Phase diagram of interacting spinless fermions on the honeycomb lattice
arXiv:1609.01161 · doi:10.1088/1361-648X/29/4/043002
Abstract
Fermions hopping on a hexagonal lattice represent one of the most active research field in condensed matter since the discovery of graphene in 2004 and its numerous applications. Another exciting aspect of the interplay between geometry and quantum mechanical effects is given by the Haldane model (F. D. M. Haldane, Phys. Rev. Lett. 61, 2015 (1988)) where spinless fermions experiencing a certain flux pattern on the honeycomb lattice leads to the stabilization of a topological phase of matter, distinct from a Mott insulator and dubbed Chern insulator nowadays. In this context, it is crucial to understand the role of interactions and this review will describe recent results that have been obtained for a minimal model, namely spinless fermions fermions with nearest and next-nearest neighbour density-density interactions on the honeycomb lattice at half-filling. Topics addressed include an introduction of the minimal model and a discussion of the possible instabilities of the Dirac semimetal, a presentation of various theroretical and numerical approaches, and a summary of the results with a particular emphasis on the stability or not of some exotic quantum phases such as charge ordered ones (similar to Wigner crystals) or spontaneous Chern insulator phase.
Published version with minor changes
References in corpus (14)
- Electric Field Effect in Atomically Thin Carbon Films
- The density-matrix renormalization group in the age of matrix product states
- Suspended Graphene: a bridge to the Dirac point
- Intrinsic and Rashba Spin-orbit Interactions in Graphene Sheets
- Topological Mott Insulators
- On the Origin of Zigzag Magnetic Order in Iridium Oxide Na2IrO3
- Electron fractionalization in two-dimensional graphenelike structures
- Is graphene in vacuum an insulator?
- Theory of interacting electrons on the honeycomb lattice
- Emergent space-time supersymmetry in 3D Weyl and 2D Dirac semimetals
- Unconventional superconductivity on honeycomb lattice: the theory of Kekule order parameter
- Quantum superconducting criticality in graphene and topological insulators
- Charge instabilities and topological phases in the extended Hubbard model on the honeycomb lattice with enlarged unit cell
- Efficient Continuous-time Quantum Monte Carlo Method for the Ground State of Correlated Fermions
Cited by in corpus (8)
- Dirac Fermions with Competing Orders: Non-Landau Transition with Emergent Symmetry
- Finite correlation length scaling with infinite projected entangled pair states at finite temperature
- Extended Hubbard model in undoped and doped monolayer and bilayer graphene: Selection rules and organizing principle among competing orders
- Antiferromagnetic transitions of Dirac fermions in three dimensions
- Pair-density-wave superconductivity: a microscopic model on 2D honeycomb lattice
- Interacting spinless fermions on the square lattice: Charge order, phase separation, and superconductivity
- Stabilizing Topological Superfluidity of Lattice Fermions
- Hubbard Model on the Honeycomb Lattice with an Indefinite Long-Range Interaction