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Extreme light confinement and low loss in triangle hybrid plasmonic waveguide

机译:三角形混合等离子体激元波导的极限光限制和低损耗

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摘要

A low-loss triangle hybrid plasmonic waveguide to confine light at an ultra-deep subwavelength scale is proposed and numerically investigated. Compared to other hybrid slot plasmonic waveguides based on cylinder or square semiconductor nanowires, the novel hybrid plasmonic waveguide based on triangle semiconductor nanowire has not only stronger field confinement, but also lower propagation loss. Detailed study of this structure reveals that these advantages originate from the tip enhancement of the triangle semiconductor waveguide. This mechanism of the waveguide permits tolerance for structural imperfection in actual experiments, which is very feasible for experimental realization. The extreme confinement of light can lead to strong electric field around the tip of the triangle semiconductor waveguide, thus can greatly enhance the light-matter interaction. Various applications will benefit from this triangle hybrid plasmonic waveguide, such as the laser, waveguide (cavity) quantum electrody-namics and optomechanics.
机译:提出了一种低损耗三角形混合等离子体激元波导,用于将光限制在超深亚波长范围内,并进行了数值研究。与基于圆柱或方形半导体纳米线的其他混合缝隙等离子体激元波导相比,基于三角形半导体纳米线的新型混合等离子体激元波导不仅具有更强的场约束,而且具有更低的传播损耗。对这种结构的详细研究表明,这些优势源自三角形半导体波导的尖端增强。波导的这种机制允许在实际实验中容忍结构缺陷,这对于实验实现是非常可行的。光的极端限制会在三角形半导体波导的尖端周围产生强电场,从而可以大大增强光-质相互作用。这种三角形混合等离子体激元波导将有多种应用,例如激光器,波导(腔)量子电动力学和光力学。

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