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Imaging tunable quantum Hall broken-symmetry orders in graphene
Alexis Coissard1, David Wander1, Hadrien Vignaud1
1Université Grenoble Alpes, CNRS, Grenoble INP, Institut Néel, Grenoble, France.
Nature
|May 4, 2022
Summary
Researchers visualized exotic electronic states in graphene
Area of Science:
- Condensed Matter Physics
- Quantum Materials
- Strongly Correlated Electron Systems
Background:
- Electrons in flat bands exhibit negligible kinetic energy, leading to exotic many-body states driven by Coulomb interactions.
- The zeroth Landau level in graphene is a prime example of a strongly interacting flat band, theoretically predicted to host diverse broken-symmetry states.
Purpose of the Study:
- To directly visualize and characterize the lattice-scale orders of broken-symmetry phases in graphene.
- To explore the tunability of these phases by manipulating Coulomb interaction screening and magnetic fields.
Main Methods:
- Utilized scanning tunnelling spectroscopy to image distinct broken-symmetry phases in graphene.
- Investigated the phase diagram by varying the dielectric environment (low/high dielectric constant) and magnetic field strength.
Main Results:
- Identified a Kekulé bond order in unscreened graphene, aligning with Kosterlitz-Thouless transition observations.
- Observed a sublattice-unpolarized ground state under dielectric screening at low magnetic fields, transitioning to a charge-density-wave order with partial sublattice polarization at higher fields.
- Discovered secondary lattice-scale orders coexisting with Kekulé and charge-density-wave orders, expanding beyond theoretical predictions.
Conclusions:
- Direct visualization confirms multiple broken-symmetry phases in graphene, tunable via dielectric screening.
- The findings reveal a richer phase diagram than predicted, highlighting the importance of Coulomb interaction screening.
- This work provides a valuable platform for exploring correlated phases in other quantum materials.

