Loosely-bound low-loss surface plasmons in hyperbolic metamaterial

Abstract Surface plasmons (SPs) carry electromagnetic energy in the form of collective oscillation of electrons at metal surface and commonly demonstrate two important features: strong lateral confinement and short propagation lengths. In this work we have investigated the trade-off relationship exi...

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Main Authors: Yu Shi, Hong Koo Kim
Format: Article
Language:English
Published: SpringerOpen 2018-06-01
Series:Nano Convergence
Subjects:
Online Access:http://link.springer.com/article/10.1186/s40580-018-0148-z
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spelling doaj-48526577d24846d19b5fcf82e911b2952020-11-24T22:04:02ZengSpringerOpenNano Convergence2196-54042018-06-015111210.1186/s40580-018-0148-zLoosely-bound low-loss surface plasmons in hyperbolic metamaterialYu Shi0Hong Koo Kim1Department of Electrical and Computer Engineering and Petersen Institute of NanoScience and Engineering, University of PittsburghDepartment of Electrical and Computer Engineering and Petersen Institute of NanoScience and Engineering, University of PittsburghAbstract Surface plasmons (SPs) carry electromagnetic energy in the form of collective oscillation of electrons at metal surface and commonly demonstrate two important features: strong lateral confinement and short propagation lengths. In this work we have investigated the trade-off relationship existing between propagation length and lateral confinement of SP fields in a hyperbolic metamaterial system, and explored loosening of lateral confinement as a means of increasing propagation length. By performing finite-difference time-domain analysis of Ag/SiO2 thin-film stacked structure we demonstrate long range (~ 100 mm) propagation of SPs at 1.3 µm wavelength. In designing low-loss loosely-bound SPs, our approach is to maximally deplete electric fields (both tangential and normal components to the interface) inside metal layers and to support SP fields primarily in the dielectric layers part of metamaterial. Such highly-localized field distributions are attained in a hyperbolic metamaterial structure, whose dielectric tensor is designed to be highly anisotropic, that is, low-loss dielectric (Re(ε) > 0; Im(ε) ~ 0) along the transverse direction (i.e., normal to the interface) and metallic (large negative Re(ε)) along the longitudinal direction, and by closely matching external dielectric to the normal component of metamaterial’s dielectric tensor. Suppressing the tangential component of electric field is shown to naturally result in weakly-confined SPs with penetration depths in the range of 3–10 µm. An effective-medium approximation method is used in designing the metamaterial waveguide structure, and we have tested its validity in applying to a minimally structured core-layer case (i.e., composed of one or two metal layers). Low-loss loosely-bound SPs may find alternative applications in far-field evanescent-wave sensing and optics.http://link.springer.com/article/10.1186/s40580-018-0148-zPlasmonicsSurface plasmonsMetamaterialsWaveguidesEffective medium method
collection DOAJ
language English
format Article
sources DOAJ
author Yu Shi
Hong Koo Kim
spellingShingle Yu Shi
Hong Koo Kim
Loosely-bound low-loss surface plasmons in hyperbolic metamaterial
Nano Convergence
Plasmonics
Surface plasmons
Metamaterials
Waveguides
Effective medium method
author_facet Yu Shi
Hong Koo Kim
author_sort Yu Shi
title Loosely-bound low-loss surface plasmons in hyperbolic metamaterial
title_short Loosely-bound low-loss surface plasmons in hyperbolic metamaterial
title_full Loosely-bound low-loss surface plasmons in hyperbolic metamaterial
title_fullStr Loosely-bound low-loss surface plasmons in hyperbolic metamaterial
title_full_unstemmed Loosely-bound low-loss surface plasmons in hyperbolic metamaterial
title_sort loosely-bound low-loss surface plasmons in hyperbolic metamaterial
publisher SpringerOpen
series Nano Convergence
issn 2196-5404
publishDate 2018-06-01
description Abstract Surface plasmons (SPs) carry electromagnetic energy in the form of collective oscillation of electrons at metal surface and commonly demonstrate two important features: strong lateral confinement and short propagation lengths. In this work we have investigated the trade-off relationship existing between propagation length and lateral confinement of SP fields in a hyperbolic metamaterial system, and explored loosening of lateral confinement as a means of increasing propagation length. By performing finite-difference time-domain analysis of Ag/SiO2 thin-film stacked structure we demonstrate long range (~ 100 mm) propagation of SPs at 1.3 µm wavelength. In designing low-loss loosely-bound SPs, our approach is to maximally deplete electric fields (both tangential and normal components to the interface) inside metal layers and to support SP fields primarily in the dielectric layers part of metamaterial. Such highly-localized field distributions are attained in a hyperbolic metamaterial structure, whose dielectric tensor is designed to be highly anisotropic, that is, low-loss dielectric (Re(ε) > 0; Im(ε) ~ 0) along the transverse direction (i.e., normal to the interface) and metallic (large negative Re(ε)) along the longitudinal direction, and by closely matching external dielectric to the normal component of metamaterial’s dielectric tensor. Suppressing the tangential component of electric field is shown to naturally result in weakly-confined SPs with penetration depths in the range of 3–10 µm. An effective-medium approximation method is used in designing the metamaterial waveguide structure, and we have tested its validity in applying to a minimally structured core-layer case (i.e., composed of one or two metal layers). Low-loss loosely-bound SPs may find alternative applications in far-field evanescent-wave sensing and optics.
topic Plasmonics
Surface plasmons
Metamaterials
Waveguides
Effective medium method
url http://link.springer.com/article/10.1186/s40580-018-0148-z
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AT hongkookim looselyboundlowlosssurfaceplasmonsinhyperbolicmetamaterial
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