Inducing superconductivity in bilayer graphene by alleviation of the Stoner blockade
arXiv:2303.04176 · doi:10.1103/PhysRevB.108.024510
Abstract
External magnetic fields conventionally suppress superconductivity, both by orbital and paramagnetic effects. A recent experiment has shown that in a Bernal stacked bilayer graphene system, the opposite occurs -- a finite critical magnetic field is necessary to observe superconducting features occurring in the vicinity of a magnetic phase transition. We propose an extraordinary electronic-correlation-driven mechanism by which this anomalous superconductivity manifests. Specifically, the electrons tend to avoid band occupations near high density of states regions due to their mutual repulsion. Considering the nature of spontaneous symmetry breaking involved, we dub this avoidance Stoner blockade. We show how a magnetic field softens this blockade, allowing weak superconductivity to take place, consistent with experimental findings. Our principle prediction is that a small reduction of the Coulomb repulsion would result in sizable superconductivity gains, both in achieving higher critical temperatures and expanding the superconducting regime. Within the theory we present, magnetic field and spin-orbit coupling of the Ising type have a similar effect on the Bernal stacked bilayer graphene system, elucidating the emergence of superconductivity when the system is proximitized to a substrate. We further demonstrate in this paper the sensitivity of superconductivity to disorder in the proposed scenario. We find that a disorder that does not violate Anderson's theorem may still induce a reduction of through its effect on the density of states, establishing the delicate nature of the Bernal bilayer graphene superconductor.
Published version
References in corpus (23)
- The electronic properties of graphene
- Ultrahigh electron mobility in suspended graphene
- Boron nitride substrates for high-quality graphene electronics
- Charged Impurity Scattering in Graphene
- Atomic Structure of Graphene on SiO2
- The electronic properties of bilayer graphene
- High-Resolution Scanning Tunneling Microscopy Imaging of Mesoscopic Graphene Sheets on an Insulating Surface
- Multicomponent fractional quantum Hall effect in graphene
- Isospin magnetism and spin-triplet superconductivity in Bernal bilayer graphene
- Tuning electron correlation in magic-angle twisted bilayer graphene using Coulomb screening
- Spin-Orbit Enhanced Superconductivity in Bernal Bilayer Graphene
- Inter-valley coherent order and isospin fluctuation mediated superconductivity in rhombohedral trilayer graphene
- Unconventional superconductivity in systems with annular Fermi surfaces: Application to rhombohedral trilayer graphene
- Acoustic-phonon-mediated superconductivity in Bernal bilayer graphene
- Superconductivity from electronic interactions and spin-orbit enhancement in bilayer and trilayer graphene
- Theory of correlated insulators and superconductivity in twisted bilayer graphene
- Spin-triplet superconductivity at the onset of isospin order in biased bilayer graphene
- Multilayer graphenes as a platform for interaction-driven physics and topological superconductivity
- Acoustic-phonon-mediated superconductivity in moiréless graphene multilayers
- Enhanced superconductivity through virtual tunneling in Bernal bilayer graphene coupled to WSe
- Magnetic ratchet effect in bilayer graphene
- Strain Disorder and Gapless Intervalley Coherent Phase in Twisted Bilayer Graphene
- Anderson's theorem for correlated insulating states in twisted bilayer graphene
Cited by in corpus (9)
- Nematicity and Orbital Depairing in Superconducting Bernal Bilayer Graphene with Strong Spin Orbit Coupling
- Correlated Phases in Spin-Orbit-Coupled Rhombohedral Trilayer Graphene
- Superconductivity and spin canting in spin-orbit proximitized rhombohedral trilayer graphene
- Gate-Defined Topological Josephson Junctions in Bernal Bilayer Graphene
- Band Renormalization, Quarter Metals, and Chiral Superconductivity in Rhombohedral Tetralayer Graphene
- Quantum Geometric Kohn-Luttinger Superconductivity
- Symmetry-broken metallic orders in spin-orbit-coupled Bernal bilayer graphene
- Ephemeral Superconductivity Atop the False Vacuum
- Nematic Enhancement of Superconductivity in Multilayer Graphene via Quantum Geometry