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基于混合等离子体波导和金属-绝缘体-金属的三阶跑道型对称微环谐振器的传感特性研究。

Research on sensing characteristics of third-order runway series symmetric microring resonator based on hybrid plasma waveguide and metal insulator metal.

机构信息

School of Mathematics and Information Technology, Hebei Normal University of Science & Technology, Qinhuangdao, Hebei, China.

出版信息

J Biophotonics. 2023 Jan;16(1):e202200204. doi: 10.1002/jbio.202200204. Epub 2022 Sep 23.

Abstract

In this paper, a high-sensitivity refractive index sensor based on a hybrid plasma waveguide and metal-insulator-metal waveguide combined third-order runway series mosaic microring resonator is proposed. In this structure, a GaAs waveguide ring surrounds a gold waveguide ring in the middle, and the innermost layer is a disk made of gold material. The outer groove waveguide is composed of GaAs-air-alloy, and the inner groove waveguide is made of the Gold-Air-Gold material disc. By filling different substances in the groove, the change of refractive index will affect the optical signal strength of the output spectrum. The finite element method simulates the transmission spectrum and electric field distribution of the sensor structure. The amplitude coupling coefficient and attenuation factor affecting the resonator's performance are analyzed, and the structural parameters of the slot waveguide are optimized. The numerical simulation results show that the sensor quality factor of this structure is 1.54 × 10 , the sensitivity is 1.2 × 10  nm/RIU which is about 1.5 times higher than that of the Si ring with the same structure, the detection limit can reach 8.1892 × 10 RIU, and the free spectral range can reach 109 nm. Compared with the traditional microring structure, this microring has higher design freedom and free spectral range and is more suitable for producing biosensors with high sensitivity, low detection limit, and multi-parameter measurement.

摘要

本文提出了一种基于混合等离子体波导和金属-绝缘体-金属波导结合三阶跑道式镶嵌微环谐振器的高灵敏度折射率传感器。在该结构中,砷化镓波导环环绕在金波导环中间,最内层是一个金材料制成的圆盘。外槽波导由砷化镓-空气合金组成,内槽波导由金-空气-金材料盘制成。通过在槽中填充不同的物质,折射率的变化会影响输出光谱的光信号强度。采用有限元法模拟了传感器结构的传输谱和电场分布。分析了影响谐振器性能的幅度耦合系数和衰减因子,并对槽波导的结构参数进行了优化。数值模拟结果表明,该结构的传感器品质因数为 1.54×10,灵敏度为 1.2×10nm/RIU,约为相同结构的硅环的 1.5 倍,检测极限可达 8.1892×10RIU,自由光谱范围可达 109nm。与传统的微环结构相比,该微环具有更高的设计自由度和自由光谱范围,更适合制作具有高灵敏度、低检测极限和多参数测量的生物传感器。

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