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Hybrid Metal Graphene-Based Tunable Plasmon-Induced Transparency in Terahertz Metasurface

机译:太赫兹超颖表面中基于混合金属石墨烯的可调谐等离子体诱导的透明性

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摘要

In this paper, we look at the work of a classical plasmon-induced transparency (PIT) based on metasurface, including a periodic lattice with a cut wire (CW) and a pair of symmetry split ring resonators (SSR). Destructive interference of the ‘bright-dark’ mode originated from the CW and a pair of SSRs and resulted in a pronounced transparency peak at 1.148 THz, with 85% spectral contrast ratio. In the simulation, the effects of the relative distance between the CW and the SSR pair resonator, as well as the vertical distance of the split gap, on the coupling strength of the PIT effect, have been investigated. Furthermore, we introduce a continuous graphene strip monolayer into the metamaterial and by manipulating the Fermi level of the graphene we see a complete modulation of the amplitude and line shape of the PIT transparency peak. The near-field couplings in the relative mode resonators are quantitatively understood by coupled harmonic oscillator model, which indicates that the modulation of the PIT effect result from the variation of the damping rate in the dark mode. The transmitted electric field distributions with polarization vector clearly confirmed this conclusion. Finally, a group delay tg of 5.4 ps within the transparency window is achieved. We believe that this design has practical applications in terahertz (THz) functional devices and slow light devices.
机译:在本文中,我们着眼于基于超表面的经典等离激元诱导的透明性(PIT),包括带有切割线(CW)的周期性晶格和一对对称裂环谐振器(SSR)。 “明暗”模式的破坏性干扰源于连续波和一对SSR,并在1.148 THz处产生明显的透明峰,光谱对比度为85%。在仿真中,研究了CW和SSR对谐振器之间的相对距离以及缝隙的垂直距离对PIT效应耦合强度的影响。此外,我们将连续的石墨烯带单层引入超材料中,并且通过操纵石墨烯的费米能级,我们可以看到对PIT透明峰的幅度和线形的完全调制。通过耦合谐波振荡器模型可以定量地理解相对模式谐振器中的近场耦合,这表明PIT效应的调制是由暗模式下阻尼率的变化引起的。具有极化矢量的透射电场分布清楚地证实了这一结论。最后,群延迟 t g 。我们认为该设计在太赫兹(THz)功能设备和慢光设备中具有实际应用。

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