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3–7 juil. 2023
Cité des sciences et de l'Industrie, Paris
Fuseau horaire Europe/Paris

Imaging tunable quantum Hall broken-symmetry orders in graphene

5 juil. 2023, 09:30
30m
Salle Henriette Faraggi

Salle Henriette Faraggi

Contribution orale MC20 Physique mésoscopique Mini-colloques: MC20 Physique mésoscopique

Orateur

Cecile REPELLIN

Description

When electrons populate a flat band their kinetic energy becomes negligible, forcing them to organize in exotic many-body states to minimize their Coulomb energy. The zeroth Landau level of graphene under magnetic field is a particularly interesting strongly interacting flat band because inter-electron interactions are predicted to induce a rich variety of broken-symmetry states with distinct topological and lattice-scale orders. Evidence for these stems mostly from indirect transport experiments that suggest that broken-symmetry states are tunable by boosting the Zeeman energy or by dielectric screening of the Coulomb interaction. However, confirming the existence of these ground states requires a direct visualization of their lattice-scale orders. Here, we image three distinct broken-symmetry phases in graphene using scanning tunneling spectroscopy. We explore the phase diagram by tuning the screening of the Coulomb interaction by a low or high dielectric constant environment, and with a magnetic field. In the unscreened case, we unveil a Kekule bond order, consistent with observations of an insulating state undergoing a magnetic-field driven Kosterlitz-Thouless transition. Under dielectric screening, a sublattice-unpolarized ground state emerges at low magnetic fields, and transits to a charge-density-wave order with partial sublattice polarization at higher magnetic fields. The Kekule and charge-density-wave orders furthermore coexist with additional, secondary lattice-scale orders that enrich the phase diagram beyond current theory predictions. This screening-induced tunability of broken-symmetry orders may prove valuable to uncover correlated phases of matter in other quantum materials.

Affiliation de l'auteur principal LPMMC, Grenoble

Auteurs principaux

Adolfo G. Grushin (Insitut Néel) Dr Alexis Coissard (Institut Néel) Dr Benjamin Sacépé (Institut Néel) Cecile REPELLIN Clemens Winkelmann (Institut Néel) David Wander (Institut Néel) Frédéric Gay (Institut Néel) Hadrien Vignaud (Insitut Néel) Dr Hermann Sellier (Institut Néel) Kenji Watanabe (NIMS) Takashi Taniguchi (NIMS) Hervé Courtois (Institut Néel)

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