Magnetic edge states in graphene in nonuniform magnetic fields

Sunghun Park and H.-S. Sim
Phys. Rev. B 77, 075433 – Published 28 February 2008

Abstract

We theoretically study the electronic properties of a graphene sheet on the xy plane in a spatially nonuniform magnetic field, B=B0ẑ in one domain and B=B1ẑ in the other domain, in the quantum Hall regime, and in the low-energy limit. We find that the magnetic edge states of the Dirac fermions, formed along the boundary between the two domains, have features strongly dependent on whether B0 is parallel or antiparallel to B1. In the parallel case, when the Zeeman spin splitting can be ignored, the magnetic edge states originating from the n=0 Landau levels of the two domains have dispersionless energy levels contrary to those from the n0 levels. Here, n is the graphene Landau-level index. They become dispersive as the Zeeman splitting becomes finite or as an electrostatic step potential is additionally applied. In the antiparallel case, the n=0 magnetic edge states split into electronlike and holelike current-carrying states. The energy gap between the electronlike and holelike states can be created by the Zeeman splitting or by the step potential. These features are attributed to the fact that the pseudospin of the magnetic edge states couples to the direction of the magnetic field. We propose an Aharonov–Bohm interferometry setup in a graphene ribbon for an experimental study of the magnetic edge states.

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  • Received 15 November 2007

DOI:https://doi.org/10.1103/PhysRevB.77.075433

©2008 American Physical Society

Authors & Affiliations

Sunghun Park and H.-S. Sim

  • Department of Physics, Korea Advanced Institute of Science and Technology, Daejeon 305-701, Korea

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Issue

Vol. 77, Iss. 7 — 15 February 2008

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