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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Plasmon-drag-assisted terahertz generation in a graphene layer incorporating an asymmetric plasmon nanostructure
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Plasmon-drag-assisted terahertz generation in a graphene layer incorporating an asymmetric plasmon nanostructure

机译:掺有不对称等离激元纳米结构的石墨烯层中的等离子拖曳辅助太赫兹生成

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摘要

This Rapid Communication presents a structure and full theoretical analysis to exploit the photon drag effect for THz signal generation in a graphene layer integrated with a plasmonic structure. The plasmonic structure is composed of a periodic array of asymmetric nanoparticles patterned over a graphene layer. The nanoparticles are designed to accomplish two goals: field localization due to the plasmonic resonance and manipulating the phase of the near field to effectively drag the quasiparticles in graphene. Combining the asymmetry with the plasmon resonances of nanoparticles, we show that an enhancement as large as three orders of magnitude is attainable in the power of the generated THz wave. This level of unprecedented enhancement mostly stems from the phase manipulation of the near field caused by asymmetric nanoparticles. Using the achieved enhancement, it is demonstrated that an ultra-wideband THz signal carrying the power of 1 μW can be generated using a commercially available femtosecond pulsed laser.
机译:该快速通信介绍了一种结构和完整的理论分析,可利用光子拖曳效应在集成了等离子体结构的石墨烯层中产生太赫兹信号。等离子体结构由在石墨烯层上构图的不对称纳米颗粒的周期性阵列组成。纳米粒子的设计目的是要实现两个目标:等离子体共振引起的场局部化和操纵近场相位以有效地将准粒子拖入石墨烯中。结合不对称性与纳米粒子的等离振子共振,我们表明所产生的太赫兹波的功率可以提高多达三个数量级。这种前所未有的增强水平主要源于由不对称纳米粒子引起的近场相位控制。使用所获得的增强效果,可以证明,使用市售飞秒脉冲激光器可以产生功率为1μW的超宽带THz信号。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics 》 |2016年第12期| 121411.1-121411.5| 共5页
  • 作者单位

    Terahertz Research Laboratory, Department of Electrical and Computer Engineering, University of Waterloo, Waterloo, Ontario, Canada N2L 3G1;

    Terahertz Research Laboratory, Department of Electrical and Computer Engineering, University of Waterloo, Waterloo, Ontario, Canada N2L 3G1;

    Terahertz Research Laboratory, Department of Electrical and Computer Engineering, University of Waterloo, Waterloo, Ontario, Canada N2L 3G1;

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