论文标题

镜耦合的等离子体结合状态在连续体中以可调的完美吸收

Mirror-coupled plasmonic bound states in the continuum for tunable perfect absorption

论文作者

Wang, Juan, Weber, Thomas, Aigner, Andreas, Maier, Stefan A., Tittl, Andreas

论文摘要

调整临界光 - 物质耦合是纳米光子学的基本挑战,从而影响了从较高的谐波产生和能量转化到表面增强光谱的各种领域。等离子体完美的吸收剂(PAS),在相邻金属膜中与镜像共鸣的天线夫妇在那里对通过调整天线膜距离来获得不同耦合方案的镜像。但是,对于片上用途,理想的PA间隙尺寸只能与一个波长相匹配,并且广泛的多光谱方法仍然具有挑战性。在这里,我们通过将镜像偶联的共振与连续体(BICS)中等离子体结合状态的独特损耗工程能力相结合,引入了等离激元PA的新范式。我们的BIC驱动的PA平台利用了组成元原子的不对称性,作为达到关键耦合(CC)条件的额外自由度,以统一吸光度和高质量因素的共鸣,在中国含量中接近100。这样的平台具有柔性调音旋钮,包括不对称参数,介电间隙和几何缩放系数,以精确控制耦合条件,共振频率以及磁场和电场的选择性增强,同时维持CC。我们仅使用单个间隔层的厚度,在广泛的中红外频率(950〜2000 1/cm)上展示了具有最佳吸收的像素化PA元面,并在定制的耦合方案中将其应用于多光谱表面增强的分子光谱。我们的概念大大扩展了传统的差距调节的PA的功能和灵活性,为小型感应平台开辟了新的观点,可以朝着芯片和原位检测。

Tailoring critical light-matter coupling is a fundamental challenge of nanophotonics, impacting diverse fields from higher harmonic generation and energy conversion to surface-enhanced spectroscopy. Plasmonic perfect absorbers (PAs), where resonant antennas couple to their mirror images in adjacent metal films, have been instrumental for obtaining different coupling regimes by tuning the antenna-film distance. However, for on-chip uses, the ideal PA gap size can only match one wavelength, and wide range multispectral approaches remain challenging. Here, we introduce a new paradigm for plasmonic PAs by combining mirror-coupled resonances with the unique loss engineering capabilities of plasmonic bound states in the continuum (BICs). Our BIC-driven PA platform leverages the asymmetry of the constituent meta-atoms as an additional degree of freedom for reaching the critical coupling (CC) condition, delivering resonances with unity absorbance and high quality factors approaching 100 in the mid-infrared. Such a platform holds flexible tuning knobs including asymmetry parameter, dielectric gap, and geometrical scaling factor to precisely control the coupling condition, resonance frequency, and selective enhancement of magnetic and electric fields while maintaining CC. We demonstrate a pixelated PA metasurface with optimal absorption over a broad range of mid-infrared frequencies (950 ~ 2000 1/cm) using only a single spacer layer thickness and apply it for multispectral surface-enhanced molecular spectroscopy in tailored coupling regimes. Our concept greatly expands the capabilities and flexibility of traditional gap-tuned PAs, opening new perspectives for miniaturized sensing platforms towards on-chip and in-situ detection.

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