Centroid-Symmetry-Controlled High-Q Terahertz Quasi-BIC Resonances in an All-Dielectric Tetramer Metasurface

Terahertz (THz) metasurfaces provide compact platforms for narrowband spectral readout and sensing, but useful operation requires high modal Q, far-field accessibility, and angular robustness. Here we numerically investigate a Si tetramer metasurface on a SiO2 substrate. In the lossless model, balanced radiation centroids support a BIC-like eigenmode at 1.251582 THz with a computed Q of 4.08 × 109. A vertical aperture displacement dy breaks the centroid balance and converts the dark state into a radiatively coupled QBIC. The Q factor decreases continuously with |dy|, whereas the eigenfrequency branch remains smooth; the near-linear relation between 1/Q and dy2 is consistent with perturbation-induced radiative leakage. Multipolar spectra resolve an electric-dipole-like resonant contribution, and momentum-space maps place the high-Q region on a continuous eigenfrequency surface. At dy = 0.3 μm, loading the superstrate from n = 1.33 to 1.43 keeps the mode on the same branch and increases the radiation-limited Q from 1.27 × 106 to 1.46 × 106. Together, these results connect centroid-controlled radiative leakage to a far-field-accessible high-Q THz response and define a radiation-limited operating window for narrowband sensing and spectral filtering.

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Publication Details

Journal
Photonics
Published
2026-09-24
DOI
https://doi.org/10.3390/photonics13100906
Primary Topic
Metamaterials and Metasurfaces Applications
Type
article
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article

Centroid-Symmetry-Controlled High-Q Terahertz Quasi-BIC Resonances in an All-Dielectric Tetramer Metasurface

Shangjun Lin, Yufan Zhang, Xiaoqing Luo
Photonics
Metamaterials and Metasurfaces Applications
article

Centroid-Symmetry-Controlled High-Q Terahertz Quasi-BIC Resonances in an All-Dielectric Tetramer Metasurface

Shangjun Lin, Yufan Zhang, Xiaoqing Luo
article en

Abstract

Terahertz (THz) metasurfaces provide compact platforms for narrowband spectral readout and sensing, but useful operation requires high modal Q, far-field accessibility, and angular robustness. Here we numerically investigate a Si tetramer metasurface on a SiO2 substrate. In the lossless model, balanced radiation centroids support a BIC-like eigenmode at 1.251582 THz with a computed Q of 4.08 × 109. A vertical aperture displacement dy breaks the centroid balance and converts the dark state into a radiatively coupled QBIC. The Q factor decreases continuously with |dy|, whereas the eigenfrequency branch remains smooth; the near-linear relation between 1/Q and dy2 is consistent with perturbation-induced radiative leakage. Multipolar spectra resolve an electric-dipole-like resonant contribution, and momentum-space maps place the high-Q region on a continuous eigenfrequency surface. At dy = 0.3 μm, loading the superstrate from n = 1.33 to 1.43 keeps the mode on the same branch and increases the radiation-limited Q from 1.27 × 106 to 1.46 × 106. Together, these results connect centroid-controlled radiative leakage to a far-field-accessible high-Q THz response and define a radiation-limited operating window for narrowband sensing and spectral filtering.

PhotonicsVol. 13(10)
Shenzhen Institutes of Advanced Technology (CN), Guangxi Key Laboratory of Automatic Detecting Technology and Instruments (CN), Guilin University of Electronic Technology (CN)
Sustainable cities and communities
Openalex Percentile: Top 30%
Metamaterials and Metasurfaces Applications
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