Bipartite Dielectric Huygens' Metasurface for Anomalous Refraction
arXiv:2302.06424 · doi:10.1088/1402-4896/ad03c1
Abstract
Huygens' metasurfaces - fundamentally based on Schelkunoff's equivalence principle, Huygens' metasurfaces consist of a two-dimensional array of Huygens' sources formed by co-located orthogonal electric and magnetic dipoles. Such metasurfaces provide electric and magnetic responses to an incoming electromagnetic (EM) wave, leading to unidirectional scattering and 2 phase coverage. We herein report a near-reflectionless coarsely discretized dielectric Huygens' metasurface that performs anomalous refraction, offering a low-loss platform for wave manipulation at high frequencies as compared to their lossy metallic analogue. The coarse discretization dramatically simplifies the design, resulting in a metasurface that is highly efficient, cost-effective, and robust. In this paper, the proposed metasurface comprises two meta-atoms per period and is hence named the bipartite dielectric Huygens' metasurface. Through full-wave simulations at 28 GHz, we show that the proposed metasurface can reroute an incident EM wave from to with very high efficiency: 87% of the scattered power is anomalously transmitted to . Based on our observations, a coarsely discretized dielectric Huygens' metasurface platform can be efficacious to design meta-devices with multifaceted functionalities in different frequency regimes.
28 pages, 14 figures
References in corpus (7)
- High-efficiency light-wave control with all-dielectric optical Huygens' metasurfaces
- Meta-Gratings: Beyond the Limits of Graded Metasurfaces for Wavefront Control
- Theory, design, and experimental verification of a reflectionless bianisotropic Huygens' metasurface for wide-angle refraction
- Solving integral equations in free-space with inverse-designed ultrathin optical metagratings
- Lattice effect on electric and magnetic resonance overlap in periodic array
- Enhancing Goos-Hänchen shift based on magnetic dipole quasi-bound states in the continuum in all-dielectric metasurfaces
- Surface Impedance Modeling of All-Dielectric Metasurfaces