Geometric inhibition of superflow in single-layer graphene suggests a staggered-flux superconductivity in bilayer and trilayer graphene
arXiv:2401.04106 · doi:10.1021/acs.nanolett.4c01390
Abstract
In great contrast to the numerous discoveries of superconductivity in layer-stacked graphene systems, the absence of superconductivity in the simplest and cleanest monolayer graphene remains a big puzzle. Here, through realistic computation of electronic structure, we identify a systematic trend that superconductivity appears to emerge only upon alteration of the low-energy electronic lattice from the underlying honeycomb atomic structure. We then demonstrate that this inhibition can result from from geometric frustration of the bond lattice that disables quantum phase coherence of the order parameter residing on it. In comparison, upon deviating from the honeycomb lattice, relief of geometric frustration allows robust superfluidity with non-trivial spatial structure. For the specific examples of bilayer and trilayer graphene under an external electric field, such bond centered order parameter would develop superfluidity with staggered flux that breaks the time-reversal symmetry. Our study also suggests the possible realization of the long-sought superconductivity in single-layer graphene via the application of uni-directional strain.
References in corpus (19)
- Boron nitride substrates for high-quality graphene electronics
- Intrinsic and Extrinsic Performance Limits of Graphene Devices on SiO2
- CsVSb: a topological kagome metal with a superconducting ground state
- Tunable Phase Boundaries and Ultra-Strong Coupling Superconductivity in Mirror Symmetric Magic-Angle Trilayer Graphene
- Superconductivity in rhombohedral trilayer graphene
- Superconductivity and normal-state properties of kagome metal RbV3Sb5 single crystals
- Isospin magnetism and spin-triplet superconductivity in Bernal bilayer graphene
- Quantum Criticality in Twisted Transition Metal Dichalcogenides
- Band geometry, Berry curvature and superfluid weight
- Superfluid weight bounds from symmetry and quantum geometry in flat bands
- Compactly-supported Wannier functions and algebraic -theory
- No observation of chiral flux current in the topological kagome metal CsVSb
- Superfluidity of Bosons in Kagome Lattices with Frustration
- Gated Tuned Superconductivity and Phonon Softening in Mono- and Bilayer MoS
- Direct observation of quantum anomalous vortex in Fe(Se,Te)
- Transport in the emergent Bose liquid: Bad metal, strange metal, and weak insulator, all in one system
- Electronic anisotropy in magic-angle twisted trilayer graphene
- Probing a Bose Metal via Electrons: Inescapable non-Fermi liquid scattering and pseudogap physics
- Manipulable compact many-body localization and absence of superfluidity in geometrically frustrated systems