Pairing Toroidal and Magnetic Dipole Resonances in Elliptic Dielectric Rod Metasurfaces for Reconfigurable Wavefront Manipulation in Reflection.

Autor: Tsilipakos O; Institute of Electronic Structure and Laser FORTH GR-71110 Heraklion Crete Greece., Tasolamprou AC; Institute of Electronic Structure and Laser FORTH GR-71110 Heraklion Crete Greece., Koschny T; Ames Laboratory-U.S. DOE and Department of Physics and Astronomy Iowa State University Ames IA 50011 USA., Kafesaki M; Institute of Electronic Structure and Laser FORTH GR-71110 Heraklion Crete Greece.; Department of Materials Science and Technology University of Crete GR-71003 Heraklion Crete Greece., Economou EN; Institute of Electronic Structure and Laser FORTH GR-71110 Heraklion Crete Greece.; Department of Physics University of Crete GR-71003 Heraklion Crete Greece., Soukoulis CM; Institute of Electronic Structure and Laser FORTH GR-71110 Heraklion Crete Greece.; Ames Laboratory-U.S. DOE and Department of Physics and Astronomy Iowa State University Ames IA 50011 USA.
Jazyk: angličtina
Zdroj: Advanced optical materials [Adv Opt Mater] 2018 Nov 19; Vol. 6 (22), pp. 1800633. Date of Electronic Publication: 2018 Sep 17.
DOI: 10.1002/adom.201800633
Abstrakt: A novel approach for reconfigurable wavefront manipulation with gradient metasurfaces based on permittivity-modulated elliptic dielectric rods is proposed. It is shown that the required 2π phase span in the local electromagnetic response of the metasurface can be achieved by pairing the lowest magnetic dipole Mie resonance with a toroidal dipole Mie resonance, instead of using the lowest two Mie resonances corresponding to fundamental electric and magnetic dipole resonances as customarily exercised. This approach allows for the precise matching of both the resonance frequencies and quality factors. Moreover, the accurate matching is preserved if the rod permittivity is varied, allowing for constructing reconfigurable gradient metasurfaces by locally modulating the permittivity in each rod. Highly efficient tunable beam steering and beam focusing with ultrashort focal lengths are numerically demonstrated, highlighting the advantage of the low-profile metasurfaces over bulky conventional lenses. Notably, despite using a matched pair of Mie resonances, the presence of an electric polarizability background allows to perform the wavefront shaping operations in reflection, rather than transmission. This has the advantage that any control circuitry necessary in an experimental realization can be accommodated behind the metasurface without affecting the electromagnetic response.
Databáze: MEDLINE