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Electromagnetically induced transparency control in terahertz metasurfaces based on bright-bright mode coupling -*

机译:基于亮-亮模式耦合-*的太赫兹超表面电磁感应的透明度控制

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摘要

We demonstrate a classical analog of electromagnetically induced transparency (EIT) in a highly flexible planar terahertz metamaterial (MM) comprised of three-gap split-ring resonators. The keys to achieve EIT in this system are the frequency detuning and hybridization processes between two bright modes coexisting in the same unit cell as opposed to bright-dark modes. We present experimental verification of two bright modes coupling for a terahertz EIT-MM in the context of numerical results and theoretical analysis based on a coupled Lorentz oscillator model. In addition, a hybrid variation of the EIT-MM is proposed and implemented numerically to dynamically tune the EIT window by incorporating photosensitive silicon pads in the split gap region of the resonators. As a result, this hybrid MM enables the active optical control of a transition from the on state (EIT mode) to the off state (dipole mode).
机译:我们演示了由三间隙开环谐振器组成的高度灵活的平面太赫兹超材料(MM)中电磁感应透明性(EIT)的经典模拟。在该系统中实现EIT的关键是在同一晶胞中共存的两个亮模式之间的频率失谐和杂交过程,而不是明暗模式。我们在数值结果和基于耦合洛伦兹振荡器模型的理论分析的背景下,对太赫兹EIT-MM耦合的两种亮模式进行了实验验证。另外,提出并通过数字方式实现EIT-MM的混合变化形式,以通过在谐振器的裂隙区域中合并感光硅垫来动态调整EIT窗口。结果,该混合MM使得能够进行从导通状态(EIT模式)到截止状态(偶极子模式)的过渡的主动光学控制。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2018年第15期|155403.1-155403.5|共5页
  • 作者单位

    Department of Physics and Astronomy, Howard University, Washington, DC 20059, USA;

    Electro-Optics Department, University of Dayton, Dayton, Ohio 45469, USA;

    Department of Physics and Astronomy, Howard University, Washington, DC 20059, USA;

    Electro-Optics Department, University of Dayton, Dayton, Ohio 45469, USA;

    Department of Physics, University of Dayton, Dayton, Ohio 45469, USA;

    Electro-Optics Department, University of Dayton, Dayton, Ohio 45469, USA,Department of Physics, University of Dayton, Dayton, Ohio 45469, USA;

    Department of Physics and Astronomy, Howard University, Washington, DC 20059, USA;

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