论文标题
扭曲 - 角度的双层石墨烯中的透明镜效应
Transparent mirror effect in twist-angle-disordered bilayer graphene
论文作者
论文摘要
当光在具有空间无序折射指数的介质上入射时,当介电接口数量很大时,干扰效应会导致几乎完美的反射,因此介质成为“透明镜”。我们研究了扭曲双层石墨烯(TBG)中电子的类似物,为此,扭曲角的局部波动产生了空间随机的费米速度。在仅包含费米速度空间变化的描述中,我们通过将此问题映射到一个维度的安德森本地化中来得出了准角度障碍的入射角度依赖性定位长度。由于克莱因隧穿而导致的定位长度在正常发生率上有所不同,从而导致在入射角上平均的幂律衰减。在最小的TBG模型中,扭曲角度的调节还以一种可以通过随机量规场来描述的方式在动量空间中的位置移动,因此Klein隧道不确定。但是,当与这些变化相比,狄拉克电子的事件动量很大时,扭曲障碍的主要效果只是将与完美传输相关的入射角移开。这些结果提出了一种疾病引起的准直剂,山谷过滤和狄拉克电子束的能量过滤的机制,因此TBG为Dirac Fermion光学器件提供了有希望的新平台。
When light is incident on a medium with spatially disordered index of refraction, interference effects lead to near-perfect reflection when the number of dielectric interfaces is large, so that the medium becomes a "transparent mirror." We investigate the analog of this effect for electrons in twisted bilayer graphene (TBG), for which local fluctuations of the twist angle give rise to a spatially random Fermi velocity. In a description that includes only spatial variation of Fermi velocity, we derive the incident-angle-dependent localization length for the case of quasi-one-dimensional disorder by mapping this problem onto one dimensional Anderson localization. The localization length diverges at normal incidence as a consequence of Klein tunneling, leading to a power-law decay of the transmission when averaged over incidence angle. In a minimal model of TBG, the modulation of twist angle also shifts the location of the Dirac cones in momentum space in a way that can be described by a random gauge field, and thus Klein tunneling is inexact. However, when the Dirac electron's incident momentum is large compared to these shifts, the primary effect of twist disorder is only to shift the incident angle associated with perfect transmission away from zero. These results suggest a mechanism for disorder-induced collimation, valley filtration, and energy filtration of Dirac electron beams, so that TBG offers a promising new platform for Dirac fermion optics.