Temperature–Mediated Transition From Dyakonov Surface Waves to Surface–Plasmon–Polariton Waves
The propagation of electromagnetic surface waves, guided by the planar interface of a temperature-sensitive isotropic material and a temperature-insensitive uniaxial material, each characterized by a relative permittivity dyadic, was investigated theoretically for the case of the optic axis of the u...
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doaj-736fe4a5826942378d6f85f18a0522e42021-03-29T17:38:18ZengIEEEIEEE Photonics Journal1943-06552016-01-018511310.1109/JPHOT.2016.26117007586106Temperature–Mediated Transition From Dyakonov Surface Waves to Surface–Plasmon–Polariton WavesTom G. Mackay0Akhlesh Lakhtakia1School of Mathematics and Maxwell Institute for Mathematical Sciences, University of Edinburgh, Edinburgh, UKNanoMM—Nanoengineered Metamaterials Group, Department of Engineering Science and Mechanics, Pennsylvania State University, University Park, PA, USAThe propagation of electromagnetic surface waves, guided by the planar interface of a temperature-sensitive isotropic material and a temperature-insensitive uniaxial material, each characterized by a relative permittivity dyadic, was investigated theoretically for the case of the optic axis of the uniaxial partnering material lying wholly in the interface plane. On raising the temperature, the isotropic partnering material (namely, InSb) transforms from a weakly dissipative dielectric material to a metal in the terahertz frequency regime. Correspondingly, the surface waves change from being Dyakonov surface waves to being surface-plasmon-polariton (SPP) waves. Numerical studies revealed that modest changes in temperature could result in dramatic changes in the numbers of propagating surface waves, their angular existence domains, their propagation constants, and their decay constants. Whereas multiple Dyakonov surface waves may propagate in a specific direction if at least one of the two partnering materials is dissipative, at most one SPP wave can propagate in a specific direction.https://ieeexplore.ieee.org/document/7586106/Dissipative materialsDyakonov surface wavessurface–plasmon–polariton wavestemperature control. |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Tom G. Mackay Akhlesh Lakhtakia |
spellingShingle |
Tom G. Mackay Akhlesh Lakhtakia Temperature–Mediated Transition From Dyakonov Surface Waves to Surface–Plasmon–Polariton Waves IEEE Photonics Journal Dissipative materials Dyakonov surface waves surface–plasmon–polariton waves temperature control. |
author_facet |
Tom G. Mackay Akhlesh Lakhtakia |
author_sort |
Tom G. Mackay |
title |
Temperature–Mediated Transition From Dyakonov Surface Waves to Surface–Plasmon–Polariton Waves |
title_short |
Temperature–Mediated Transition From Dyakonov Surface Waves to Surface–Plasmon–Polariton Waves |
title_full |
Temperature–Mediated Transition From Dyakonov Surface Waves to Surface–Plasmon–Polariton Waves |
title_fullStr |
Temperature–Mediated Transition From Dyakonov Surface Waves to Surface–Plasmon–Polariton Waves |
title_full_unstemmed |
Temperature–Mediated Transition From Dyakonov Surface Waves to Surface–Plasmon–Polariton Waves |
title_sort |
temperature–mediated transition from dyakonov surface waves to surface–plasmon–polariton waves |
publisher |
IEEE |
series |
IEEE Photonics Journal |
issn |
1943-0655 |
publishDate |
2016-01-01 |
description |
The propagation of electromagnetic surface waves, guided by the planar interface of a temperature-sensitive isotropic material and a temperature-insensitive uniaxial material, each characterized by a relative permittivity dyadic, was investigated theoretically for the case of the optic axis of the uniaxial partnering material lying wholly in the interface plane. On raising the temperature, the isotropic partnering material (namely, InSb) transforms from a weakly dissipative dielectric material to a metal in the terahertz frequency regime. Correspondingly, the surface waves change from being Dyakonov surface waves to being surface-plasmon-polariton (SPP) waves. Numerical studies revealed that modest changes in temperature could result in dramatic changes in the numbers of propagating surface waves, their angular existence domains, their propagation constants, and their decay constants. Whereas multiple Dyakonov surface waves may propagate in a specific direction if at least one of the two partnering materials is dissipative, at most one SPP wave can propagate in a specific direction. |
topic |
Dissipative materials Dyakonov surface waves surface–plasmon–polariton waves temperature control. |
url |
https://ieeexplore.ieee.org/document/7586106/ |
work_keys_str_mv |
AT tomgmackay temperaturemediatedtransitionfromdyakonovsurfacewavestosurfaceplasmonpolaritonwaves AT akhleshlakhtakia temperaturemediatedtransitionfromdyakonovsurfacewavestosurfaceplasmonpolaritonwaves |
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1724197504466026496 |