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Transport effects of twist-angle disorder in mesoscopic twisted bilayer graphene

Published 28 Mar 2024 in cond-mat.mes-hall | (2403.19313v1)

Abstract: Magic-angle twisted bilayer graphene is a tunable material with remarkably flat energy bands near the Fermi level, leading to fascinating transport properties and correlated states at low temperatures. However, grown pristine samples of this material tend to break up into landscapes of twist-angle domains, strongly influencing the physical properties of each individual sample. This poses a significant problem to the interpretation and comparison between measurements obtained from different samples. In this work, we study numerically the effects of twist-angle disorder on quantum electron transport in mesoscopic samples of magic-angle twisted bilayer graphene. We find a significant property of twist-angle disorder that distinguishes it from onsite-energy disorder: it leads to an asymmetric broadening of the energy-resolved conductance. The magnitude of the twist-angle variation has a strong effect on conductance, while the number of twist-angle domains is of much lesser significance. We further establish a relationship between the asymmetric broadening and the asymmetric density of states of twisted bilayer graphene at angles smaller than the first magic angle. Our results show that the qualitative differences between the types of disorder in the energy-resolved conductance of twisted bilayer graphene samples can be used to characterize them at temperatures above the critical temperatures of the correlated phases, enabling systematic experimental studies of the effects of the different types of disorders also on the other properties such as the competition of the different types of correlated states appearing at lower temperatures.

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References (21)
  1. R. Bistritzer and A. H. MacDonald, Moire bands in twisted double-layer graphene, Proceedings of the National Academy of Sciences 108, 12233 (2011).
  2. J. Liu, J. Liu, and X. Dai, Pseudo Landau level representation of twisted bilayer graphene: Band topology and implications on the correlated insulating phase, Phys. Rev. B 99, 155415 (2019).
  3. N. F. Q. Yuan, H. Isobe, and L. Fu, Magic of high-order van Hove singularity, Nature Communications 10, 5769 (2019).
  4. G. Tarnopolsky, A. J. Kruchkov, and A. Vishwanath, Origin of Magic Angles in Twisted Bilayer Graphene, Phys. Rev. Lett. 122, 106405 (2019).
  5. H. Isobe, N. F. Q. Yuan, and L. Fu, Unconventional Superconductivity and Density Waves in Twisted Bilayer Graphene, Phys. Rev. X 8, 041041 (2018).
  6. F. Wu, A. H. MacDonald, and I. Martin, Theory of Phonon-Mediated Superconductivity in Twisted Bilayer Graphene, Physical Review Letters 121, 257001 (2018).
  7. T. J. Peltonen, R. Ojajärvi, and T. T. Heikkilä, Mean-field theory for superconductivity in twisted bilayer graphene, Phys. Rev. B 98, 220504 (2018).
  8. T. Hazra, N. Verma, and M. Randeria, Bounds on the Superconducting Transition Temperature : Applications to Twisted Bilayer Graphene and Cold Atoms, Physical Review X 9, 31049 (2019).
  9. E. Y. Andrei and A. H. MacDonald, Graphene bilayers with a twist, Nature Materials 19, 1265 (2020).
  10. N. Nakatsuji and M. Koshino, Moiré disorder effect in twisted bilayer graphene, Phys. Rev. B 105, 245408 (2022).
  11. S. Joy, S. Khalid, and B. Skinner, Transparent mirror effect in twist-angle-disordered bilayer graphene, Phys. Rev. Res. 2, 043416 (2020).
  12. A. Thomson and J. Alicea, Recovery of massless dirac fermions at charge neutrality in strongly interacting twisted bilayer graphene with disorder, Phys. Rev. B 103, 125138 (2021).
  13. F. Wu, E. Hwang, and S. Das Sarma, Phonon-induced giant linear-in-T𝑇Titalic_T resistivity in magic angle twisted bilayer graphene: Ordinary strangeness and exotic superconductivity, Phys. Rev. B 99, 165112 (2019).
  14. E. H. Hwang and S. Das Sarma, Impurity-scattering-induced carrier transport in twisted bilayer graphene, Phys. Rev. Research 2, 013342 (2020).
  15. M. Andelković, L. Covaci, and F. M. Peeters, DC conductivity of twisted bilayer graphene: Angle-dependent transport properties and effects of disorder, Phys. Rev. Materials 2, 034004 (2018).
  16. Z. Hou, Y.-Y. Hu, and G.-W. Yang, Moiré pattern assisted commensuration resonance in disordered twisted bilayer graphene, Phys. Rev. B 109, 085412 (2024).
  17. D. A. Bahamon, G. Gómez-Santos, and T. Stauber, Emergent magnetic texture in driven twisted bilayer graphene, Nanoscale 12, 15383 (2020).
  18. J. M. B. Lopes dos Santos, N. M. R. Peres, and A. H. Castro Neto, Graphene Bilayer with a Twist: Electronic Structure, Phys. Rev. Lett. 99, 256802 (2007).
  19. E. J. Mele, Commensuration and interlayer coherence in twisted bilayer graphene, Phys. Rev. B 81, 161405 (2010).
  20. X. Lin and D. Tománek, Minimum model for the electronic structure of twisted bilayer graphene and related structures, Phys. Rev. B 98, 081410 (2018).
  21. P. Moon and M. Koshino, Energy spectrum and quantum Hall effect in twisted bilayer graphene, Phys. Rev. B 85, 195458 (2012).
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