http://dx.doi.org/10.1016/j.matdes.2020.108702
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