Quantum Hall edge states under periodic driving: A Floquet induced chirality switch

A. Huam'an, Luis E. F. Foa Torres, C. Balseiro, G. Usaj
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引用次数: 2

Abstract

We report on the fate of the quantum Hall effect in graphene under strong laser illumination. By using Floquet theory combined with both a low energy description and full tight-binding models, we clarify the selection rules, the quasienergy band structure, as well as their connection with the two-terminal and multi-terminal conductance in a device setup as relevant for experiments. We show that the well-known dynamical gaps that appear in the Floquet spectrum at $\pm\,\hbar\Omega/2$ lead to a switch-off of the quantum Hall edge transport for different edge terminations except for the armchair one, where two terms cancel out exactly. More interestingly, we show that near the Dirac point changing the laser polarization (circular right or circular left) controls the Hall conductance, by allowing to switch it on or off, or even by flipping its sign, thereby reversing the chirality of the edge states. This might lead to new avenues to fully control topologically protected transport.
周期驱动下的量子霍尔边缘态:Floquet诱导的手性开关
我们报道了在强激光照射下石墨烯中量子霍尔效应的命运。利用Floquet理论,结合低能量描述和全紧束缚模型,阐明了与实验相关的器件选择规则、准能带结构及其与双端和多端电导的关系。我们证明了在$\pm\,\hbar\Omega/2$处的Floquet谱中出现的众所周知的动力学间隙导致除了扶手椅外的不同边缘终端的量子霍尔边缘输运关闭,其中两个项完全抵消。更有趣的是,我们证明了在狄拉克点附近改变激光偏振(圆右或圆左)可以控制霍尔电导,通过打开或关闭它,甚至通过翻转它的符号,从而逆转边缘状态的手性。这可能会导致完全控制拓扑保护传输的新途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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