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Silicon huygens' metasurfaces at oblique incidence

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Arslan, D.
Chong, Katie E.
Neshev, Dragomir
Pertsch, Thomas
Kivshar, Yuri
Staude, Isabelle

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Optical Society of American (OSA)

Abstract

Summary form only given. Huygens' metasurfaces that utilize tailored Mie-type resonances of dielectric particles form a versatile platform for the design of ultra-thin and highly-efficient wavefront-shaping devices [1-3]. Dielectric metasurfaces typically yield higher efficiencies than comparable plasmonic structures due to their significantly lower absorption losses. Furthermore, it was shown that the superposition of the radiation patterns of properly balanced electric and magnetic dipoles [4], or multipoles [5], can lead to the suppression of backscattering and thus to a transmittance approaching one over a wide range of wavelengths [6]. At the same time, phase shifts of the transmitted beam in the entire range of 2π become accessible. However, most devices are operated and discussed under the premise of normal incidence and it remained an open question how the performance of a device will change at oblique incidence. In this work we experimentally and numerically study the transmittance spectra of two periodic arrays of nano-cylinders in dependence on the incidence angle of a TM (Fig. 1) and TE (not shown) polarized plane wave

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Proceedings of the European Quantum Electronics Conference, EQEC 2017

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2037-12-31
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