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Surface Bloch waves in metamaterial and metal-dielectric superlattices

Appl. Phys. Lett. 95, 041902 (2009); doi:10.1063/1.3186041

Published 28 July 2009

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Slobodan M. Vukovic,1,2 Ilya V. Shadrivov,1 and Yuri S. Kivshar1
1Nonlinear Physics Center, Research School of Physics and Engineering, Australian National University, Canberra, Australian Capital Territory 0200, Australia
2Institute of Physics, University of Belgrade, Zemun 11080, Serbia

We study the properties of electromagnetic Bloch waves in semi-infinite periodic structures created by alternating metamaterial and dielectric layers. We derive and analyze the dispersion relations in the long-wavelength limit for both TE- and TM-polarized surface Bloch modes for magnetic metamaterials with negative refraction and metal-dielectric plasmonic superlattices. We reveal that in the subwavelength regime, the bulk modes are characterized by three different refractive indices (“trirefringence”), while the surface modes can propagate parallel to the Bloch wavevector and along the interface between superlattice and semi-infinite dielectric. ©2009 American Institute of Physics
History: Received 10 March 2009; accepted 26 June 2009; published 28 July 2009
Permalink: http://link.aip.org/link/?APPLAB/95/041902/1
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KEYWORDS and PACS

Keywords
PACS
  • 42.70.-a
    Optical materials
  • 73.20.Mf
    Collective excitations (surface/interface states)
  • 73.21.Cd
    Superlattices (electron states/collective excitations)
  • 78.67.Pt
    Optical properties of multilayers and superlattices
  • 78.20.Ci
    Optical constants
  • 73.40.Ns
    Electrical properties of metal-nonmetal contacts
  • YEAR: 2009

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PUBLICATION DATA

ISSN:
0003-6951 (print)   1077-3118 (online)
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