Propagation of three-dimensional bipolar ultrashort electromagnetic pulses in an inhomogeneous array of carbon nanotubes

Eduard G. Fedorov, Alexander V. Zhukov, Roland Bouffanais, Alexander P. Timashkov, Boris A. Malomed, Hervé Leblond, Dumitru Mihalache, Nikolay N. Rosanov, Mikhail B. Belonenko

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19 Scopus citations

Abstract

We study the propagation of three-dimensional (3D) bipolar ultrashort electromagnetic pulses in an inhomogeneous array of semiconductor carbon nanotubes. The heterogeneity is represented by a planar region with an increased concentration of conduction electrons. The evolution of the electromagnetic field and electron concentration in the sample are governed by the Maxwell's equations and continuity equation. In particular, nonuniformity of the electromagnetic field along the axis of the nanotubes is taken into account. We demonstrate that depending on values of the parameters of the electromagnetic pulse approaching the region with the higher electron concentration, the pulse is either reflected from the region or passes it. Specifically, our simulations demonstrate that after interacting with the higher-concentration area, the pulse can propagate steadily, without significant spreading. The possibility of such ultrashort electromagnetic pulses propagating in arrays of carbon nanotubes over distances significantly exceeding characteristic dimensions of the pulses makes it possible to consider them as 3D solitons.

Original languageEnglish
Article number043814
JournalPhysical Review A
Volume97
Issue number4
DOIs
StatePublished - 9 Apr 2018

Funding

FundersFunder number
Foundation for the Support of Leading Universities of the Russian Federation074-U01
Russian Foundation for Fundamental Research
Russian Foundation for Basic Research16-02-00762
International Design Centre

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