Publication
Title
Quantum transport in graphene Hall bars : effects of side gates
Author
Abstract
Quantum electron transport in side-gated graphene Hall bars is investigated in the presence of quantizing external magnetic fields. The asymmetric potential of four side-gates distorts the otherwise flat bands of the relativistic Landau levels, and creates new propagating states in the Landau spectrum (i.e. snake states). The existence of these new states leads to an interesting modification of the bend and Hall resistances, with new quantizing plateaus appearing in close proximity of the Landau levels. The electron guiding in this system can be understood by studying the current density profiles of the incoming and outgoing modes. From the fact that guided electrons fully transmit without any backscattering (similarly to edge states), we are able to analytically predict the values of the quantized resistances, and they match the resistance data we obtain with our numerical (tight-binding) method. These insights in the electron guiding will be useful in predicting the resistances for other side-gate configurations, and possibly in other system geometries, as long as there is no backscattering of the guided states.
Language
English
Source (journal)
Solid state communications. - New York, N.Y.
Publication
New York, N.Y. : 2017
ISSN
0038-1098
DOI
10.1016/J.SSC.2017.03.012
Volume/pages
257 (2017) , p. 20-26
ISI
000401101400005
Full text (Publisher's DOI)
Full text (publisher's version - intranet only)
UAntwerpen
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Research group
Project info
Publication type
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Affiliation
Publications with a UAntwerp address
External links
Web of Science
Record
Identifier
Creation 12.06.2017
Last edited 09.10.2023
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