Interplay between topological valley and quantum Hall edge transport

2022 | journal article. A publication with affiliation to the University of Göttingen.

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​Interplay between topological valley and quantum Hall edge transport​
Geisenhof, F. R.; Winterer, F.; Seiler, A. M.; Lenz, J.; Martin, I. & Weitz, R. T.​ (2022) 
Nature Communications13(1).​ DOI: https://doi.org/10.1038/s41467-022-31680-y 

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Authors
Geisenhof, Fabian R.; Winterer, Felix; Seiler, Anna M.; Lenz, Jakob; Martin, Ivar; Weitz, R. Thomas
Abstract
An established way of realising topologically protected states in a two-dimensional electron gas is by applying a perpendicular magnetic field thus creating quantum Hall edge channels. In electrostatically gapped bilayer graphene intriguingly, even in the absence of a magnetic field, topologically protected electronic states can emerge at naturally occurring stacking domain walls. While individually both types of topologically protected states have been investigated, their intriguing interplay remains poorly understood. Here, we focus on the interplay between topological domain wall states and quantum Hall edge transport within the eight-fold degenerate zeroth Landau level of high-quality suspended bilayer graphene. We find that the two-terminal conductance remains approximately constant for low magnetic fields throughout the distinct quantum Hall states since the conduction channels are traded between domain wall and device edges. For high magnetic fields, however, we observe evidence of transport suppression at the domain wall, which can be attributed to the emergence of spectral minigaps. This indicates that stacking domain walls potentially do not correspond to a topological domain wall in the order parameter.
Issue Date
2022
Journal
Nature Communications 
Organization
I. Physikalisches Institut - Tieftemperaturphysik 
eISSN
2041-1723
Language
English
Sponsor
Ludwig Maximilians University Munich | Center for NanoScience, Ludwig-Maximilians-Universität Mnchen https://doi.org/10.13039/501100007153
Deutsche Forschungsgemeinschaft https://doi.org/10.13039/501100001659
Materials Sciences and Engineering Division, Basic Energy Sciences, Office of Science, U.S. Dept. of Energy
Open-Access-Publikationsfonds 2022

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