Universal phase diagrams with superconducting domes for electronic flat bands
arXiv:1611.04893 · doi:10.1103/PhysRevB.96.064505
Abstract
Condensed matter systems with flat bands close to the Fermi level generally exhibit, due to their very large density of states, extraordinary high critical ordering temperatures of symmetry breaking orders, such as superconductivity and magnetism. Here we show that the critical temperatures follow one of two universal curves with doping away from a flat band depending on the ordering channel, which completely dictates both the general order competition and the phase diagram. Notably, we find that orders in the particle-particle channel (superconducting orders) survive decisively further than orders in the particle-hole channel (magnetic or charge orders) because the channels have fundamentally different polarizabilities. Thus, even if a magnetic or charge order initially dominates, superconducting domes are still likely to exist on the flanks of flat bands. We apply these general results to both the topological surface flat bands of rhombohedral ABC-stacked graphite and to the van Hove singularity of graphene.
References in corpus (15)
- The electronic properties of graphene
- High-temperature superconductivity in iron-based materials
- Electronic States of Graphene Nanoribbons
- Room temperature magnetic order on zigzag edges of narrow graphene nanoribbons
- Topological Node-Line Semimetal in Three Dimensional Graphene Networks
- Magnetic Correlations at Graphene Edges
- Electronic states and Landau levels in graphene stacks
- Observation of a localized flat-band state in a photonic Lieb lattice
- Nodal-chain metals
- Edge state on hydrogen-terminated graphite edges investigated by scanning tunneling microscopy
- Dimensional crossover in topological matter: Evolution of the multiple Dirac point in the layered system to the flat band on the surface
- Dynamical Signatures of Edge-State Magnetism on Graphene Nanoribbons
- Edge State Magnetism of Single Layer Graphene Nanostructures
- Experimental approval of the extended flat bands and gapped subbands in rhombohedral multilayer graphene
- Momentum-space structure of surface states in a topological semimetal with a nexus point of Dirac lines
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