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基于级联双不对称腔产生的法诺共振的高质量等离子体传感器。

High Quality Plasmonic Sensors Based on Fano Resonances Created through Cascading Double Asymmetric Cavities.

作者信息

Zhang Xiangao, Shao Mingzhen, Zeng Xiaoqi

机构信息

Department of Physics, South University of Science and Technology of China, Shenzhen 518055, China.

出版信息

Sensors (Basel). 2016 Oct 18;16(10):1730. doi: 10.3390/s16101730.

Abstract

In this paper, a type of compact nanosensor based on a metal-insulator-metal structure is proposed and investigated through cascading double asymmetric cavities, in which their metal cores shift along different axis directions. The cascaded asymmetric structure exhibits high transmission and sharp Fano resonance peaks via strengthening the mutual coupling of the cavities. The research results show that with the increase of the symmetry breaking in the structure, the number of Fano resonances increase accordingly. Furthermore, by modulating the geometrical parameters appropriately, Fano resonances with high sensitivities to the changes in refractive index can be realized. A maximum figure of merit (FoM) value of 74.3 is obtained. Considerable applications for this work can be found in bio/chemical sensors with excellent performance and other nanophotonic integrated circuit devices such as optical filters, switches and modulators.

摘要

本文提出了一种基于金属-绝缘体-金属结构的紧凑型纳米传感器,并通过级联双不对称腔对其进行了研究,其中它们的金属芯沿不同轴方向移动。级联不对称结构通过加强腔之间的相互耦合,呈现出高透射率和尖锐的法诺共振峰。研究结果表明,随着结构中对称性破缺的增加,法诺共振的数量相应增加。此外,通过适当调制几何参数,可以实现对折射率变化具有高灵敏度的法诺共振。获得了74.3的最大品质因数(FoM)值。这项工作在具有优异性能的生物/化学传感器以及其他纳米光子集成电路器件(如光学滤波器、开关和调制器)中具有相当多的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d774/5087515/61e78216d589/sensors-16-01730-g001.jpg

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