Nonlocal Generation of Fano Resonance with No Symmetry Breaking in THz Hybrid Metasurfaces
Boyuan Ge, Jiayu Fan, Ken Qin, Xiexuan Zhanga, Haitao Li, Fang Ling, Xiaoxiao Wu

TL;DR
This paper demonstrates a novel hybrid metasurface that nonlocally generates Fano resonance in the THz band without symmetry breaking, enabling tunable photonic device applications.
Contribution
It introduces a metal-dielectric hybrid metasurface that achieves nonlocal Fano resonance control without symmetry breaking, expanding tunability and fabrication scalability.
Findings
Fano resonance is controlled by dielectric layer thickness and constant.
The resonance involves guided mode coupling and band folding.
Fano peak corresponds to anapole excitation.
Abstract
Fano resonance, arising from the interference between a discrete resonance and a continuum of states, results in sharp and asymmetric line shapes and has significant applications in advanced photonic devices, particularly in sensing, filtering, and nonlinear optics. Nowadays, metasurfaces comprised of engineering microstructures play a crucial role in generation and manipulation of Fano resonance in photonics. However, current metasurfaces dominantly rely on local symmetry breaking of the microstructures to induce Fano resonances, which significant limits their tunability and scalable fabrication for practical applications. To address the challenge, a metal-dielectric hybrid metasurface is demonstrated to achieve nonlocal generation of Fano resonance with no symmetry breaking in the terahertz (THz) band. The Fano resonance, including its existence and peak frequency, is sensitively…
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Taxonomy
TopicsTerahertz technology and applications · Metamaterials and Metasurfaces Applications · Microwave Engineering and Waveguides
