Anyonic phase transitions in the 1D extended Hubbard model with fractional statistics
arXiv:2410.00089 · doi:10.1103/7n1c-vq2p
Abstract
We study one-dimensional (1D) lattice anyons with extended Hubbard interactions at unit filling using bosonization and numerical simulations. The behavior can be continuously tuned from Bosonic to Fermionic behavior by adjusting the topological exchange angle , which leads to a competition of different instabilities. We present the bosonization theory in presence of dynamic gauge fields, which predicts a phase diagrams of four different gapped phases with distinct dominant correlations. Advanced numerical simulations determine and analyze the exact phase transitions between Mott insulator, charge density wave, dimerized state, and Haldane insulator, all of which meet at a multi-critical line in the parameter space of anyonic angle , onsite interaction , and nearest neighbor repulsion . Superfluid and pair-superfluid phases are stable in a region of small .
16 pages, 9 figures, more details and the final version can be found at https://www.physik.uni-kl.de/eggert/
References in corpus (31)
- Many-Body Physics with Ultracold Gases
- Quantum criticality beyond the Landau-Ginzburg-Wilson paradigm
- Periodically-driven quantum systems: Effective Hamiltonians and engineered gauge fields
- Fidelity, dynamic structure factor, and susceptibility in critical phenomena
- Ultracold atoms out of equilibrium
- Hidden order in 1D Bose insulators
- Atomic three-body loss as a dynamical three-body interaction
- Rise and fall of hidden string order of lattice bosons
- Phase diagram of the extended Bose Hubbard model
- Deconfined quantum critical point in one dimension
- Realizing a 1D topological gauge theory in an optically dressed BEC
- Quantum phase transitions beyond Landau-Ginzburg theory in one-dimensional space revisited
- Pair Superfluidity of Three-Body Constrained Bosons in Two Dimensions
- Spectral and Entanglement Properties of the Bosonic Haldane Insulator
- Exactly solvable model for a deconfined quantum critical point in 1D
- Comparative density-matrix renormalization group study of symmetry-protected topological phases in spin-1 chain and Bose-Hubbard models
- Homogeneous and inhomogeneous magnetic phases of constrained dipolar bosons
- Encoding a one-dimensional topological gauge theory in a Raman-coupled Bose-Einstein condensate
- Superfluid-Insulator Transitions in Attractive Bose-Hubbard Model with Three-Body Constraint
- Anyonic Haldane insulator in one dimension
- Thermal Phase transitions in attractive extended Bose-Hubbard Model with three-body constraint
- Evolution of entanglement entropy at SU() deconfined quantum critical points
- Diagnosing weakly first-order phase transitions by coupling to order parameters
- Symmetry-protected topological phases and competing orders in a spin-1/2 XXZ ladder with a four-spin interaction
- Entanglement properties of the Haldane phases: A finite system-size approach
- Spontaneous dimerization, spin-nematic order, and deconfined quantum critical point in a spin-1 Kitaev chain with tunable single-ion anisotropy
- Coherence Properties of the Repulsive Anyon-Hubbard Dimer
- Competition between dimerization and vector chirality in the spin- - Heisenberg chain with uniaxial single-ion anisotropy
- Continuous phase transition from a chiral spin state to collinear magnetic order in a zigzag chain with Kitaev interactions
- Nonlocal order parameter of pair superfluids
- Quantum phase diagram for two species hardcore bosons in one-dimensional optical lattices with the resonantly driven Rabi frequency