2022
DOI: 10.1038/s41467-021-27646-1
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Imaging moiré deformation and dynamics in twisted bilayer graphene

Abstract: In ‘magic angle’ twisted bilayer graphene (TBG) a flat band forms, yielding correlated insulator behavior and superconductivity. In general, the moiré structure in TBG varies spatially, influencing the overall conductance properties of devices. Hence, to understand the wide variety of phase diagrams observed, a detailed understanding of local variations is needed. Here, we study spatial and temporal variations of the moiré pattern in TBG using aberration-corrected Low Energy Electron Microscopy (AC-LEEM). We f… Show more

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Cited by 21 publications
(20 citation statements)
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“…While the excitonic phase in TMDCs is far more stable than that in semiconductor quantum wells, conventional probes of excitons run into several challenges when attempting to characterize the Mott transition. Spatially averaged techniques are prone to inhomogeneous broadening, a result of unavoidable nanoscale inhomogeneity, which emerges during fabrication of all van der Waals (vdW) materials. Furthermore, techniques reliant on interband selection rules can easily present a distorted picture of the Mott transition, since only a tiny fraction of excitons, those that obey the selection rules, can contribute to the measured response. This restriction can easily obscure the complex interplay of intervalley scattering, Auger recombination, , and interlayer tunneling within TMDCs. , …”
mentioning
confidence: 99%
“…While the excitonic phase in TMDCs is far more stable than that in semiconductor quantum wells, conventional probes of excitons run into several challenges when attempting to characterize the Mott transition. Spatially averaged techniques are prone to inhomogeneous broadening, a result of unavoidable nanoscale inhomogeneity, which emerges during fabrication of all van der Waals (vdW) materials. Furthermore, techniques reliant on interband selection rules can easily present a distorted picture of the Mott transition, since only a tiny fraction of excitons, those that obey the selection rules, can contribute to the measured response. This restriction can easily obscure the complex interplay of intervalley scattering, Auger recombination, , and interlayer tunneling within TMDCs. , …”
mentioning
confidence: 99%
“…It has been previously argued that, for a large twist angle, the gaining vdW energy cannot compensate for the decreasing intralayer elastic energy. 14,16,24 This results in no change of vdW stacking energy between rigid and relaxed structures, ultimately indicating the absence of reconstruction. However, our analysis of ILE over different θ values (Figure S6) clearly shows a small but relatively significant difference between the rigid and relaxed structures of higher θ TBGs.…”
Section: Iiid Analyzing Extent Of Reconstruction In Strained and Unst...mentioning
confidence: 99%
“…Previous studies have attributed the minor atomic displacements of relaxed large θ TBGs to an insignificant change in the atomic registry of local domains, indicating the absence of reconstruction. [14][15][16]54 However, examining TBG systems from an atomistic perspective and employing our subdomain identification method, we show considerable changes in the local registries for large θ TBGs. We used the area fraction measurement to capture the structural changes in local domains of relaxed and unrelaxed geometries.…”
Section: Iiic Detecting Moiréreconstruction In High Twist Angle Tbgsmentioning
confidence: 99%
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