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Behaviour of Poynting vector for dielectric-metal-dielectric optical waveguides and applications

机译:介电 - 金属介质光波导和应用的Poynteve向量的行为

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In this paper, we derive analytical expressions for the spatial evolution of the instantaneous Poynting vector for the transverse magnetic (TM) surface plasmon (SP) modes of a symmetric planar dielectric-metal-dielectric optical waveguide. We discuss the behaviour of the Poynting vector in the metal film due to the optical absorption of electromagnetic waves propagating through the medium to excite the surface plasmons in a resonant manner in the metal film at the interface. This optical absorption of the electromagnetic waves results in a finite propagation length of SP modes. We derive an analytical formula for the penetration depth of the instantaneous Poynting vector in the dielectric cladding regions and show that it is different as compared to the penetration depth of the average Poynting vector. We utilize this analytical formula to calculate the optimum thickness of the affinity layer in a graphene-based surface plasmon resonance (SPR) biosensor and analyze its performance in terms of sensitivity and Figure-of-Merit. We also show that our analytical formula can be used to calculate the optimum thickness of a thin high-index dielectric layer which is added to any conventional SPR based sensor to enhance its sensitivity. The optimum thickness thus calculated correlates closely with the experimental results that have been published previously. The analysis done in this paper can also be utilized in calculating the separation between any two adjacent waveguides/optical films which are coupled together evanescently, such as directional couplers and TE/TM polarisers.
机译:在本文中,我们推导出用于对称平面介质 - 金属 - 介电光波导的横向磁(TM)表面等离子体(SP)模式的瞬时Poyntve载体的空间演进的分析表达。我们讨论了由于通过介质传播的电磁波的光学吸收而讨论金属膜中的Poynting载体的行为,以在界面处的金属膜中以共振方式激发表面等离子体。这种电磁波的光学吸收导致SP模式的有限传播长度。我们得出了介电包层区域中瞬时Poynting载体的穿透深度的分析公式,并表明与平均Poynting载体的渗透深度相比,它不同。我们利用该分析公式来计算基于石墨烯的表面等离子体共振(SPR)生物传感器中的亲和层的最佳厚度,并在灵敏度和垂度方面分析其性能。我们还表明,我们的分析配方可用于计算薄高焦点介电层的最佳厚度,该薄高焦点介电层被添加到任何传统的SPR基传感器以增强其灵敏度。如此计算的最佳厚度与之前发布的实验结果紧密相关。本文中所做的分析也可以用于计算任何两个相邻的波导/光学膜之间的分离,所述波导/光学膜在耦合在一起,例如定向耦合器和TE / TM偏振器。

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