Huygens metasurface supporting quasi-bound states in the continuum for terahertz gas sensing

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Main Authors: Álvarez-Sanchis, Jose Antonio, Vidal, Borja, Díaz-Rubio, Ana
Format: Preprint
Published: 2024
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author Álvarez-Sanchis, Jose Antonio
Vidal, Borja
Díaz-Rubio, Ana
author_facet Álvarez-Sanchis, Jose Antonio
Vidal, Borja
Díaz-Rubio, Ana
contents We investigate a terahertz (THz) gas sensing platform based on all-dielectric metasurfaces that support quasi-bound states in the continuum (quasi-BIC) with both electric and magnetic dipole resonances. The structure is designed to achieve the first Kerker condition, minimizing backscattering and maximizing light-matter interaction, which significantly enhances the sensitivity of the sensor. By optimizing structural parameters, this metasurface selectively resonates at characteristic absorption frequencies of target gases, facilitating detection even at low concentrations. We validate the approach using two gases with strong but distinct THz absorption profiles: hydrogen cyanide (HCN) and sulfur dioxide (SO2). Furthermore, the free-standing design maximizes gas interaction on both sides of the metasurface, eliminating substrate-induced losses and enabling a reduced physical footprint. Our findings indicate that this metasurface outperforms standard THz sensing approaches in terms of compactness and sensitivity per path length unit, obtaining the same detection threshold as sensing in free space with a path length between 2 and 3 orders of magnitude shorter, underscoring its potential for industrial applications where the available space for sensing can be limited.
format Preprint
id arxiv_https___arxiv_org_abs_2412_12838
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Huygens metasurface supporting quasi-bound states in the continuum for terahertz gas sensing
Álvarez-Sanchis, Jose Antonio
Vidal, Borja
Díaz-Rubio, Ana
Optics
Applied Physics
We investigate a terahertz (THz) gas sensing platform based on all-dielectric metasurfaces that support quasi-bound states in the continuum (quasi-BIC) with both electric and magnetic dipole resonances. The structure is designed to achieve the first Kerker condition, minimizing backscattering and maximizing light-matter interaction, which significantly enhances the sensitivity of the sensor. By optimizing structural parameters, this metasurface selectively resonates at characteristic absorption frequencies of target gases, facilitating detection even at low concentrations. We validate the approach using two gases with strong but distinct THz absorption profiles: hydrogen cyanide (HCN) and sulfur dioxide (SO2). Furthermore, the free-standing design maximizes gas interaction on both sides of the metasurface, eliminating substrate-induced losses and enabling a reduced physical footprint. Our findings indicate that this metasurface outperforms standard THz sensing approaches in terms of compactness and sensitivity per path length unit, obtaining the same detection threshold as sensing in free space with a path length between 2 and 3 orders of magnitude shorter, underscoring its potential for industrial applications where the available space for sensing can be limited.
title Huygens metasurface supporting quasi-bound states in the continuum for terahertz gas sensing
topic Optics
Applied Physics
url https://arxiv.org/abs/2412.12838