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Polarization conversion in plasmonic nanoantennas for metasurfaces using structural asymmetry and mode hybridization

机译:使用结构不对称和模式杂交的等离子等离子纳米天线的超表面极化转换

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摘要

Polarization control using single plasmonic nanoantennas is of interest for subwavelength optical components in nano-optical circuits and metasurfaces. Here, we investigate the role of two mechanisms for polarization conversion by plasmonic antennas: Structural asymmetry and plasmon hybridization through strong coupling. As a model system we investigate L-shaped antennas consisting of two orthogonal nanorods which lengths and coupling strength can be independently controlled. An analytical model based on field susceptibilities is developed to extract key parameters and to address the influence of antenna morphology and excitation wavelength on polarization conversion efficiency and scattering intensities. Optical spectroscopy experiments performed on individual antennas, further supported by electrodynamical simulations based on the Green Dyadic Method, confirm the trends extracted from the analytical model. Mode hybridization and structural asymmetry allow address-ing different input polarizations and wavelengths, providing additional degrees of freedom for agile polarization conversion in nanophotonic devices.
机译:对于纳米光学电路和超表面中的亚波长光学组件,使用单个等离激元纳米天线的极化控制是令人感兴趣的。在这里,我们研究等离子天线极化转换的两种机制的作用:结构不对称和通过强耦合的等离激元杂交。作为模型系统,我们研究了由两个正交的纳米棒组成的L形天线,其长度和耦合强度可以独立控制。建立了基于场磁化率的分析模型,以提取关键参数并解决天线形态和激发波长对极化转换效率和散射强度的影响。在单个天线上进行的光谱实验,进一步得到了基于Green Dyadic方法的电动力学仿真的支持,证实了从分析模型中提取的趋势。模式杂交和结构不对称性允许寻址不同的输入偏振和波长,从而为纳米光子器件中的敏捷偏振转换提供了额外的自由度。

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