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Hydrodynamic model approach to the formation of plasmonic wakes in graphene

机译:石墨烯等质子奶粉形成的流体动力学模型方法

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摘要

Using the hydrodynamic model in the electrostatic approximation, we describe the formation of graphene surface plasmons when a nearby charge is in motion either perpendicular or parallel to a graphene sheet. In the first case, the electron-energy loss (EEL) spectrum of the electron is computed, showing that the resonances in the spectrum are linked to the frequency of the graphene surface plasmons. In the second case, we discuss the formation of plasmonic wakes due to the dragging of the surface plasmons induced by the motion of the charge. This effect is similar to Coulomb drag between two electron gases at a distance from each other. We derive simple expressions for the electrostatic potential induced by the moving charge on graphene. We show that there is a transition from a Mach-type wake at high speeds to a Kelvin-type wake at low ones and identify the Froude number for plasmonic wakes. We show that the Froude number can be controlled externally by tunning both the Fermi energy in graphene and the dielectric function of the environment, a situation with no parallel in ship wakes. Using EEL, we propose a source of graphene plasmons, based on a graphene drum built in a metallic waveguide and activated by an electron beam created by the tip of an electronic microscope. We also introduce the notion of a plasmonic billiard.
机译:在静电近似中使用流体动力学模型,我们描述了当附近的电荷垂直或平行于石墨烯片的运动时石墨烯表面等离子体的形成。在第一种情况下,计算电子的电子 - 能量损失(EEL)光谱,表明光谱中的共振与石墨烯表面等离子体的频率连接。在第二种情况下,我们讨论了由于电荷运动诱导的表面等离子体的拖动而讨论了等离子体唤醒的形成。这种效果类似于彼此距离的两个电子气之间的库仑阻力。我们推导出通过在石墨烯上移动电荷引起的静电潜力的简单表达式。我们表明,在低速下,从Mach型唤醒以高速唤醒的过渡到低速,并识别等离子体唤醒的FRoude号码。我们表明,通过在石墨烯中的费米能量和环境的介电功能中调整FERMI能量,可以在外部控制FRoude号码,这种情况在船上没有平行。使用鳗鱼,我们提出了一种基于内置在金属波导中的石墨烯鼓和由由电子显微镜的尖端产生的电子束启动的石墨烯滚筒来源。我们还介绍了代表性台球的概念。

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  • 来源
    《Physical review, B》 |2017年第19期|共18页
  • 作者单位

    Univ Minho Dept &

    Ctr Phys Campus Gualtar PT-4710374 Braga Portugal;

    Univ Minho Dept &

    Ctr Phys Campus Gualtar PT-4710374 Braga Portugal;

    Univ Minho Dept Math &

    Applicat Campus Gualtar PT-4710374 Braga Portugal;

    Univ Southern Denmark Ctr Nano Opt Campusvej 55 DK-5230 Odense M Denmark;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学;
  • 关键词

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