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Transport properties of bilayer graphene in a strong in-plane magnetic field

机译:双层石墨烯在强平面磁场中的传输特性

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A strong in-plane magnetic field drastically alters the low-energy spectrum of bilayer graphene by separating the parabolic energy dispersion into two linear Dirac cones. The effect of this dramatic change on the transport properties strongly depends on the orientation of the in-plane magnetic field with respect to the propagation direction of the charge carriers and the angle at which they impinge on the electrostatic potentials. For magnetic fields oriented parallel to the potential boundaries an additional propagating mode that results from the splitting into Dirac cones enhances the transmission probability for charge carriers tunneling through the potentials and increases the corresponding conductance. Our results show that the chiral suppression of transmission at normal incidence, reminiscent of bilayer graphene's 2π Berry phase, is turned into a chiral enhancement when the magnetic field increases, thus indicating a transition from a bilayer to a monolayer-like system at normal incidence. Further, we find that the typical transmission resonances stemming from confinement in a potential barrier are shifted to higher energy and are eventually transformed into antiresonances with increasing magnetic field. For magnetic fields oriented perpendicular to the potential boundaries we find a very pronounced transition from a bilayer system to two separated monolayer-like systems with Klein tunneling emerging at certain incident angles symmetric around 0, which also leaves a signature in the conductance. For both orientations of the magnetic field, the transmission probability is still correctly described by pseudospin conservation. Finally, to motivate the large in-plane magnetic field, we show that its energy spectrum can be mimicked by specific lattice deformations such as a relative shift of one of the layers. With this equivalence we introduce the notion of an in-plane pseudomagnetic field.
机译:强大的平面磁场通过将抛物线形能量分散体分成两个线性Dirac锥体,极大地改变了双层石墨烯的低能谱。这种急剧变化对传输特性的影响在很大程度上取决于平面内磁场相对于电荷载流子的传播方向的方向以及它们撞击静电势的角度。对于平行于电势边界定向的磁场,由分裂成狄拉克锥产生的另一种传播模式提高了电荷载流子隧穿通过电势的传输概率,并增加了相应的电导。我们的结果表明,当磁场增加时,在垂直入射时手性抑制传输会让人联想到双层石墨烯的2πBerry相,从而转变为手性增强,从而表明在垂直入射时从双层过渡到单层系统。此外,我们发现,由于限制在势垒中而产生的典型传输共振被转移到更高的能量,并最终随着磁场的增加而转变为反共振。对于垂直于电势边界定向的磁场,我们发现从双层系统到两个分离的单层状系统的过渡非常明显,在某些入射角对称于0的情况下出现了克莱因隧道效应,这在电导率中也留下了印记。对于磁场的两个方向,通过伪自旋守恒仍然可以正确地描述传输概率。最后,为了激发大的平面内磁场,我们证明了它的能谱可以通过特定的晶格变形(例如其中一层的相对位移)来模仿。通过这种等效,我们引入了平面内伪磁场的概念。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2016年第11期|115423.1-115423.11|共11页
  • 作者单位

    Department of Physics, University of Antwerp, Groenenborgerlaan 171, B-2020 Antwerp, Belgium;

    Department of Physics, University of Antwerp, Groenenborgerlaan 171, B-2020 Antwerp, Belgium;

    Department of Physics, University of Antwerp, Groenenborgerlaan 171, B-2020 Antwerp, Belgium;

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