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Metasurface-Epsilon Near Zero-based Electromagnetic Wave Absorber

La Spada, Luigi

Authors



Abstract

The purpose of this paper is to design a new electromagnetic wave absorber. It consists of a planar layered structure with an isotropic Epsilon-Near-Zero (ENZ) material and a gold metal inclusion, both placed over a perfect conductor (PEC) plate. Absorption is obtained by exploiting the combination of both ENZ and metasurface materials. The electromagnetic properties of the structure, in terms of reflection coefficient, are analytically described by the use of the transmission line theory. The proposed analytical closed-form formula provides us the possibility to correlate the electromagnetic absorption properties of the structure (magnitude, bandwidth and resonant frequency) with its geometrical characteristics. Such a formula represents a useful tool in order to design the absorber for specific required applications. The main issue is to absorb the incident electromagnetic wave in the broadest angle range possible. In particular, an absorption in a wide angle range (0°--80°), for different frequencies (multi-resonant), with a large frequency bandwidth (wide-band) for small structure thicknesses (d

Citation

La Spada, L. (2014, September). Metasurface-Epsilon Near Zero-based Electromagnetic Wave Absorber. Presented at 9th International Conference on Body Area Networks, London, Great Britain

Presentation Conference Type Conference Paper (published)
Conference Name 9th International Conference on Body Area Networks
Start Date Sep 29, 2014
End Date Oct 1, 2014
Acceptance Date Oct 1, 2014
Publication Date Nov 21, 2014
Deposit Date Dec 3, 2018
Book Title Proceedings of 9th International Conference on Body Area Networks
ISBN 9781631900471
DOI https://doi.org/10.4108/icst.bodynets.2014.257016
Keywords epsilon-near-zero materials, metasurfaces, electromagnetic wave absorbers, sensing telecommunications applications,
Public URL http://researchrepository.napier.ac.uk/Output/1410662