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Ultranarrow and Tunable Fano Resonance in Ag Nanoshells and a Simple Ag Nanomatryushka

We study theoretically the Fano resonances (FRs) produced by the near-field coupling between the lowest-order (dipolar) sphere plasmon resonance and the dipolar cavity plasmon mode supported by an Ag nanoshell or the hybrid mode in a simple three-layered Ag nanomatryushka constructed by incorporatin...

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Autores principales: Gu, Ping, Cai, Xiaofeng, Wu, Guohua, Xue, Chenpeng, Chen, Jing, Zhang, Zuxing, Yan, Zhendong, Liu, Fanxin, Tang, Chaojun, Du, Wei, Huang, Zhong, Chen, Zhuo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8399518/
https://www.ncbi.nlm.nih.gov/pubmed/34443870
http://dx.doi.org/10.3390/nano11082039
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author Gu, Ping
Cai, Xiaofeng
Wu, Guohua
Xue, Chenpeng
Chen, Jing
Zhang, Zuxing
Yan, Zhendong
Liu, Fanxin
Tang, Chaojun
Du, Wei
Huang, Zhong
Chen, Zhuo
author_facet Gu, Ping
Cai, Xiaofeng
Wu, Guohua
Xue, Chenpeng
Chen, Jing
Zhang, Zuxing
Yan, Zhendong
Liu, Fanxin
Tang, Chaojun
Du, Wei
Huang, Zhong
Chen, Zhuo
author_sort Gu, Ping
collection PubMed
description We study theoretically the Fano resonances (FRs) produced by the near-field coupling between the lowest-order (dipolar) sphere plasmon resonance and the dipolar cavity plasmon mode supported by an Ag nanoshell or the hybrid mode in a simple three-layered Ag nanomatryushka constructed by incorporating a solid Ag nanosphere into the center of Ag nanoshell. We find that the linewidth of dipolar cavity plasmon resonance or hybrid mode induced FR is as narrow as 6.8 nm (corresponding to a high Q-factor of ~160 and a long dephasing time of ~200 fs) due to the highly localized feature of the electric-fields. In addition, we attribute the formation mechanisms of typical asymmetrical Fano line profiles in the extinction spectra to the constructive (Fano peak) and the destructive interferences (Fano dip) arising from the symmetric and asymmetric charge distributions between the dipolar sphere and cavity plasmon or hybrid modes. Interestingly, by simply adjusting the structural parameters, the dielectric refractive index required for the strongest FR in the Ag nanomatryushka can be reduced to be as small as 1.4, which largely reduces the restriction on materials, and the positions of FR can also be easily tuned across a broad spectral range. The ultranarrow linewidth, highly tunability together with the huge enhancement of electric fields at the FR may find important applications in sensing, slow light, and plasmon rulers.
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spelling pubmed-83995182021-08-29 Ultranarrow and Tunable Fano Resonance in Ag Nanoshells and a Simple Ag Nanomatryushka Gu, Ping Cai, Xiaofeng Wu, Guohua Xue, Chenpeng Chen, Jing Zhang, Zuxing Yan, Zhendong Liu, Fanxin Tang, Chaojun Du, Wei Huang, Zhong Chen, Zhuo Nanomaterials (Basel) Article We study theoretically the Fano resonances (FRs) produced by the near-field coupling between the lowest-order (dipolar) sphere plasmon resonance and the dipolar cavity plasmon mode supported by an Ag nanoshell or the hybrid mode in a simple three-layered Ag nanomatryushka constructed by incorporating a solid Ag nanosphere into the center of Ag nanoshell. We find that the linewidth of dipolar cavity plasmon resonance or hybrid mode induced FR is as narrow as 6.8 nm (corresponding to a high Q-factor of ~160 and a long dephasing time of ~200 fs) due to the highly localized feature of the electric-fields. In addition, we attribute the formation mechanisms of typical asymmetrical Fano line profiles in the extinction spectra to the constructive (Fano peak) and the destructive interferences (Fano dip) arising from the symmetric and asymmetric charge distributions between the dipolar sphere and cavity plasmon or hybrid modes. Interestingly, by simply adjusting the structural parameters, the dielectric refractive index required for the strongest FR in the Ag nanomatryushka can be reduced to be as small as 1.4, which largely reduces the restriction on materials, and the positions of FR can also be easily tuned across a broad spectral range. The ultranarrow linewidth, highly tunability together with the huge enhancement of electric fields at the FR may find important applications in sensing, slow light, and plasmon rulers. MDPI 2021-08-10 /pmc/articles/PMC8399518/ /pubmed/34443870 http://dx.doi.org/10.3390/nano11082039 Text en © 2021 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
Gu, Ping
Cai, Xiaofeng
Wu, Guohua
Xue, Chenpeng
Chen, Jing
Zhang, Zuxing
Yan, Zhendong
Liu, Fanxin
Tang, Chaojun
Du, Wei
Huang, Zhong
Chen, Zhuo
Ultranarrow and Tunable Fano Resonance in Ag Nanoshells and a Simple Ag Nanomatryushka
title Ultranarrow and Tunable Fano Resonance in Ag Nanoshells and a Simple Ag Nanomatryushka
title_full Ultranarrow and Tunable Fano Resonance in Ag Nanoshells and a Simple Ag Nanomatryushka
title_fullStr Ultranarrow and Tunable Fano Resonance in Ag Nanoshells and a Simple Ag Nanomatryushka
title_full_unstemmed Ultranarrow and Tunable Fano Resonance in Ag Nanoshells and a Simple Ag Nanomatryushka
title_short Ultranarrow and Tunable Fano Resonance in Ag Nanoshells and a Simple Ag Nanomatryushka
title_sort ultranarrow and tunable fano resonance in ag nanoshells and a simple ag nanomatryushka
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8399518/
https://www.ncbi.nlm.nih.gov/pubmed/34443870
http://dx.doi.org/10.3390/nano11082039
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