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Photonic crystal fiber-based surface plasmon resonance sensor with selective analyte channels and graphene-silver deposited core

机译:具有选择性分析物通道和石墨烯-银沉积核的基于光子晶体光纤的表面等离子体共振传感器

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摘要

We propose a surface plasmon resonance (SPR) sensor based on photonic crystal fiber (PCF) with selectively filled analyte channels. Silver is used as the plasmonic material to accurately detect the analytes and is coated with a thin graphene layer to prevent oxidation. The liquid-filled cores are placed near to the metallic channel for easy excitation of free electrons to produce surface plasmon waves (SPWs). Surface plasmons along the metal surface are excited with a leaky Gaussian-like core guided mode. Numerical investigations of the fiber's properties and sensing performance are performed using the finite element method (FEM). The proposed sensor shows maximum amplitude sensitivity of 418 Refractive Index Units (RIU-1) with resolution as high as 2.4 x 10(-5) RIU. Using the wavelength interrogation method, a maximum refractive index (RI) sensitivity of 3000 nm/RIU in the sensing range of 1.46-1.49 is achieved. The proposed sensor is suitable for detecting various high RI chemicals, biochemical and organic chemical analytes. Additionally, the effects of fiber structural parameters on the properties of plasmonic excitation are investigated and optimized for sensing performance as well as reducing the sensor's footprint.
机译:我们提出了一种基于光子晶体光纤(PCF)的表面等离子体共振(SPR)传感器,该传感器具有选择性填充的分析物通道。银被用作等离激元材料以精确检测分析物,并涂有一层薄的石墨烯层以防止氧化。充满液体的磁芯放置在靠近金属通道的位置,以便容易激发自由电子以产生表面等离激元波(SPW)。沿金属表面的表面等离激元被泄漏的高斯型磁心引导模式激发。使用有限元方法(FEM)对光纤的性能和传感性能进行了数值研究。所提出的传感器显示了418折射率单位(RIU-1)的最大幅度灵敏度,分辨率高达2.4 x 10(-5)RIU。使用波长询问方法,可以在1.46-1.49的感测范围内实现3000 nm / RIU的最大折射率(RI)灵敏度。提出的传感器适用于检测各种高RI化学物质,生物化学和有机化学分析物。此外,还研究并优化了纤维结构参数对等离子体激发特性的影响,以优化传感性能并减少传感器的占位面积。

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