Published September 21, 2020 | Version v1
Journal article Open

Transport across twist angle domains in moiré graphene

  • 1. University of Illinois Urbana-Champaign
  • 2. University of Zurich
  • 3. Paul Scherrer Institute
  • 4. University of Chicago

Description

Many experiments in twisted bilayer graphene (TBG) differ from each other in terms of the details of their phase diagrams. Few controllable aspects aside, this discrepancy is largely believed to arise from the presence of a varying degree of twist angle inhomogeneity across different samples. Real-space maps indeed reveal TBG devices splitting into several large domains of different twist angles. Motivated by these observations, we study the quantum mechanical tunneling across a domain wall (DW) that separates two such regions. We show that the tunneling of the moiré particles can be understood by the formation of an effective step potential at the DW. The height of this step potential is simply a measure of the difference in twist angles. These computations lead us to identify the global transport signatures for detecting and quantifying the local twist angle variations. In particular, using Landauer-Büttiker formalism, we compute single-channel conductance ( d I / d V ) and Fano factor for shot noise (ratio of noise power and mean current). A reduction in the low-energy conductance and a zero-bias sub-meV gap in the conductance are observed which scale with the twist angle difference. One of the key findings of our work is that transport in presence of twist angle inhomogeneity is "noisy," though sub-Poissonian. In particular, the differential Fano factor peaks near the van Hove energies corresponding to the domains in the sample. The location and the strength of the peak are simply a measure of the degree of twist angle inhomogeneity.

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PhysRevResearch.2.033458.pdf

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Additional details

Identifiers

DOI
10.1103/physrevresearch.2.033458
Other
oai:uchicago.tind.io:11651

Funding

National Science Foundation
DMR-1461952
Simons Foundation
566116
Swiss National Science Foundation
European Research Council
Horizon 2020 research and innovation program
European Research Council
European Union's Horizon 2020 research and innovation programme
National Center of Competence in Research Materials' Revolution: Computational Design and Discovery of Novel Materials

UChicago Information

Division(s)
Physical Sciences Division
Department(s)
Kadanoff Center for Theoretical Physics
Center(s) or Institute(s)
James Franck Institute