Surface-polariton-like waves guided by thin, lossy metal films

J. J. Burke, G. I. Stegeman, and T. Tamir
Phys. Rev. B 33, 5186 – Published 15 April 1986
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Abstract

The dispersion relations are solved for waves guided by a thin, lossy metal film surrounded by media of dielectric constant ε1 and ε3. For symmetric structures (ε1=ε3), there are the usual two Fano modes whose velocity and attenuation vary with film thickness. For very thin films, one of these modes can attain multicentimeter propagation distances when λ>1 μm. In addition, there are two leaky waves which correspond to waves localized at the ε1 (or ε3) dielectric-metal interface whose fields decay exponentially across the metal film and radiate an angular spectrum of plane waves into ε3 (or ε1, respectively). Both radiative waves can be interpreted as spatial transients, which could have physical significance near a transverse plane. When ε1ε3, there are still four distinct solutions for a given film thickness, two radiative and two nonradiative. For lossy films, there are always two nonradiative solutions for thick enough films. As the thickness goes to infinity, the four solutions reduce to two waves, each radiative and nonradiative pair becoming degenerate. The physical interpretation of these solutions and their dependence on dielectric constant and wavelength are discussed.

  • Received 5 August 1985

DOI:https://doi.org/10.1103/PhysRevB.33.5186

©1986 American Physical Society

Authors & Affiliations

J. J. Burke and G. I. Stegeman

  • Optical Sciences Center, University of Arizona, Tucson, Arizona 85721

T. Tamir

  • Department of Electrical Engineering and Computer Science, Polytechnic Institute of New York, 333 Jay Street, Brooklyn, New York 11201

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Vol. 33, Iss. 8 — 15 April 1986

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