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Switchable valley filter based on a graphene p−n junction in a magnetic field
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 4493557
Author(s) Sekera, T.; Bruder, C.; Mele, E. J.; Tiwari, R. P.
Author(s) at UniBasel Bruder, Christoph
Sekera, Tibor
Tiwari, Rakesh
Year 2017
Title Switchable valley filter based on a graphene p−n junction in a magnetic field
Journal Physical Review B
Volume 95
Number 20
Pages / Article-Number 205431
Abstract Low-energy excitations in graphene exhibit relativistic properties due to the linear dispersion relation close to the Dirac points in the first Brillouin zone. Two of the Dirac points located at opposite corners of the first Brillouin zone can be chosen as inequivalent, representing a new valley degree of freedom, in addition to the charge and spin of an electron. Using the valley degree of freedom to encode information has attracted significant interest, both theoretically and experimentally, and gave rise to the field of valleytronics. We study a graphene p-n junction in a uniform out-of-plane magnetic field as a platform to generate and controllably manipulate the valley polarization of electrons. We show that by tuning the external potential giving rise to the p-n junction we can switch the current from one valley polarization to the other. We also consider the effect of different types of edge terminations and present a setup where we can partition an incoming valley-unpolarized current into two branches of valley-polarized currents. The branching ratio can be chosen by changing the location of the p-n junction using a gate.
Publisher AMER PHYSICAL SOC
ISSN/ISBN 2469-9950
edoc-URL https://edoc.unibas.ch/68062/
Full Text on edoc No
Digital Object Identifier DOI 10.1103/PhysRevB.95.205431
ISI-Number 000402004100007
Document type (ISI) Article
 
   

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20/04/2024