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Spin skyrmion gaps as signatures of strong-coupling insulators in magic-angle twisted bilayer graphene
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The flat electronic bands in magic-angle twisted bilayer graphene (MATBG) host a variety of correlated insulating ground states, many of which are predicted to support charged excitations with topologically non-trivial spin and/or valley skyrmion textures. However, it has remained challenging to experimentally address their ground state order and excitations, both because some of the proposed states do not couple directly to experimental probes, and because they are highly sensitive to spatial inhomogeneities in real samples. Here, using a scanning single-electron transistor, we observe thermodynamic gaps at even integer moir\'e filling factors at low magnetic fields. We find evidence of a field-tuned crossover from charged spin skyrmions to bare particle-like excitations, suggesting that the underlying ground state belongs to the manifold of strong-coupling insulators. From the spatial dependence of these states and the chemical potential variation within the flat bands, we infer a link between the stability of the correlated ground states and local twist angle and strain. Our work advances the microscopic understanding of the correlated insulators in MATBG and their unconventional excitations.
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Cited by 3 Pith papers
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Ferromagnetism vs. Antiferromagnetism in Narrow-Band Systems: Competition Between Quantum Geometry and Band Dispersion
In narrow-band Hubbard models, quantum geometry drives ferromagnetism and band dispersion drives antiferromagnetism, with the transition set by a competition between the quantum metric and a dispersion scale.
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Interplay between many-body correlations, strain and lattice relaxation in twisted bilayer graphene
Strain splitting of the flat bands plus relaxation-induced particle-hole asymmetry in a DMFT treatment of the heavy-fermion model accounts for the persistent ~10 meV STM/QTM feature, the entropy behavior, and the asym...
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Emergent Interacting Phases in the Strong Coupling Limit of Twisted M-Valley Moir\'e Systems: Application to SnSe${}_2$
Twisted SnSe2 realizes quasi-1D triangular (AA) and kagome (AB) interacting models with predicted dimer, valence-bond-solid, and frustrated spin-liquid phases.
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