Charge excitations across a superconductor-insulator transition
arXiv:2208.04474 · doi:10.1103/PhysRevB.106.245117
Abstract
We study the superconductor-insulator transition (SIT) in the ground state of the attractive honeycomb Hubbard model in the presence of a staggered potential (a mass term), using a combination of unbiased computational methods, namely, exact diagonalization and quantum Monte Carlo simulations. We probe the nature of the lowest-energy charge excitations across the SIT and show that they are bosonic, as inferred (and shown in the strongly interacting regime) in a previous study of the same model in the square lattice. Increasing the strength of the staggered potential leads to a crossover in which bosonic low-energy excitations give way to fermionic ones within the insulating phase. We also show that the SIT belongs to the 3-XY universality class, like in its square lattice counterpart. The robustness of our results in these two lattice geometries supports the expectation that our findings are universal for SITs in clean systems.
10 pages, 10 figures - as published
References in corpus (20)
- Many-Body Physics with Ultracold Gases
- Electric Field Control of the LaAlO/SrTiO Interface Ground State
- Quantum spin-liquid emerging in two-dimensional correlated Dirac fermions
- Fidelity, dynamic structure factor, and susceptibility in critical phenomena
- Quantum critical scaling of the geometric tensors
- Tools for quantum simulation with ultracold atoms in optical lattices
- Localization of preformed Cooper-pairs in disordered superconductors
- Absence of a Spin Liquid Phase in the Hubbard Model on the Honeycomb Lattice
- The critical exponents of the superfluid transition in He4
- Fermionic quantum criticality in honeycomb and -flux Hubbard models: Finite-size scaling of renormalization-group-invariant observables from quantum Monte Carlo
- Ergodicity Breaking Transition in Finite Disordered Spin Chains
- The Higgs Mode in Disordered Superconductors Close to a Quantum Phase Transition
- Ground-state fidelity in one-dimensional gapless model
- Geometry Dependence of the Sign Problem
- Quantum Critical Points and the Sign Problem
- Superfluid to normal phase transition in strongly correlated bosons in two and three dimensions
- Interplay of local order and topology in the extended Haldane-Hubbard model
- Superfluid to Mott-insulator transition of hardcore bosons in a superlattice
- Interplay of interactions, disorder and topology in the Haldane-Hubbard model
- Size dependent nature of the magnetic-field driven superconductor-to-insulator quantum-phase transitions
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