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Engineering coupling in electromagnetic topological models via staggered bianisotropy
Author(s) -
Maxim A. Gorlach,
Dmitry V. Zhirihin,
Daniel A. Bobylev,
Alexey Gorlach,
S. V. Li,
Denis Y. Sokolov,
Alexey Slobozhanyuk,
Alexander B. Khanikaev
Publication year - 2020
Publication title -
journal of physics. conference series
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.21
H-Index - 85
eISSN - 1742-6596
pISSN - 1742-6588
DOI - 10.1088/1742-6596/1461/1/012053
Subject(s) - photonics , physics , topology (electrical circuits) , metamaterial , scattering , coupling (piping) , hamiltonian (control theory) , polarization (electrochemistry) , photonic metamaterial , photonic crystal , invariant (physics) , electric field , quantum mechanics , materials science , mathematics , mathematical optimization , chemistry , metallurgy , combinatorics
Magneto-electric coupling known also as bianisotropy plays a fundamental role in time-reversal-invariant photonic topological metamaterials being responsible for opening of a topological bandgap. To further uncover the fundamental link between bianisotropy and photonic topological states, we investigate scattering of light from the individual bianisotropic disk and reveal polarization dependence of scattering which provides a photonic analogue of spin Hall effect originating from the coupling between electric and magnetic responses of the disk. Based on the field patterns from the individual meta-atom, we further design a linear array of such bianisotropic disks. Employing coupled-dipole model, we demonstrate that local modification of the disk bianisotropy translates into the modification of coupling constants in the effective photonic Hamiltonian thus opening an avenue to engineer electromagnetic topological states via the staggered bianisotropy pattern. To confirm our findings, we realize a representative example of such one-dimensional array experimentally and detect the interface states at the domain wall.

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