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截断一维光子晶体上激发的中红外布洛赫表面波的光谱特性

Spectral Characterization of Mid-Infrared Bloch Surface Waves Excited on a Truncated 1D Photonic Crystal.

作者信息

Occhicone Agostino, Pea Marialilia, Polito Raffaella, Giliberti Valeria, Sinibaldi Alberto, Mattioli Francesco, Cibella Sara, Notargiacomo Andrea, Nucara Alessandro, Biagioni Paolo, Michelotti Francesco, Ortolani Michele, Baldassarre Leonetta

机构信息

SAPIENZA University of Rome, Department of Basic and Applied Sciences for Engineering, Via A. Scarpa, 16, 00161 Roma, Italy.

CNR Consiglio Nazionale delle Ricerche, Institute for Photonics and Nanotechnologies, Via Cineto Romano, 42, 00156 Roma, Italy.

出版信息

ACS Photonics. 2021 Jan 20;8(1):350-359. doi: 10.1021/acsphotonics.0c01657. Epub 2020 Dec 31.

Abstract

The many fundamental roto-vibrational resonances of chemical compounds result in strong absorption lines in the mid-infrared region (λ ∼ 2-20 μm). For this reason, mid-infrared spectroscopy plays a key role in label-free sensing, in particular, for chemical recognition, but often lacks the required sensitivity to probe small numbers of molecules. In this work, we propose a vibrational sensing scheme based on Bloch surface waves (BSWs) on 1D photonic crystals to increase the sensitivity of mid-infrared sensors. We report on the design and deposition of CaF/ZnS 1D photonic crystals. Moreover, we theoretically and experimentally demonstrate the possibility to sustain narrow σ-polarized BSW modes together with broader π-polarized modes in the range of 3-8 μm by means of a customized Fourier transform infrared spectroscopy setup. The multilayer stacks are deposited directly on CaF prisms, reducing the number of unnecessary interfaces when exciting in the Kretschmann-Raether configuration. Finally, we compare the performance of mid-IR sensors based on surface plasmon polaritons with the BSW-based sensor. The figures of merit found for BSWs in terms of confinement of the electromagnetic field and propagation length puts them as forefrontrunners for label-free and polarization-dependent sensing devices.

摘要

化合物的许多基本旋转振动共振会在中红外区域(λ ∼ 2 - 20 μm)产生强吸收线。因此,中红外光谱在无标记传感中起着关键作用,特别是在化学识别方面,但通常缺乏探测少量分子所需的灵敏度。在这项工作中,我们提出了一种基于一维光子晶体上的布洛赫表面波(BSW)的振动传感方案,以提高中红外传感器的灵敏度。我们报告了CaF/ZnS一维光子晶体的设计和沉积。此外,我们通过定制的傅里叶变换红外光谱装置,从理论和实验上证明了在3 - 8 μm范围内维持窄σ偏振BSW模式以及更宽的π偏振模式的可能性。多层堆栈直接沉积在CaF棱镜上,减少了在Kretschmann - Raether配置中激发时不必要的界面数量。最后,我们将基于表面等离激元极化激元的中红外传感器与基于BSW的传感器的性能进行了比较。就电磁场的限制和传播长度而言,为BSW找到的品质因数使其成为无标记和偏振相关传感设备的领跑者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1532/7871362/0432d6c8c1c9/ph0c01657_0001.jpg

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