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基于一维光子晶体中 Tamm 态的折射率气体传感器:理论优化。

Refractive index gas sensor based on the Tamm state in a one-dimensional photonic crystal: Theoretical optimisation.

机构信息

TH-PPM Group, Physics Department, Faculty of Sciences, Beni-Suef University, Beni-Suef, Egypt.

出版信息

Sci Rep. 2020 Jun 16;10(1):9736. doi: 10.1038/s41598-020-66427-6.

Abstract

Gas sensors are important in many fields such as environmental monitoring, agricultural production, public safety, and medical diagnostics. Herein, Tamm plasmon resonance in a photonic bandgap is used to develop an optical gas sensor with high performance. The structure of the proposed sensor comprises a gas cavity sandwiched between a one-dimensional porous silicon photonic crystal and an Ag layer deposited on a prism. The optimised structure of the proposed sensor achieves ultra-high sensitivity (S = 1.9×10 nm/RIU) and a low detection limit (DL = 1.4×10 RIU) compared to the existing gas sensor. The brilliant sensing performance and simple design of the proposed structure make our device highly suitable for use as a sensor in a variety of biomedical and industrial applications.

摘要

气体传感器在环境监测、农业生产、公共安全和医疗诊断等许多领域都很重要。本文利用光子带隙中的汤姆逊等离子体共振,开发了一种具有高性能的光学气体传感器。所提出的传感器的结构由一个气体腔夹在一维多孔硅光子晶体和沉积在棱镜上的 Ag 层之间组成。与现有气体传感器相比,所提出传感器的优化结构实现了超高灵敏度(S=1.9×10nm/RIU)和低检测限(DL=1.4×10RIU)。所提出结构的出色传感性能和简单设计使我们的器件非常适合用作各种生物医学和工业应用中的传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/43b3/7297992/9ed0cbe70978/41598_2020_66427_Fig1_HTML.jpg

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