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Wedge hybrid plasmonic THz waveguide with long propagation length and ultra-small deep-subwavelength mode area

机译:具有长传播长度和超小深亚波长模式面积的楔形混合等离子体THz波导

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摘要

We present a novel design of wedge hybrid plasmonic terahertz (THz) waveguide consisting of a silicon (Si) nanowire cylinder above a triangular gold wedge with surrounded high-density polyethylene as cladding. It features long propagation length and ultra-small deep-subwavelength mode confinement. The mode properties of wedge hybrid plasmonic THz waveguide are comprehensively characterized in terms of propagation length (L), normalized mode area (Aeff /A0), figure of merit (FoM), and chromatic dispersion (D). The designed wedge hybrid plasmonic THz waveguide enables an ultra-small deep-subwavelength mode area which is more than one-order of magnitude smaller compared to previous rectangular one. When choosing the diameter of Si nanowire cylinder, a smaller diameter (e.g. 10 μm) is preferred to achieve longer L and higher FoM, while a larger diameter (e.g. 60 μm) is favorable to obtain smaller Aeff /A0 and higher FoM. We further study the impacts of possible practical fabrication errors on the mode properties. The simulated results of propagation length and normalized mode area show that the proposed wedge hybrid plasmonic THz waveguide is tolerant to practical fabrication errors in geometry parameters such as misalignment in the horizontal direction, variation of wedge tip angle, and variation of wedge tip curvature radius.
机译:我们提出了一种新型的楔形混合等离子体激元(THz)波导设计,该波导由三角形金楔上方的硅(Si)纳米线圆柱体组成,周围是高密度聚乙烯作为包层。它具有长的传播长度和超小深亚波长模式限制。从传播长度(L),归一化模态面积(Aeff / A0),品质因数(FoM)和色散(D)方面全面表征了楔形混合等离子体THz波导的模态特性。设计的楔形混合等离子体激元THz波导实现了超小深亚波长模式区域,与以前的矩形区域相比,其面积小了一个数量级以上。当选择Si纳米线圆柱体的直径时,较小的直径(例如10μm)优选以获得更长的L和更高的FoM,而更大的直径(例如60μm)有利于获得更小的Aeff / A0和更高的FoM。我们进一步研究了可能的实际制造误差对模态特性的影响。传播长度和归一化模态面积的仿真结果表明,所提出的楔形混合等离子体激元太赫兹波导能够容忍几何参数的实际制造误差,例如水平方向上的未对准,楔形尖端角度的变化以及楔形尖端曲率半径的变化。

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