极化子
物理
声子
束缚态
色散(光学)
超材料
凝聚态物理
光学
量子力学
作者
林楠 Lin Nan,Andrea Mancini,Thomas Weber,Geok Leng Seah,Emiliano Cortés,Andreas Tittl,Stefan A. Maier
标识
DOI:10.1038/s41566-025-01670-9
摘要
Abstract Quasi-bound states in the continuum (qBICs) achieved through symmetry breaking in photonic metasurfaces are a powerful approach for engineering resonances with high quality factors and tunability. However, miniaturization of these devices is limited as the in-plane unit-cell size typically scales linearly with the resonant wavelength. By contrast, polariton resonators can be deeply subwavelength, offering a promising solution for achieving compact devices. Here we demonstrate that low-loss mid-infrared surface phonon polaritons enable metasurfaces supporting qBICs with unit-cell volumes up to 10 5 times smaller than the free-space volume $$\lambda_{0}^3$$ λ 0 3 . Using 100-nm-thick free-standing silicon carbide membranes, we achieve highly confined qBIC states with exceptional robustness against incident-angle variations, a feature unique among qBIC systems. This absence of angular dispersion enables mid-infrared vibrational sensing of thin, weakly absorbing molecular layers using a reflective objective, a method that typically degrades resonance quality in standard qBIC metasurfaces. We introduce surface-phonon-polariton-based qBICs as a platform for ultraconfined nanophotonic systems, advancing the miniaturization of mid-infrared sensors and devices for thermal radiation engineering.
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