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Refractive index sensor using Fibonacci sequence of gyroidal graphene and porous silicon based on Tamm plasmon polariton

机译:基于Tamm等离子体极化激元的陀螺石墨烯和多孔硅斐波那契数列的折光率传感器

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摘要

In this paper, binary photonic crystal with a quasi-periodic sequence is investigated. A Fibonacci sequence of gyroidal graphene and porous silicon terminated by the gyroidal layer is proposed as a refractive index sensor. The refractive index or concentration of an analyte can be predicted based on the resonant dip of Tamm plasmon. The excellent optical properties of porous silicon and gyroidal graphene will contribute to enhancing the performance of the proposed sensor. The impact of various geometric parameters is investigated. Compared with the similar structure of periodic photonic crystals, the sensitivity and figure of merit enhanced from 188.8 to 1347.7 THz/RIU (higher 614) and from 355,384 to 554,405/RIU (higher 56), respectively. The high-performance results imply that the suggested Fibonacci sensor is suitable for gas detection and bio-sensing applications.
机译:本文研究了具有准周期序列的二元光子晶体。提出了由陀螺层终止的陀螺石墨烯和多孔硅的斐波那契数列作为折射率传感器。分析物的折射率或浓度可以根据Tamm等离子体的共振倾角来预测。多孔硅和陀螺石墨烯优异的光学性能将有助于提高所提出的传感器的性能。研究了各种几何参数的影响。与相似结构的周期性光子晶体相比,灵敏度和品质因数分别从188.8 THz/RIU提高到1347.7 THz/RIU(提高了614%)和355,384 THz/RIU(提高了56%)。高性能结果表明,所推荐的斐波那契传感器适用于气体检测和生物传感应用。

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