论文标题
全dielectric短波红外跨表面的极化FANO共鸣
Polarization-Tuned Fano Resonances in All-Dielectric Short-Wave Infrared Metasurface
论文作者
论文摘要
短波红外(SWIR)是基于元表面的纳米光子学中电磁光谱的一部分,尽管它在感应和成像应用中具有战略意义。这主要归因于缺乏在此范围内量身定制光 - 物质相互作用的材料系统。本文中,我们解决了这一限制,并展示了全丝硅的综合跨表面,从而在SWIR频率下实现了极化引起的FANO共振控制。该平台由二维SI/GESN Core/Shell Nanowire阵列组成。通过调整光偏振化,我们表明,由于电动和磁性偶极子竞争中引起的FANO共振,可以有效地设计跨表面反射率。高折射率纳米线阵列中光学诱导的偶极子的干扰提供了额外的自由度,以量身定制方向散射和光的流动,同时使尖锐的极化调节共振。这种可调性是在纳米传感器中利用的,可有效检测周围介质的折射率的10^{ - 2}变化。
The short-wave infrared (SWIR) is an underexploited portion of the electromagnetic spectrum in metasurface-based nanophotonics despite its strategic importance in sensing and imaging applications. This is mainly attributed to the lack of material systems to tailor light-matter interactions in this range. Herein, we address this limitation and demonstrate an all-dielectric silicon-integrated metasurface enabling polarization-induced Fano resonance control at SWIR frequencies. The platform consists of a two-dimensional Si/GeSn core/shell nanowire array on a silicon wafer. By tuning the light polarization, we show that the metasurface reflectance can be efficiently engineered due to Fano resonances emerging from the electric and magnetic dipoles competition. The interference of optically induced dipoles in high-index nanowire arrays offers additional degrees of freedom to tailor the directional scattering and the flow of light while enabling sharp polarization-modulated resonances. This tunability is harnessed in nanosensors yielding an efficient detection of 10^{-2} changes in the refractive index of the surrounding medium.