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Boundary effects in finite size plasmonic crystals: focusing and routing of plasmonic beams for optical communications

机译:有限尺寸等离子晶体的边界效应:用于光通信的等离子束的聚焦和路由

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Plasmonic crystals, which consist of periodic arrangements of surface features at a metal-dielectric interface, allow the manipulation of optical information in the form of surface plasmon polaritons. Here we investigate the excitation and propagation of plasmonic beams in and around finite size plasmonic crystals at telecom wavelengths, highlighting the effects of the crystal boundary shape and illumination conditions. Significant differences in broad plasmonic beam generation by crystals of different shapes are demonstrated, while for narrow beams, the propagation from a crystal onto the smooth metal film is less sensitive to the crystal boundary shape. We show that by controlling the boundary shape, the size and the excitation beam parameters, directional control of propagating plasmonic modes and their behaviour such as angular beam splitting, focusing power and beam width can be efficiently achieved. This provides a promising route for robust and alignment-independent integration of plasmonic crystals with optical communication components.
机译:等离子晶体由金属-电介质界面上的表面特征的周期性排列组成,可以操纵以表面等离激元极化子形式的光学信息。在这里,我们研究了在电信波长下等离子束在有限尺寸的等离子晶体中及其周围的激发和传播,突出了晶体边界形状和照明条件的影响。结果表明,通过不同形状的晶体产生的宽等离激元束产生显着差异,而对于窄束,从晶体到光滑金属膜的传播对晶体边界形状的敏感性较小。我们表明,通过控制边界形状,尺寸和激发束参数,可以有效地实现传播等离激元模的定向控制及其行为,例如角分束,聚焦功率和束宽。这为等离激子晶体与光通信组件的稳固和不依赖于排列的集成提供了一条有希望的途径。

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