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Negative Effective Mass in Plasmonic Systems II: Elucidating the Optical and Acoustical Branches of Vibrations and the Possibility of Anti-Resonance Propagation

We report the negative effective mass metamaterials based on the electro-mechanical coupling exploiting plasma oscillations of free electron gas. The negative mass appears as a result of the vibration of a metallic particle with a frequency ω which is close to the frequency of the plasma oscillation...

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Autores principales: Bormashenko, Edward, Legchenkova, Irina, Frenkel, Mark
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7476018/
https://www.ncbi.nlm.nih.gov/pubmed/32784869
http://dx.doi.org/10.3390/ma13163512
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author Bormashenko, Edward
Legchenkova, Irina
Frenkel, Mark
author_facet Bormashenko, Edward
Legchenkova, Irina
Frenkel, Mark
author_sort Bormashenko, Edward
collection PubMed
description We report the negative effective mass metamaterials based on the electro-mechanical coupling exploiting plasma oscillations of free electron gas. The negative mass appears as a result of the vibration of a metallic particle with a frequency ω which is close to the frequency of the plasma oscillations of the electron gas [Formula: see text] , relative to the ionic lattice [Formula: see text]. The plasma oscillations are represented with the elastic spring constant [Formula: see text] , where [Formula: see text] is the plasma frequency. Thus, the metallic particle vibrating with the external frequency ω is described by the effective mass [Formula: see text] , which is negative when the frequency [Formula: see text] approaches [Formula: see text] from above. The idea is exemplified with two conducting metals, namely Au and Li embedded in various matrices. We treated a one-dimensional lattice built from the metallic micro-elements [Formula: see text] connected by ideal springs with the elastic constant [Formula: see text] representing various media such as polydimethylsiloxane and soda-lime glass. The optical and acoustical branches of longitudinal modes propagating through the lattice are elucidated for various ratios [Formula: see text] , where [Formula: see text] and [Formula: see text] represents the elastic properties of the medium. The 1D lattice, built from the thin metallic wires giving rise to low frequency plasmons, is treated. The possibility of the anti-resonant propagation, strengthening the effect of the negative mass occurring under ω = ω(p) = ω(1), is addressed.
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spelling pubmed-74760182020-09-09 Negative Effective Mass in Plasmonic Systems II: Elucidating the Optical and Acoustical Branches of Vibrations and the Possibility of Anti-Resonance Propagation Bormashenko, Edward Legchenkova, Irina Frenkel, Mark Materials (Basel) Article We report the negative effective mass metamaterials based on the electro-mechanical coupling exploiting plasma oscillations of free electron gas. The negative mass appears as a result of the vibration of a metallic particle with a frequency ω which is close to the frequency of the plasma oscillations of the electron gas [Formula: see text] , relative to the ionic lattice [Formula: see text]. The plasma oscillations are represented with the elastic spring constant [Formula: see text] , where [Formula: see text] is the plasma frequency. Thus, the metallic particle vibrating with the external frequency ω is described by the effective mass [Formula: see text] , which is negative when the frequency [Formula: see text] approaches [Formula: see text] from above. The idea is exemplified with two conducting metals, namely Au and Li embedded in various matrices. We treated a one-dimensional lattice built from the metallic micro-elements [Formula: see text] connected by ideal springs with the elastic constant [Formula: see text] representing various media such as polydimethylsiloxane and soda-lime glass. The optical and acoustical branches of longitudinal modes propagating through the lattice are elucidated for various ratios [Formula: see text] , where [Formula: see text] and [Formula: see text] represents the elastic properties of the medium. The 1D lattice, built from the thin metallic wires giving rise to low frequency plasmons, is treated. The possibility of the anti-resonant propagation, strengthening the effect of the negative mass occurring under ω = ω(p) = ω(1), is addressed. MDPI 2020-08-09 /pmc/articles/PMC7476018/ /pubmed/32784869 http://dx.doi.org/10.3390/ma13163512 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bormashenko, Edward
Legchenkova, Irina
Frenkel, Mark
Negative Effective Mass in Plasmonic Systems II: Elucidating the Optical and Acoustical Branches of Vibrations and the Possibility of Anti-Resonance Propagation
title Negative Effective Mass in Plasmonic Systems II: Elucidating the Optical and Acoustical Branches of Vibrations and the Possibility of Anti-Resonance Propagation
title_full Negative Effective Mass in Plasmonic Systems II: Elucidating the Optical and Acoustical Branches of Vibrations and the Possibility of Anti-Resonance Propagation
title_fullStr Negative Effective Mass in Plasmonic Systems II: Elucidating the Optical and Acoustical Branches of Vibrations and the Possibility of Anti-Resonance Propagation
title_full_unstemmed Negative Effective Mass in Plasmonic Systems II: Elucidating the Optical and Acoustical Branches of Vibrations and the Possibility of Anti-Resonance Propagation
title_short Negative Effective Mass in Plasmonic Systems II: Elucidating the Optical and Acoustical Branches of Vibrations and the Possibility of Anti-Resonance Propagation
title_sort negative effective mass in plasmonic systems ii: elucidating the optical and acoustical branches of vibrations and the possibility of anti-resonance propagation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7476018/
https://www.ncbi.nlm.nih.gov/pubmed/32784869
http://dx.doi.org/10.3390/ma13163512
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