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Refractive index sensing performance analysis of photonic crystal containing graphene based on optical Tamm state

机译:基于光学Tamm态的含石墨烯光子晶体的折射率传感性能分析

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摘要

A photonic crystal's refractive index sensor is proposed based on the photonic crystal (PC) optical properties and the surface wave resonance principle. The optical Tamm state existing at the interface between one-dimensional (1D) PCs and the metal layer can overcome the disadvantage of the surface plasmon resonance (SPR) sensor in which the incident light can only be TM polarized light. The resonant wavelength can be changed by adjusting the optical parameters of the PC. Through coating the metal surface with graphene, the resolution and sensitivity of the sensor can be improved obviously. The relationship model between the graphene parameters and the reflectivity is established by analyzing the reflective properties of the graphene. In the numerical simulation, the graphene layer is optimized to improve the refractive index sensing properties. The numerical simulation results show that the quality factor (Q value) can attain to 1418.2 and the sensitivity is about 1178.6 nm RIU-1, which can demonstrate the effectiveness of the senor structure and provide some theoretical references for the design of the refractive index sensors with high Q value and sensitivity.
机译:基于光子晶体的光学特性和表面波共振原理,提出了一种光子晶体的折射率传感器。一维(1D)PC与金属层之间的界面处存在的Tamm光学状态可以克服表面等离振子共振(SPR)传感器的缺点,其中入射光只能是TM偏振光。谐振波长可以通过调整PC的光学参数来改变。通过用石墨烯覆盖金属表面,可以显着提高传感器的分辨率和灵敏度。通过分析石墨烯的反射特性,建立了石墨烯参数与反射率之间的关系模型。在数值模拟中,对石墨烯层进行了优化以改善折射率感测性能。数值模拟结果表明,品质因数(Q值)可以达到1418.2,灵敏度约为1178.6 nm RIU-1,可以证明传感器结构的有效性,为折射率传感器的设计提供一些理论参考。具有很高的Q值和灵敏度。

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