All-Plasmonic Switching Effect in the Graphene Nanostructures Containing Quantum Emitters.

FDTD method core–shell nanowires graphene nanoplasmonics graphene waveguide nonlinear plasmon–exciton interactions surface plasmon–polaritons

Journal

Nanomaterials (Basel, Switzerland)
ISSN: 2079-4991
Titre abrégé: Nanomaterials (Basel)
Pays: Switzerland
ID NLM: 101610216

Informations de publication

Date de publication:
09 Jan 2020
Historique:
received: 04 12 2019
revised: 31 12 2019
accepted: 03 01 2020
entrez: 16 1 2020
pubmed: 16 1 2020
medline: 16 1 2020
Statut: epublish

Résumé

Nonlinear plasmonic effects in perspective 2D materials containing low-dimensional quantum emitters can be a basis of a novel technological platform for the fabrication of fast all-plasmonic triggers, transistors, and sensors. This article considers the conditions for achieving a strong coupling between the surface plasmon-polariton (SPP) and quantum emitter taking into account the modification of local density of optical states in graphene waveguide. In the condition of strong coupling, nonlinear interaction between two SPP modes propagating along the graphene waveguide integrated with a stub nanoresonator loaded with core-shell semiconductor nanowires (NWs) was investigated. Using the 2D full-wave electromagnetic simulation, we studied the different transmittance regimes of the stub with NW for both the strong pump SPP and weak signal SPP tuned to interband and intraband transition in NW, respectively. We solved the practical problem of parameters optimization of graphene waveguide and semiconductor nanostructures and found such a regime of NW-SPP interaction that corresponds to the destructive interference with the signal SPP transmittance through the stub less than 7 % in the case for pump SPP to be turned off. In contrast, the turning on the pump SPP leads to a transition to constructive interference in the stub and enhancement of signal SPP transmittance to 93 % . In our model, the effect of plasmonic switching occurs with a rate of 50 GHz at wavelength 8 µ m for signal SPP localized inside 20 nm graphene stub loaded with core-shell InAs/ZnS NW.

Identifiants

pubmed: 31936492
pii: nano10010122
doi: 10.3390/nano10010122
pmc: PMC7022262
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Russian Science Foundation
ID : 18-19-00684

Références

Nano Lett. 2009 Dec;9(12):4474-8
pubmed: 19883119
Nature. 2018 May;557(7706):530-533
pubmed: 29795255
Nanomaterials (Basel). 2018 Jul 28;8(8):
pubmed: 30060569
Opt Lett. 1979 Aug 1;4(8):236
pubmed: 19687861
Nanoscale. 2014 Sep 7;6(17):10100-5
pubmed: 25034505
Nanomaterials (Basel). 2016 Nov 10;6(11):
pubmed: 28335335
Nano Lett. 2016 Jan 13;16(1):362-6
pubmed: 26654281
Nanomaterials (Basel). 2018 Aug 26;8(9):
pubmed: 30149685
ACS Appl Mater Interfaces. 2016 Nov 2;8(43):29637-29641
pubmed: 27735182
Nano Lett. 2011 Mar 9;11(3):1049-54
pubmed: 21280639
Nanomaterials (Basel). 2018 Dec 15;8(12):
pubmed: 30558333
Nano Lett. 2011 Aug 10;11(8):3370-7
pubmed: 21766812
Phys Rev Lett. 2007 Jul 6;99(1):016803
pubmed: 17678180
J Opt Soc Am A Opt Image Sci Vis. 2019 May 1;36(5):775-781
pubmed: 31045004

Auteurs

Mikhail Yu Gubin (MY)

Department of Physics and Applied Mathematics, Vladimir State University named after Alexander and Nikolay Stoletovs (VlSU), Vladimir 600000, Russia.

Andrey Yu Leksin (AY)

Department of Physics and Applied Mathematics, Vladimir State University named after Alexander and Nikolay Stoletovs (VlSU), Vladimir 600000, Russia.

Alexander V Shesterikov (AV)

Department of Physics and Applied Mathematics, Vladimir State University named after Alexander and Nikolay Stoletovs (VlSU), Vladimir 600000, Russia.

Alexei V Prokhorov (AV)

Department of Physics and Applied Mathematics, Vladimir State University named after Alexander and Nikolay Stoletovs (VlSU), Vladimir 600000, Russia.

Valentyn S Volkov (VS)

Center for Photonics and 2D Materials, Moscow Institute of Physics and Technology (MIPT), Dolgoprudny 141700, Russia.

Classifications MeSH