Possible Triplet Superconductivity in Graphene at Low Filling
arXiv:1403.0295 · doi:10.1103/PhysRevB.90.245114
Abstract
We study the Hubbard model on the honeycomb lattice with nearest-neighbor hopping () and next-nearest-neighbor one (). When , the single-particle spectrum is featured by the continuously distributed Van-Hove saddle points at the band bottom, where the density of states diverges in power-law. We investigate possible unconventional superconductivity in such system with Fermi level close to the band bottom by employing both random phase approximation and determinant quantum Monte-Carlo approaches. Our study reveals a possible triplet superconductivity in this system with appropriate interactions. Our results might provide a possible route to look for triplet superconductivity with relatively-high transition temperature in a low-filled graphene and other similar systems.
5.1pages, 9 figures
References in corpus (11)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Unconventional pairing originating from disconnected Fermi surfaces in superconducting LaFeAsOF}
- Near-degeneracy of several pairing channels in multiorbital models for the Fe-pnictides
- Flat bands and Wigner crystallization in the honeycomb optical lattice
- Scalar spin chirality and quantum Hall effect on a triangular lattice
- Cyclotron Resonance study of the electron and hole velocity in graphene monolayers
- Simulation and detection of Dirac fermions with cold atoms in an optical lattice
- Superconductivity in the repulsive Hubbard model: an asymptotically exact weak-coupling solution
- Kohn-Luttinger superconductivity in graphene
- Pairing symmetry in a two-orbital Hubbard model on a square lattice
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