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Theory of linear chains of metamaterial/plasmonic particles as subdiffraction optical nanotransmission lines

机译:超材料/等离子体粒子的线性链理论作为亚衍射光学纳米传输线的理论

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摘要

Here we discuss the theory and analyze in detail the guidance properties of linear arrays of metamaterial/ plasmonic small particles as nanoscale optical nanotransmission lines, including the effect of material loss. Under the assumption of dipolar approximation for each particle, which is shown to be accurate in the geometry of interest here, we develop closed-form analytical expressions for the eigenmodal dispersion in such arrays. With the material loss included, the conditions for minimal absorption and maximum bandwidth are derived analytically by studying the properties of such dispersion relations. Numerical examples with realistic materials, including their ohmic absorption and frequency dispersion, are presented. The analytical properties discussed here also provide some further physical insights into the mechanisms underlying the subdiffraction guidance in such arrays and their fundamental physical limits. The possibility of guiding beams with subwavelength lateral confinement and reasonably low decay is discussed, offering the possible use of this technique at microwave, infrared, and optical frequencies. Interpretation of these results in terms of nanocircuit concepts is presented, and possible extension to two- and three-dimensional nanotransmission line optical metamaterials is also foreseen.
机译:在这里,我们讨论该理论并详细分析超材料/等离激元小颗粒的线性阵列作为纳米级光学纳米传输线的导引特性,包括材料损失的影响。在每个粒子的偶极近似的假设下(在这里显示出感兴趣的几何形状是正确的),我们针对此类阵列中的本征模态色散开发了封闭形式的解析表达式。考虑到材料的色散关系,可以通过分析这种色散关系的性质来分析得出最小吸收和最大带宽的条件。给出了具有实际材料的数值示例,包括其欧姆吸收和频率色散。此处讨论的分析特性还提供了一些进一步的物理见解,可深入了解此类阵列中亚衍射指导的基础机理及其基本物理极限。讨论了在亚波长侧向限制和合理低衰减的情况下引导光束的可能性,为在微波,红外和光频率下使用该技术提供了可能。提出了关于纳米电路概念的这些结果的解释,并且还预见了可能扩展到二维和三维纳米传输线光学超材料。

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