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  5. Magnetization Signatures of Light-Induced Quantum Hall Edge States

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Article
en
2015

Magnetization Signatures of Light-Induced Quantum Hall Edge States

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en
2015
Vol 114 (24)
Vol. 114
DOI: 10.1103/physrevlett.114.246802

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Joel Moore
Joel Moore

University of California, Berkeley

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J. P. Dahlhaus
Benjamin M. Fregoso
Joel Moore

Abstract

Circularly polarized light opens a gap in the Dirac spectrum of graphene and topological insulator (TI) surfaces, thereby inducing a quantum Hall-like phase. We propose to detect the accompanying edge states and their current by the magnetic field they produce. The topological nature of the edge states is reflected in the mean orbital magnetization of the sample, which shows a universal linear dependence as a function of a generalized chemical potential-independent of the driving details and the properties of the material. The proposed protocol overcomes several typically encountered problems in the realization and measurement of Floquet phases, including the destructive effects of phonons and coupled electron baths and provides a way to occupy the induced edge states selectively. We estimate practical experimental parameters and conclude that the magnetization signature of the Floquet topological phase may be detectable with current techniques.

How to cite this publication

J. P. Dahlhaus, Benjamin M. Fregoso, Joel Moore (2015). Magnetization Signatures of Light-Induced Quantum Hall Edge States. , 114(24), DOI: https://doi.org/10.1103/physrevlett.114.246802.

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Publication Details

Type

Article

Year

2015

Authors

3

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1103/physrevlett.114.246802

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