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Structural dispersion–based reduction of loss in epsilon-near-zero and surface plasmon polariton waves

机译:基于结构弥散的减少ε近零和表面等离激元极化波的损耗

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摘要

The field of plasmonics has substantially affected the study of light-matter interactions at the subwavelength scale. However, dissipation losses still remain an inevitable obstacle in the development of plasmonic-based wave propagation. Although different materials with moderate losses are being extensively studied, absorption arguably continues to be the key challenge in the field. Here, we theoretically and numerically investigate a different route toward the reduction of loss in propagating plasmon waves. Rather than focusing on a material-based approach, we take advantage of structural dispersion in waveguides to manipulate effective material parameters, thus leading to smaller losses. The potential of this approach is illustrated with two examples: plane-wave propagation within a bulk epsilon-near-zero medium and surface plasmon polariton propagation at the interface of a medium with negative permittivity. We provide the recipe for a practical implementation at mid-infrared frequencies. Our results might represent an important step toward the development of low-loss plasmonic technologies.
机译:等离子体的领域已大大影响了亚波长范围内光物质相互作用的研究。但是,在基于等离激元的波传播发展中,耗散损耗仍然是不可避免的障碍。尽管对具有中等损耗的不同材料进行了广泛的研究,但吸收仍然是该领域的主要挑战。在这里,我们在理论上和数值上研究了一条减少传播等离激元波损耗的不同途径。我们没有关注基于材料的方法,而是利用波导中的结构分散来控制有效的材料参数,从而导致较小的损耗。通过两个例子说明了这种方法的潜力:在大的ε-近零介质中的平面波传播和介电常数为负的介质界面处的表面等离子体激元极化子传播。我们提供了在中红外频率上实际实施的方法。我们的结果可能代表了低损耗等离子体技术发展的重要一步。

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