Super-Resonant Transport of Topological Surface States Subjected to In-Plane Magnetic Fields

Song-Bo Zhang, Chang-An Li, Francisco Peña-Benitez, Piotr Surówka, Roderich Moessner, Laurens W. Molenkamp, and Björn Trauzettel
Phys. Rev. Lett. 127, 076601 – Published 10 August 2021
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Abstract

Magnetic oscillations of Dirac surface states of topological insulators are typically expected to be associated with the formation of Landau levels or the Aharonov-Bohm effect. We instead study the conductance of Dirac surface states subjected to an in-plane magnetic field in the presence of a barrier potential. Strikingly, we find that, in the case of large barrier potentials, the surface states exhibit pronounced oscillations in the conductance when varying the magnetic field, in the absence of Landau levels or the Aharonov-Bohm effect. These novel magnetic oscillations are attributed to the emergence of super-resonant transport by tuning the magnetic field, in which many propagating modes cross the barrier with perfect transmission. In the case of small and moderate barrier potentials, we identify a positive magnetoconductance due to the increase of the Fermi surface by tilting the surface Dirac cone. Moreover, we show that for weak magnetic fields, the conductance displays a shifted sinusoidal dependence on the field direction with period π and phase shift determined by the tilting direction with respect to the field direction. Our predictions can be applied to various topological insulators, such as HgTe and Bi2Se3, and provide important insights into exploring and understanding exotic magnetotransport properties of topological surface states.

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  • Received 26 February 2021
  • Revised 19 April 2021
  • Accepted 13 July 2021

DOI:https://doi.org/10.1103/PhysRevLett.127.076601

© 2021 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Song-Bo Zhang1,*, Chang-An Li1, Francisco Peña-Benitez2,3, Piotr Surówka2,3,4, Roderich Moessner2,3, Laurens W. Molenkamp5,6,3,7, and Björn Trauzettel1,3

  • 1Institut für Theoretische Physik und Astrophysik, Universität Würzburg, 97074 Würzburg, Germany
  • 2Max-Planck-Institut für Physik komplexer Systeme, Nöthnitzer Strasse 38, 01187 Dresden, Germany
  • 3Würzburg-Dresden Cluster of Excellence ct.qmat, Germany
  • 4Department of Theoretical Physics, Wrocław University of Science and Technology, 50-370 Wrocław, Poland
  • 5Physikalisches Institut (EP3), Universität Würzburg, Am Hubland, 97074 Würzburg, Germany
  • 6Institute for Topological Insulators, Universität Würzburg, Am Hubland, 97074 Würzburg, Germany
  • 7Max Planck Institute for Chemical Physics of Solids, D-01187 Dresden, Germany

  • *songbo.zhang@physik.uni-wuerzburg.de

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Issue

Vol. 127, Iss. 7 — 13 August 2021

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