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All-dielectric metasurfaces with trapped modes: group-theoretical description

Optics 2019-04-09 v1 Applied Physics

Abstract

An all-dielectric metasurface featuring resonant conditions of the trapped mode excitation is considered. It is composed of a lattice of subwavelength particles which are made of a high-refractive-index dielectric material structured in the form of disks. Each particle within the lattice behaves as an individual dielectric resonator supporting a set of electric and magnetic (Mie-type) modes. In order to access a trapped mode (which is the TE01 mode of the resonator), a round eccentric penetrating hole is made in the disk. In the lattice, the disks are arranged into clusters (unit super-cells) consisting of four particles. Different orientations of holes in the super-cell correspond to different symmetry groups producing different electromagnetic response of the overall metasurface when it is irradiated by the linearly polarized waves with normal incidence. We perform a systematic analysis of the electromagnetic response of the metasurface as well as conditions of the trapped mode excitation involving the group-theoretical description, representation theory and microwave circuit theory. Both polarization-sensitive and polarization-insensitive arrangements of particles and conditions for dynamic ferromagnetic and antiferromagnetic order are derived. Finally, we observe the trapped mode manifestation in the microwave experiment.

Keywords

Cite

@article{arxiv.1812.10817,
  title  = {All-dielectric metasurfaces with trapped modes: group-theoretical description},
  author = {Pengchao Yu and Anton S. Kupriianov and Victor Dmitriev and Vladimir R. Tuz},
  journal= {arXiv preprint arXiv:1812.10817},
  year   = {2019}
}

Comments

12 pages, 11 figures

R2 v1 2026-06-23T06:57:31.906Z