Anomalous superconductivity and superfluidity in repulsive fermion systems
arXiv:1511.03781 · doi:10.3367/UFNr.0185.201508a.0785
Abstract
We discuss the mechanisms of unconventional superconductivity and superfluidity in 3D and 2D fermionic systems with purely repulsive interaction at low densities. We construct phase diagrams of these systems and find the areas of the superconducting state in free space, as well as on the lattice in the framework of the Fermi-gas model with hard-core repulsion, the Hubbard model, the Shubin-Vonsovsky model, and the model. We demonstrate that the critical superconducting temperature can be greatly increased in the spin-polarized case or in a two-band situation already at low densities. The proposed theory is based on the Kohn-Luttinger mechanism or its generalizations and explains or predicts anomalous -, -, and -wave pairing in various materials, such as high-temperature superconductors, the idealized monolayer and bilayer of doped graphene, heavy-fermion systems, layered organic superconductors, superfluid He, spin-polarized He mixtures in He, ultracold quantum gases in magnetic traps, and optical lattices.
38 pages, 19 figures
References in corpus (59)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Many-Body Physics with Ultracold Gases
- Ultrahigh electron mobility in suspended graphene
- Boron nitride substrates for high-quality graphene electronics
- Chiral tunneling and the Klein paradox in graphene
- Giant Intrinsic Carrier Mobilities in Graphene and Its Bilayer
- Ultracold atomic gases in optical lattices: mimicking condensed matter physics and beyond
- Micrometer-scale ballistic transport in encapsulated graphene at room temperature
- A tight-binding approach to uniaxial strain in graphene
- STM Spectroscopy of ultra-flat graphene on hexagonal boron nitride
- Electric Field Control of the LaAlO/SrTiO Interface Ground State
- Bipolar supercurrent in graphene
- Quantum interference and Klein tunneling in graphene heterojunctions
- The electronic properties of bilayer graphene
- Measurement of Scattering Rate and Minimum Conductivity in Graphene
- Atomically thin boron nitride: a tunnelling barrier for graphene devices
- Electronic states and Landau levels in graphene stacks
- Strong Coulomb drag and broken symmetry in double-layer graphene
- Observation of Phase Separation in a Strongly-Interacting Imbalanced Fermi Gas
- Merging of Dirac points in a two-dimensional crystal
- Josephson effect in ballistic graphene
- 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
- Josephson Current and Multiple Andreev Reflections in Graphene SNS Junctions
- Density waves and Cooper pairing on the honeycomb lattice
- Zero modes of tight binding electrons on the honeycomb lattice
- Chiral d-wave superconductivity in doped graphene
- Dirac-point engineering and topological phase transitions in honeycomb optical lattices
- Screening, Kohn anomaly, Friedel oscillation, and RKKY interaction in bilayer graphene
- Observation of pair condensation in the quasi-2D BEC-BCS crossover
- Kohn-Luttinger superconductivity in graphene
- Interplay of Coulomb and electron-phonon interactions in graphene
- BCS-BEC crossover on the two-dimensional honeycomb lattice
- Ultracold Fermions in a Graphene-Type Optical Lattice
- Superconductivity in the Honeycomb-Lattice Pnictide SrPtAs
- Proximity Induced Superconductivity and Multiple Andreev Reflections in Few-Layer-Graphene
- Superconductivity from weak repulsion in hexagonal lattice systems
- Spin-Imbalanced Quasi-Two-Dimensional Fermi Gases
- Van der Waals and Casimir interactions between two graphene sheets
- Emergent BCS regime of the two-dimensional fermionic Hubbard model: ground-state phase diagram
- Chiral d-wave superconductivity on the honeycomb lattice close to the Mott state
- Pomeranchuk instability in doped graphene
- On the theory of superconductivity in the extended Hubbard model: Spin-fluctuation pairing
- Instabilities on graphene's honeycomb lattice with electron-phonon interactions
- Interplay of superconductivity and spin density wave order in doped graphene
- Quantum criticality of reconstructing Fermi surfaces in antiferromagnetic metals
- Asymptotic freedom at zero temperature in crystalline membranes
- Odd momentum pairing and superconductivity in vertical graphene heterostructures
- Defects in the (d+id)-wave superconducting state in heavily doped graphene
- Dual Features of Magnetic Susceptibility in Superconducting Cuprates: a comparison to inelastic neutron scattering
- The Kohn-Luttinger effect and anomalous pairing in new superconducting systems and graphene
- Electronic correlations in graphite and carbon nanotubes from Auger spectroscopy
- The Kohn-Luttinger superconductivity in idealized doped graphene
- Transition from a mixed to a pure d-wave symmetry in superconducting optimally doped YBaCuO thin films under applied fields
- Effect of long-range interactions on the Kohn-Luttinger mechanism of the Cooper instability in the Shubin-Vonsowsky model
- Phase diagram of the Kohn-Luttinger superconducting state for bilayer graphene
- Kohn-Luttinger superconductivity in monolayer and bilayer semimetals with the Dirac spectrum