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Anderson localization and delocalization of massless two-dimensional Dirac electrons in random one-dimensional scalar and vector potentials

机译:随机一维标量和矢量势中无质量二维Dirac电子的Anderson定位和离域

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摘要

We study Anderson localization of massless two-dimensional Dirac electrons in random one-dimensional scalar and vector potentials theoretically for two different cases, in which the scalar and vector potentials are either uncorrelated or correlated. From the Dirac equation, we deduce the effective wave impedance, in which we derive the condition for total transmission and those for delocalization in our random models analytically. Based on the invariant imbedding theory, we also develop a numerical method to calculate the localization length exactly for arbitrary strengths of disorder. In addition, we derive analytical expressions for the localization length, which are extremely accurate in the weak and strong disorder limits. In the presence of both scalar and vector potentials, the conditions for total transmission and complete delocalization are generalized from the usual Klein tunneling case. We find that the incident angles at which electron waves are either completely transmitted or delocalized can be tuned to arbitrary values. When the strength of scalar potential disorder increases to infinity, the localization length also increases to infinity, both in uncorrelated and correlated cases. The detailed dependencies of the localization length on incident angle, disorder strength, and energy are elucidated and the discrepancies with previous studies and some new results are discussed. All the results are explained intuitively using the concept of wave impedance.
机译:我们从理论上针对两种不同情况研究了无质量二维Dirac电子在随机一维标量和矢量势中的安德森局部化,其中标量和矢量势既不相关也不相关。从狄拉克方程式中,我们推导出有效波阻抗,从而在分析模型中得出总传输的条件和离域的条件。基于不变嵌入理论,我们还开发了一种数值方法来精确计算任意强度杂散的定位长度。此外,我们导出了定位长度的解析表达式,在弱和强无序范围内都非常准确。在标量和矢量势均存在的情况下,总传输和完全离域的条件是从通常的Klein隧穿情况中得出的。我们发现,电子波完全透射或离域的入射角可以调整为任意值。当标量潜在障碍的强度增加到无穷大时,在无关和相关的情况下,定位长度也增加到无穷大。阐明了定位长度对入射角,无序强度和能量的详细依赖性,并讨论了与先前研究和一些新结果的差异。使用波阻抗的概念直观地解释了所有结果。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2019年第1期|014205.1-014205.14|共14页
  • 作者

    Kim Seulong; Kim Kihong;

  • 作者单位

    Ajou Univ, Dept Energy Syst Res, Suwon 16499, South Korea|Ajou Univ, Dept Phys, Suwon 16499, South Korea;

    Ajou Univ, Dept Energy Syst Res, Suwon 16499, South Korea|Ajou Univ, Dept Phys, Suwon 16499, South Korea|Korea Inst Adv Study, Sch Phys, Seoul 02455, South Korea;

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