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arXiv · 1709.04990

Perfect Anomalous Reflection with a Binary Huygens' Metasurface

Abstract

In this paper we propose a new metasurface that is able to reflect a known incoming electromagnetic wave into an arbitrary direction, with perfect power efficiency. This seemingly simple task, which we hereafter call perfect anomalous reflection, is actually highly non-trivial due to the differing wave impedances and complex interference between the incident and reflected waves. Heretofore, proposed metasurfaces which achieve perfect anomalous reflection require complicated, deeply subwavelength and/or multilayer element structures which allow them to couple to and from leaky and/or evanescent waves. In contrast, we demonstrate that using a Binary Huygens' Metasurface (BHM) --- a passive and lossless metasurface with only two cells per period --- perfect anomalous reflection can be achieved over a wide angular and frequency range. Through simulations and experiments at 24 GHz, we show that a properly designed BHM can anomalously reflect an incident electromagnetic wave from $θ_i = 50^\circ$ to $θ_r = -22.5^\circ$, with perfect power efficiency to within experimental precision.

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Alex M. H. Wong, George V. Eleftheriades. 2018-01-15. Perfect Anomalous Reflection with a Binary Huygens' Metasurface. https://doi.org/10.1103/physrevx.8.011036

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