Isolated and hybrid bilayer graphene quantum rings

M. Mirzakhani, D. R. da Costa, and F. M. Peeters
Phys. Rev. B 105, 115430 – Published 28 March 2022

Abstract

Using the continuum model, we investigate the electronic properties of two types of bilayer graphene (BLG) quantum ring (QR) geometries: (i) An isolated BLG QR and (ii) a monolayer graphene (MLG) with a QR put on top of an infinite graphene sheet (hybrid BLG QR). Solving the Dirac-Weyl equation in the presence of a perpendicular magnetic field and applying the infinite mass boundary condition at the ring boundaries, we obtain analytical results for the energy levels and corresponding wave spinors for both structures. In the case of isolated BLG QR, we observe a sizable and magnetically tunable band gap which agrees with the tight-binding transport simulations. Our analytical results also show the intervalley symmetry EeK(m)=EhK(m) between the electron (e) and the hole (h) states (m is the angular momentum quantum number) for the energy spectrum of the isolated BLG QR. The presence of interface boundary in a hybrid BLG QR modifies drastically the energy levels as compared with that of an isolated BLG QR. Its energy levels are tunable from MLG dot to isolated BLG QR and to MLG Landau energy levels as the magnetic field is varied. Our predictions can be verified experimentally using different techniques such as by magnetotransport measurements.

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  • Received 4 November 2020
  • Revised 14 March 2022
  • Accepted 18 March 2022

DOI:https://doi.org/10.1103/PhysRevB.105.115430

©2022 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

M. Mirzakhani1,2,*, D. R. da Costa3,4,†, and F. M. Peeters5,‡

  • 1School of Physics, University of the Witwatersrand, Johannesburg, Wits 2050, South Africa
  • 2Center for Theoretical Physics of Complex Systems, Institute for Basic Science, Daejeon 34126, South Korea
  • 3Departamento de Fisica, Universidade Federal do Ceará, Campus do Pici, 60455-900 Fortaleza, Ceará, Brazil
  • 4Key Laboratory for Micro/Nano Optoelectronic Devices of Ministry of Education & Hunan Provincial Key Laboratory of Low-Dimensional Structural Physics and Devices, School of Physics and Electronics, Hunan University, Changsha 410082, China
  • 5Department of Physics, University of Antwerp, Groenenborgerlaan 171, B-2020 Antwerp, Belgium

  • *mirzakhani@ibs.re.kr
  • diego_rabelo@fisica.ufc.br
  • francois.peeters@uantwerpen.be

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Issue

Vol. 105, Iss. 11 — 15 March 2022

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