Exciton-surface plasmon polariton interactions

Exciton-surface plasmon polariton (exciton-SPP) interactions in semiconductor-metal hybrid nanostructures connect two fundamentally different quantum mechanical excitations with strikingly different dispersion relations and optical response. The main focus in investigating these light–matter interac...

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Main Author: Parinda Vasa
Format: Article
Language:English
Published: Taylor & Francis Group 2020-01-01
Series:Advances in Physics: X
Subjects:
Online Access:http://dx.doi.org/10.1080/23746149.2020.1749884
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spelling doaj-e70437682cab4b0eb276bf95a1054dab2021-01-26T12:58:05ZengTaylor & Francis GroupAdvances in Physics: X2374-61492020-01-015110.1080/23746149.2020.17498841749884Exciton-surface plasmon polariton interactionsParinda Vasa0Indian Institute of Technology BombayExciton-surface plasmon polariton (exciton-SPP) interactions in semiconductor-metal hybrid nanostructures connect two fundamentally different quantum mechanical excitations with strikingly different dispersion relations and optical response. The main focus in investigating these light–matter interactions and nanostructures is to control the light via light on the nanometric length scale and ultrafast timescale, not achievable by present photonic or electronic technologies. Here, we provide a concise description of the relevant background physics and an overview of the manifestations, challenges and applications of weak and strong exciton-SPP interactions. It is now well established that semiconductor-metal hybrid nanostructures offer exciting opportunities to investigate intriguing quantum phenomena and many-body interactions in condensed matter systems even at room temperature. We also review how exciton-SPP interactions have been influencing various research directions. It is amply evident that a comprehensive understanding of these interactions may play an important role in several research areas. The recent progress made in this field is expected to give rise to novel applications of active plasmonic structures. Synopsis The ability of surface plasmon polaritons to localize light on the nanoscale dimensions results in a strong field enhancement, enabling efficient intensification of light–matter interaction with excitons in semiconductors. Two interaction regimes, weak and strong coupling are identified. Both these regimes exhibit intriguing quantum mechanical physical effects and are promising for diverse applications. Interestingly, unlike in pure atomic systems, in semiconductor-metal hybrid structures, these quantum-optical effects are observable even at room temperature.http://dx.doi.org/10.1080/23746149.2020.1749884excitonssurface plasmon polaritonslight-matter interactionweak and strong dipole couplingsemiconductor and metal nanostructures
collection DOAJ
language English
format Article
sources DOAJ
author Parinda Vasa
spellingShingle Parinda Vasa
Exciton-surface plasmon polariton interactions
Advances in Physics: X
excitons
surface plasmon polaritons
light-matter interaction
weak and strong dipole coupling
semiconductor and metal nanostructures
author_facet Parinda Vasa
author_sort Parinda Vasa
title Exciton-surface plasmon polariton interactions
title_short Exciton-surface plasmon polariton interactions
title_full Exciton-surface plasmon polariton interactions
title_fullStr Exciton-surface plasmon polariton interactions
title_full_unstemmed Exciton-surface plasmon polariton interactions
title_sort exciton-surface plasmon polariton interactions
publisher Taylor & Francis Group
series Advances in Physics: X
issn 2374-6149
publishDate 2020-01-01
description Exciton-surface plasmon polariton (exciton-SPP) interactions in semiconductor-metal hybrid nanostructures connect two fundamentally different quantum mechanical excitations with strikingly different dispersion relations and optical response. The main focus in investigating these light–matter interactions and nanostructures is to control the light via light on the nanometric length scale and ultrafast timescale, not achievable by present photonic or electronic technologies. Here, we provide a concise description of the relevant background physics and an overview of the manifestations, challenges and applications of weak and strong exciton-SPP interactions. It is now well established that semiconductor-metal hybrid nanostructures offer exciting opportunities to investigate intriguing quantum phenomena and many-body interactions in condensed matter systems even at room temperature. We also review how exciton-SPP interactions have been influencing various research directions. It is amply evident that a comprehensive understanding of these interactions may play an important role in several research areas. The recent progress made in this field is expected to give rise to novel applications of active plasmonic structures. Synopsis The ability of surface plasmon polaritons to localize light on the nanoscale dimensions results in a strong field enhancement, enabling efficient intensification of light–matter interaction with excitons in semiconductors. Two interaction regimes, weak and strong coupling are identified. Both these regimes exhibit intriguing quantum mechanical physical effects and are promising for diverse applications. Interestingly, unlike in pure atomic systems, in semiconductor-metal hybrid structures, these quantum-optical effects are observable even at room temperature.
topic excitons
surface plasmon polaritons
light-matter interaction
weak and strong dipole coupling
semiconductor and metal nanostructures
url http://dx.doi.org/10.1080/23746149.2020.1749884
work_keys_str_mv AT parindavasa excitonsurfaceplasmonpolaritoninteractions
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