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Surface Lattice Resonances in THz Metamaterials

机译:太赫兹超材料中的表面晶格共振

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Diffraction of light in periodic structures is observed in a variety of systems including atoms, solid state crystals, plasmonic structures, metamaterials, and photonic crystals. In metamaterials, lattice diffraction appears across microwave to optical frequencies due to collective Rayleigh scattering of periodically arranged structures. Light waves diffracted by these periodic structures can be trapped along the metamaterial surface resulting in the excitation of surface lattice resonances, which are mediated by the structural eigenmodes of the metamaterial cavity. This has brought about fascinating opportunities such as lattice-induced transparency, strong nearfield confinement, and resonant field enhancement and line-narrowing of metamaterial structural resonances through lowering of radiative losses. In this review, we describe the mechanisms and implications of metamaterial-engineered surface lattice resonances and lattice-enhanced field confinement in terahertz metamaterials. These universal properties of surface lattice resonances in metamaterials have significant implications for the design of resonant metamaterials, including ultrasensitive sensors, lasers, and slow-light devices across the electromagnetic spectrum.
机译:在包括原子,固态晶体,等离激元结构,超材料和光子晶体的各种系统中观察到周期性结构中的光衍射。在超材料中,由于周期性排列结构的集体瑞利散射,晶格衍射出现在整个微波频率范围内。由这些周期性结构衍射的光波可以沿着超材料表面被捕获,从而导致表面晶格共振的激发,这由超材料腔的结构本征模式介导。这带来了令人着迷的机会,例如晶格感应的透明性,强的近场限制,共振场的增强以​​及通过降低辐射损耗而使超材料结构共振的线变窄。在这篇综述中,我们描述了太赫兹超材料中超材料工程化的表面晶格共振和晶格增强场限制的机理及其含义。超材料中表面晶格共振的这些通用特性对共振超材料的设计具有重要意义,包括超灵敏传感器,激光器和整个电磁波谱中的慢光设备。

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