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High-Sensitivity Plasmonic Sensor Based on Metal–Insulator–Metal Waveguide and Hexagonal-Ring Cavity

机译:基于金属-绝缘体-金属波导和六角环腔的高灵敏度等离子传感器

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摘要

We have proposed and analyzed a compact refractive index sensor in 2-D plasmonic waveguide by hexagonal-ring cavity. The metal–insulator–metal waveguides are coupled to a cavity that is filled with liquid/gaseous material under sensing of refractive index. According to the linear relationship, the refractive index changes of the dielectric material inside the cavity and temperature changes of environment medium can be obtained from the detection of the resonance wavelength. The finite-difference time-domain simulations reveal that by designing the structure carefully, refractive index and temperature sensitivity values can be obtained as high as 4270 nm per refractive index unit (RIU) and 0.56 nm/°C, respectively. The effects of structural parameters, such as length and refractive index of hexagonal-ring cavity on the sensing spectra, are studied as well. The proposed structure with such high sensitivity will be useful in compact optical devices for optical communications and integrated photonics circuits.
机译:我们已经提出并分析了通过六角环腔在二维等离子体波导中的紧凑型折射率传感器。金属-绝缘体-金属波导耦合到在折射率感测下充满液体/气体材料的空腔。根据线性关系,可以通过检测共振波长来获得腔体内的介电材料的折射率变化和环境介质的温度变化。有限差分时域仿真表明,通过精心设计结构,可以使每个折射率单位(RIU)的折射率和温度灵敏度值分别高达4270 nm和0.56 nm /°C。还研究了结构参数,如六边形环腔的长度和折射率对传感光谱的影响。所提出的具有如此高灵敏度的结构将在用于光通信和集成光子电路的紧凑型光学设备中有用。

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