Integral Equation Analysis of Terahertz Backscattering from Circular Dielectric Rod with Partial Graphene Cover

We study how the backward scattering crosssection (BSCS) of a microsize dielectric rod illuminated by an Hpolarized plane wave can be efficiently manipulated using a partial graphene cover and associated plasmon resonances. Our treatment is based on the hyper-singular boundary integral equation, dis...

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Vydáno v:IEEE journal of quantum electronics Ročník 56; číslo 6; s. 1
Hlavní autoři: Dukhopelnykov, Sergii V., Sauleau, Ronan, Nosich, Alexander I.
Médium: Journal Article
Jazyk:angličtina
Vydáno: New York IEEE 01.12.2020
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
Institute of Electrical and Electronics Engineers
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ISSN:0018-9197, 1558-1713
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Abstract We study how the backward scattering crosssection (BSCS) of a microsize dielectric rod illuminated by an Hpolarized plane wave can be efficiently manipulated using a partial graphene cover and associated plasmon resonances. Our treatment is based on the hyper-singular boundary integral equation, discretized with a Nystrom-type algorithm, which has a mathematically grounded convergence. We compute the BSCS and the extinction cross-section (ECS) in the sub-THz and THz ranges with controlled accuracy and demonstrate that BSCS can be both enhanced and reduced due to the graphene strip.
AbstractList We study how the backward scattering cross-section (BSCS) of a microsize dielectric rod illuminated by an H-polarized plane wave can be efficiently manipulated using a partial graphene cover and associated plasmon resonances. Our treatment is based on the hyper-singular boundary integral equation, discretized with a Nystrom-type algorithm, which has a mathematically grounded convergence. We compute the BSCS and the extinction cross-section (ECS) in the sub-THz and THz ranges with controlled accuracy and demonstrate that BSCS can be both enhanced and reduced due to the graphene strip.
We study how the backward scattering crosssection (BSCS) of a microsize dielectric rod illuminated by an Hpolarized plane wave can be efficiently manipulated using a partial graphene cover and associated plasmon resonances. Our treatment is based on the hyper-singular boundary integral equation, discretized with a Nystrom-type algorithm, which has a mathematically grounded convergence. We compute the BSCS and the extinction cross-section (ECS) in the sub-THz and THz ranges with controlled accuracy and demonstrate that BSCS can be both enhanced and reduced due to the graphene strip.
Author Nosich, Alexander I.
Dukhopelnykov, Sergii V.
Sauleau, Ronan
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hyper-singular integral equation
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Snippet We study how the backward scattering crosssection (BSCS) of a microsize dielectric rod illuminated by an Hpolarized plane wave can be efficiently manipulated...
We study how the backward scattering cross-section (BSCS) of a microsize dielectric rod illuminated by an H-polarized plane wave can be efficiently manipulated...
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SubjectTerms Algorithms
Backscattering
backward scattering
Boundary integral method
Dielectrics
Engineering Sciences
Graphene
graphene cover
hypersingular integral equation
Integral equations
Interpolation
Nystrom-type discretization
Plane waves
Plasmons
Scattering
Scattering cross sections
Strips
Title Integral Equation Analysis of Terahertz Backscattering from Circular Dielectric Rod with Partial Graphene Cover
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