4.2 Article

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

期刊

PHYSICAL REVIEW RESEARCH
卷 3, 期 1, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevResearch.3.013201

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资金

  1. ANPCyT [PICTs 2016-0791, 2018-01509]
  2. CONICET [PIP 11220150100506]
  3. FondeCyT (Chile) [1170917]
  4. EU Horizon 2020 research and innovation program under the Marie-Sklodowska-Curie Grant [873028]
  5. Simons Foundation
  6. ICTP associateship program
  7. SeCyT-UNCuyo [2019 06/C603]

向作者/读者索取更多资源

This study investigates the fate of the quantum Hall effect in graphene under intense laser illumination, revealing that changing the laser polarization can control the Hall conductance, potentially providing new avenues for fully controlling topologically protected transport.
We report on the fate of the quantum Hall effect in graphene under intense 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 multiterminal conductance in a device setup as relevant for experiments. We show that the well-known dynamical gaps that appear in the Floquet spectrum at +/- h 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.

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