open access publication

Article, 2017

Riemann–Hilbert technique scattering analysis of metamaterial-based asymmetric 2D open resonators

EPJ Applied Metamaterials, ISSN 2272-2394, Volume 4, Page 10, 10.1051/epjam/2017007

Contributors

Kamiński, Piotr M (Corresponding author) [1] Ziolkowski, Richard W 0000-0003-4256-6902 [2] [3] Arslanagić, Samel 0000-0001-8150-7732 [1]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] University of Arizona
  4. [NORA names: United States; America, North; OECD];
  5. [3] University of Technology Sydney
  6. [NORA names: Australia; Oceania; OECD]

Abstract

The scattering properties of metamaterial-based asymmetric two-dimensional open resonators excited by an electric line source are investigated analytically. The resonators are, in general, composed of two infinite and concentric cylindrical layers covered with an infinitely thin, perfect conducting shell that has an infinite axial aperture. The line source is oriented parallel to the cylinder axis. An exact analytical solution of this problem is derived. It is based on the dual-series approach and its transformation to the equivalent Riemann–Hilbert problem. Asymmetric metamaterial-based configurations are found to lead simultaneously to large enhancements of the radiated power and to highly steerable Huygens-like directivity patterns; properties not attainable with the corresponding structurally symmetric resonators. The presented open resonator designs are thus interesting candidates for many scientific and engineering applications where enhanced directional near- and far-field responses, tailored with beam shaping and steering capabilities, are highly desired.

Keywords

Near, Riemann–Hilbert problem, analytical solution, aperture, applications, approach, axial aperture, axis, beam, beam shaping, capability, concentric cylindrical layers, configuration, cylinder, cylinder axis, cylindrical layers, design, directivity pattern, electric line source, engineering, engineering applications, enhancement, far-field response, layer, line source, open resonator, patterns, power, problem, properties, resonance, resonator design, response, scattering, scattering properties, shape, solution, source, steering, steering capability, structure, symmetric resonator, transformation

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