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Energy losses and transition radiation produced by the interaction of charged particles with a graphene sheet

机译:带电粒子与石墨烯片相互作用产生的能量损失和过渡辐射

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摘要

We present a fully relativistic formulation of the energy loss of a charged particle traversing a conductive monoatomic layer and apply it to the case of graphene in a transmission electron microscope (TEM). We use two models of conductivity appropriate for different frequency regimes: (a) THz (terahertz) frequency range and (b) optical range. In each range we distinguish two types of contributions to the electron energy loss: the energy deposited in graphene in the form of electronic excitations (Ohm losses), and the energy that is emitted in the form of radiation. We find strong relativistic effects in the electron energy loss spectra, which are manifested, e.g., in the increased heights of the principal π and σ + π peaks that may be observed in TEM in the optical range. While the radiative energy losses are suppressed in the optical range in comparison to the Ohmic losses, we find that these two contributions are comparable in magnitude in the THz range, where the response of doped graphene is dominated by the Dirac plasmon polariton (DPP). In particular, relative contributions of the Ohmic and radiative energy losses are strongly affected by the damping of DPP. In the case of a clean graphene with low damping, the angular distribution of the radiated spectra at the sub-THz frequencies exhibit strong and possibly observable skewing towards graphene.
机译:我们介绍了穿越导电单原子层的带电粒子的能量损失的完全相对论公式,并将其应用于透射电子显微镜(TEM)中石墨烯的情况。我们使用两种适用于不同频率范围的电导率模型:(a)THz(太赫兹)频率范围和(b)光学范围。在每个范围内,我们区分两种类型的电子能量损失贡献:以电子激发形式(欧姆损耗)形式沉积在石墨烯中的能量,以及以辐射形式发射的能量。我们在电子能量损失谱中发现了很强的相对论效应,这表现在例如在光学范围内的TEM中观察到的主π和σ+π主峰的高度增加时。与欧姆损耗相比,虽然在光学范围内辐射能量损耗得到了抑制,但我们发现这两个贡献在太赫兹范围内的幅度相当,其中掺杂的石墨烯的响应主要由狄拉克等离子体激元极化子(DPP)决定。特别是,DPP的阻尼会严重影响欧姆和辐射能量损失的相对贡献。在具有低阻尼的干净石墨烯的情况下,在亚太赫兹频率处的辐射光谱的角度分布表现出很强的并且可能是可观察到的向石墨烯的倾斜。

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  • 来源
    《Physical review 》 |2016年第12期| 125414.1-125414.17| 共17页
  • 作者单位

    Department of Applied Mathematics, and Waterloo Institute for Nanotechnology, University of Waterloo, Waterloo, Ontario, Canada N2L 3G1;

    Centro Atomico Bariloche, Comision Nacional de Energia Atomica, Av. Bustillo 9500, 8400 S.C. de Bariloche, Argentina ,Consejo Nacional de Investigaciones Cientificas y Tecnicas of Argentina (CONICET);

    Centro Atomico Bariloche, Comision Nacional de Energia Atomica, Av. Bustillo 9500, 8400 S.C. de Bariloche, Argentina ,Institute Balseiro, Universidad Nacional de Cuyo and Comision Nacional de Energia Atomica, Av. Bustillo 9500, 8400 S.C. de Bariloche, Argentina,Consejo Nacional de Investigaciones Cientificas y Tecnicas of Argentina (CONICET);

    Centro Atomico Bariloche, Comision Nacional de Energia Atomica, Av. Bustillo 9500, 8400 S.C. de Bariloche, Argentina ,Institute Balseiro, Universidad Nacional de Cuyo and Comision Nacional de Energia Atomica, Av. Bustillo 9500, 8400 S.C. de Bariloche, Argentina;

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