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  4. Electromagnetic Scattering of Finite and Infinite 3D Lattices in Polarizable Backgrounds
 
conference paper

Electromagnetic Scattering of Finite and Infinite 3D Lattices in Polarizable Backgrounds

Gallinet, Benjamin  
•
Martin, Olivier J. F.  
2009
Theoretical And Computational Nanophotonics (Tacona-Photonics 2009)
2nd International Workshop on Theoretical and Computational Nanophotonics (TaCoNa-Photonics 2009)

A novel method is elaborated for the electromagnetic scattering from periodical arrays of scatterers embedded in a polarizable background. A dyadic periodic Green's function is introduced to calculate the scattered electric field in a lattice of dielectric or metallic objects. The method exhibits strong advantages: discretization and computation of the field are restricted to the volume of the scatterers in the unit cell, open and periodic boundary conditions for the electric field are included in the Green's tensor, and finally both near and far-fields physics are directly revealed, without any additional computational effort. Promising applications include the design of periodic structures such as frequency-selective surfaces, photonic crystals and metamaterials.

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Type
conference paper
DOI
10.1063/1.3253922
Web of Science ID

WOS:000280420600023

Author(s)
Gallinet, Benjamin  
Martin, Olivier J. F.  
Date Issued

2009

Publisher

Amer Inst Physics, 2 Huntington Quadrangle, Ste 1No1 D, Melville, Ny 11747-4501 Usa

Published in
Theoretical And Computational Nanophotonics (Tacona-Photonics 2009)
ISBN of the book

978-0-7354-0715-2

Series title/Series vol.

AIP Conference Proceedings; 1176

Start page

63

End page

65

Subjects

Electromagnetic Scattering

•

Dyadic Green Function

•

Periodic Structures

•

Discrete-Dipole Approximation

•

Greens-Functions

•

2-D

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
NAM  
Event nameEvent placeEvent date
2nd International Workshop on Theoretical and Computational Nanophotonics (TaCoNa-Photonics 2009)

Bad Honnef, GERMANY

Oct 28-30, 2009

Available on Infoscience
April 11, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/66109
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