Wigner crystal and bubble phases in graphene in the quantum Hall regime
arXiv:cond-mat/0703026 · doi:10.1103/PhysRevB.75.245414
Abstract
Graphene, a single free-standing sheet of graphite with honeycomb lattice structure, is a semimetal with carriers that have linear dispersion. A consequence of this dispersion is the absence of Wigner crystallization in graphene, since the kinetic and potential energies both scale identically with the density of carriers. We study the ground state of graphene in the presence of a strong magnetic field focusing on states with broken translational symmetry. Our mean-field calculations show that at integer fillings a uniform state is preferred, whereas at non-integer filling factors Wigner crystal states (with broken translational symmetry) have lower energy. We obtain the phase diagram of the system. We find that it is qualitatively similar to that of quantum Hall systems in semiconductor heterostructures. Our analysis predicts that non-uniform states, including Wigner crystal state, will occur in graphene in the presence of a magnetic field and will lead to anisotropic transport in high Landau levels.
New references added; 9 pages, 9 figures, (paper with high-resolution images is available at http://www.physics.iupui.edu/yogesh/graphene.pdf)
References in corpus (4)
Cited by in corpus (13)
- The electronic properties of graphene
- Phase diagram of Hertzian spheres
- Recent progresses of quantum confinement in graphene quantum dots
- Skyrme and Wigner crystals in graphene
- Flat bands and long range Coulomb interactions: conducting or insulating?
- Tomonaga-Luttinger liquid parameters of magnetic waveguides in graphene
- Giant capacitance of a plane capacitor with a two-dimensional electron gas in a magnetic field
- Influence of Landau-level mixing on Wigner crystallization in graphene
- Broken-Symmetry States of Dirac Fermions in Graphene with A Partially Filled High Landau Level
- Phase diagram for quantum Hall states in graphene
- Landau-level composition of bound exciton states in magnetic field
- Nuclear magnetic resonance line shapes of Wigner crystals in C-enriched graphene
- Two-dimensional bound excitons in real space and Landau quantization space: A comparative study