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Published July 16, 2022 | Version v1
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Transport signatures of van Hove singularities in mesoscopic twisted bilayer graphene

  • 1. International Research Centre MagTop, Institute of Physics, Polish Academy of Sciences , Al. Lotników 32/46, 02-668 Warsaw, Poland
  • 2. Faculty of Physics, University of Warsaw, ulica Pasteura 5, 02-093 Warsaw, Poland
  • 3. Department of Applied Physics, Aalto University, 00076 Aalto, Espoo, Finland
  • 4. International Research Centre MagTop, Institute of Physics, Polish Academy of Sciences, Al. Lotników 32/46, 02-668 Warsaw, Poland

Description

Magic-angle twisted bilayer graphene exhibits quasi-flat low-energy bands with van Hove singularities close to the Fermi level. These singularities play an important role in the exotic phenomena observed in this material, such as superconductivity and magnetism, by amplifying electronic correlation effects. In this work, we study the correspondence of four-terminal conductance and the Fermi surface topology as a function of the twist angle, pressure, and energy in mesoscopic samples of small-angle twisted bilayer graphene. We establish a correspondence between features in the wide-junction conductance and the presence of van Hove singularities in the density of states. Moreover, we identify additional transport features, such as a large, pressure-tunable minimal conductance,  conductance peaks coinciding with non-singular band crossings, and unusually large conductance oscillations as a function of the system size. Our results suggest that twisted bilayer graphene close the magic angle is a unique system featuring simultaneously large conductance due to the quasi-flat bands, strong quantum nonlinearity due to the van Hove singularities and high sensitivity to external parameters, which could be utilized in high-frequency device applications and sensitive detectors.

The provided repository contains all data and scripts to reproduce the figures of the manuscript.

Notes

The research was partially supported by the Foundation for Polish Science through the IRA Programme co-financed by EU within SG OP. T. H. acknowledges the computational resources provided by the Aalto Science-IT project and the financial support from the Academy of Finland Project No.331094. A. L. acknowledges support from a Marie Sk{\l}odowska-Curie Individual Fellowship under grant MagTopCSL (ID 101029345). J.T. work was supported by the QuantERA II Call 2021 grant TOBIS, by Polish National Science Center via 2021/03/Y/ST3/00191. We acknowledge the access to the computing facilities of the Interdisciplinary Center of Modeling at the University of Warsaw, Grant No. G86-1064.

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Funding

MagTopCSL – Magnetism, Berry-curvature engineering and topology in chalcogenide superlattices and heterostructures 101029345
European Commission
Designer topological matter 331094
Academy of Finland
QuantERA II – QuantERA II ERA-NET Cofund in Quantum Technologies 101017733
European Commission