Quantum multicriticality of bilayer graphene in the presence of a tunable energy gap
arXiv:1408.4804 · doi:10.1103/PhysRevB.90.205407
Abstract
We develop a theory for quantum phases and quantum multicriticality in bilayer graphene in the presence of an explicit energy gap in the non-interacting spectrum by extending previous renormalization group (RG) analyses of electron-electron interactions in gapless bilayer graphene at finite temperature to include the effect of an electric field applied perpendicular to the sample. We determine the possible outcomes of the resulting RG equations, represented by "fixed rays" along which ratios of the coupling constants remain constant and map out the leading instabilities of the system for an interaction of the form of a Coulomb interaction that is screened by two parallel conducting plates placed equidistant from the electron. We find that some of the fixed rays on the "target plane" found in the zero-field case are no longer valid fixed rays, but that all four of the isolated rays are still valid. We also find five additional fixed rays that are not present in the zero-field case. We then construct maps of the leading instability (or instabilities) of the system for the screened Coulomb-like interaction as a function of the overall interaction strength and interaction range for four values of the applied electric field. We find that the pattern of leading instabilities is the same as that found in the zero-field case, namely that the system is unstable to a layer antiferromagnetic state for short-ranged interactions, to a nematic state for long-ranged interactions, and to both for intermediate-ranged interactions. However, if the interaction becomes too long-ranged or too weak, then the system will exhibit no instabilities. The ranges at which the nematic instability first appears, the antiferromagnetic instability disappears, and the nematic instability disappears all decrease with increasing applied electric field.
17+εpages, 3 figures. Published in Phys. Rev. B; this is the published version
References in corpus (13)
- Electron fractionalization in two-dimensional graphenelike structures
- Pseudospin Magnetism in Graphene
- Quantum Anomalous Hall State in Bilayer Graphene
- Local Compressibility Measurements of Correlated States in Suspended Bilayer Graphene
- Low density ferromagnetism in biased bilayer graphene
- Lattice Theory of Pseudospin Ferromagnetism in Bilayer Graphene: Competing Orders and Interaction Induced Quantum Hall States
- Minimum Conductivity and Evidence for Phase Transitions in Ultra-clean Bilayer Graphene
- Interacting fermions on the honeycomb bilayer: from weak to strong coupling
- Competing Nematic, Anti-ferromagnetic and Spin-flux orders in the Ground State of Bilayer Graphene
- Electronic multicriticality in bilayer graphene
- Antiferromagnetism in the Hubbard Model on the Bernal-stacked Honeycomb Bilayer
- Transport Gap in Suspended Bilayer Graphene at Zero Magnetic Field
- Ordered Loop Current States in Bilayer Graphene
Cited by in corpus (7)
- Extended Hubbard model in undoped and doped monolayer and bilayer graphene: Selection rules and organizing principle among competing orders
- Isospin and momentum polarized orders in bilayer graphene
- Spin-orbit proximity in MoS/bilayer graphene heterostructures
- Spontaneous symmetry breaking in a honeycomb lattice subject to a periodic potential
- Color degeneracy of competing orders near topological defects cores in planar quadratic band touching systems
- Conductivity scaling and the effects of symmetry-breaking terms in bilayer graphene Hamiltonian
- Signatures of electronic ordering in transport in graphene flat bands