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Please use this identifier to cite or link to this item: https://elib.bsu.by/handle/123456789/258333
Title: Integral equation technique for scatterers with mesoscopic insertions: Application to a carbon nanotube
Authors: Shuba, M. V.
Melnikov, A. V.
Kuzhir, P. P.
Maksimenko, S. A.
Slepyan, G. Y.
Boag, A.
Mosca Conte, A.
Pulci, O.
Bellucci, S.
Keywords: ЭБ БГУ::ЕСТЕСТВЕННЫЕ И ТОЧНЫЕ НАУКИ::Физика
Issue Date: 2017
Publisher: American Physical Society
Citation: Phys Rev B 2017;96(20).
Abstract: We present the electromagnetic scattering theory for a finite-length nanowire with an embedded mesoscopic object. The theory is based on a synthesis of the integral equation technique of classical electrodynamics and the quantum transport formalism. We formulate Hallén-type integral equations, where the canonical integral operators from wire antenna theory are combined with special terms responsible for the mesoscopic structure. The theory is applied to calculate the polarizability of a finite-length single-walled carbon nanotube (CNT) with a short low-conductive section (LCS) in the microwave and subterahertz ranges. The LCS is modeled as a multichannel two-electrode mesoscopic system. The effective resistive sheet impedance boundary conditions for the scattered field are applied on the CNT surface. It is shown that the imaginary part of the polarizability spectrum has three peaks. Two of them are in the terahertz range, while the third is in the gigahertz range. The polarizability spectrum of the CNT with many LCSs has only one gigahertz peak, which shifts to low frequencies as the number of LCSs increases. The physical nature of these peaks is explained, and potential applications of nanoantennas are proposed
URI: https://elib.bsu.by/handle/123456789/258333
DOI: 10.1103/PhysRevB.96.205414
Scopus: 85039728207
Sponsorship: This research was partially supported by the Belarusian Republican Foundation for Fundamental Research (BRFFR) under project F15CO-016, the EU FP7 under projects FP7-612285 CANTOR, PIRSES-GA-2012-318617, and by the H2020-MSCA-RISE-2014 project 644076 CoExAN. CPU time was granted by the CINECA supercomputer center (ISCRA C HP10CQXAWA).
Appears in Collections:Статьи НИУ «Институт ядерных проблем»

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