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Giant enhancement of Faraday rotation due to electromagnetically induced transparency in all-dielectric magneto-optical metasurfaces

机译:由于电介质磁光元件电磁诱导的电磁致透明度,Faraday旋转的巨大增强

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摘要

In this Letter we introduce a new class of Fano-resonant all-dielectric metasurfaces for enhanced, high figure of merit magneto-optical response. The metasurfaces are formed by an array of magneto-optical bismuth-substituted yttrium iron garnet nano-disks embedded into a low-index matrix. The strong field enhancement in the magneto-optical disks, which results in over an order of magnitude enhancement of Faraday rotation, is achieved by engineering two (electric and magnetic) resonances. It is shown that while enhancement of rotation also takes place for spectrally detuned resonances, the resonant excitation inevitably results in stronger reflection and low figure of merit of the device. We demonstrate that this can be circumvented by overlapping electric and magnetic resonances of the nanodisks, yielding a sharp electromagnetically induced transparency peak in the transmission spectrum, which is accompanied by gigantic Faraday rotation. Our results show that one can simultaneously obtain a large Faraday rotation enhancement along with almost 100% transmittance in an all-dielectric metasurface as thin as 300 nm. A simple analytical model based on coupled-mode theory is introduced to explain the effects observed in first-principle finite element method simulations. (c) 2018 Optical Society of America
机译:在这封信中,我们介绍了一类新的Fano-Ardonant全电介质元件,用于增强,高值的MeriT磁光响应。元件由嵌入到低指数矩阵中的磁光铋替代的钇铁石榴石纳米盘阵列形成。通过工程学(电磁和磁性)共振来实现磁光盘中的强磁光盘中的强大领域增强,这导致了法拉第旋转的大小增加。结果表明,虽然旋转的增强也用于光谱旋转的谐振,但是谐振激励不可避免地导致装置的更强的反射和低数字。我们证明这可以通过重叠纳米小型的电和磁共振来避难,从而在透射谱中产生尖锐的电磁诱导的透明度峰值,其伴随着巨大的法拉德旋转。我们的结果表明,可以同时获得大的法拉第旋转增强,以及在全电介质元表面中的近100%透射率,如300nm。引入了一种基于耦合模式理论的简单分析模型,解释了第一原理有限元方法模拟中观察到的效果。 (c)2018年光学学会

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  • 来源
    《Optics Letters》 |2018年第8期|共4页
  • 作者单位

    CUNY City Coll Dept Elect Engn 160 Convent Ave New York NY 10031 USA;

    CUNY City Coll Dept Elect Engn 160 Convent Ave New York NY 10031 USA;

    CUNY City Coll Dept Elect Engn 160 Convent Ave New York NY 10031 USA;

    CUNY City Coll Dept Elect Engn 160 Convent Ave New York NY 10031 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计量学;光学;
  • 关键词

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