Temporal decay of Neel order in the one-dimensional Fermi-Hubbard model
arXiv:1503.02010 · doi:10.1103/PhysRevA.91.053628
Abstract
Motivated by recent experiments with ultra-cold quantum gases in optical lattices we study the decay of the staggered moment in the one-dimensional Fermi-Hubbard model starting from a perfect Neel state using exact diagonalization and the iTEBD method. This extends previous work in which the same problem has been addressed for pure spin Hamiltonians. As a main result, we show that the relaxation dynamics of the double occupancy and of the staggered moment are different. The former is controlled by the nearest-neighbor tunneling rate while the latter is much slower and strongly dependent on the interaction strength, indicating that spin excitations are important. This difference in characteristic energy scales for the fast charge dynamics and the much slower spin dynamics is also reflected in the real-time evolution of nearest-neighbor density and spin correlations. A very interesting time dependence emerges in the von Neumann entropy, which at short times increases linearly with a slope proportional to the tunneling matrix element while the long-time growth of entanglement is controlled by spin excitations. Our predictions for the different relaxation dynamics of the staggered moment and the double occupancy should be observable in state-of-the art optical lattice experiments. We further compare time averages of the double occupancy to both the expectation values in the canonical and diagonal ensemble, which quantitatively disagree with each other on finite systems. We relate the question of thermalization to the eigenstate thermalization hypothesis.
9 pages, 9 figures
References in corpus (34)
- The density-matrix renormalization group in the age of matrix product states
- Thermalization and its mechanism for generic isolated quantum systems
- Real time evolution using the density matrix renormalization group
- Classical simulation of infinite-size quantum lattice systems in one spatial dimension
- Breakdown of thermalization in finite one-dimensional systems
- Observation of antiferromagnetic correlations in the Hubbard model with ultracold atoms
- Testing whether all eigenstates obey the Eigenstate Thermalization Hypothesis
- Quenching the Anisotropic Heisenberg Chain: Exact Solution and Generalized Gibbs Ensemble Predictions
- Correlations after quantum quenches in the XXZ spin chain: Failure of the Generalized Gibbs Ensemble
- Spreading of correlations and entanglement after a quench in the one-dimensional Bose-Hubbard model
- Far-from-equilibrium spin transport in Heisenberg quantum magnets
- Relaxation of antiferromagnetic order in spin-1/2 chains following a quantum quench
- Emergence of coherence and the dynamics of quantum phase transitions
- Eigenstate thermalization within isolated spin-chain systems
- Eigenstate thermalization hypothesis (ETH) and integrability in quantum spin chains
- Cooling in strongly correlated optical lattices: prospects and challenges
- Quantum chaos and thermalization in gapped systems
- Relaxation of a one-dimensional Mott insulator after an interaction quench
- Exploring local quantum many-body relaxation by atoms in optical superlattices
- Nonthermal antiferromagnetic order and nonequilibrium criticality in the Hubbard model
- Relaxation and thermalization in the one-dimensional Bose-Hubbard model: A case study for the interaction quantum quench from the atomic limit
- Quench action approach for releasing the Néel state into the spin-1/2 XXZ chain
- Nonthermal symmetry broken states in the strongly interacting Hubbard model
- Coherent multi-flavour spin dynamics in a fermionic quantum gas
- Time evolution of one-dimensional Quantum Many Body Systems
- Néel transition of lattice fermions in a harmonic trap: a real-space DMFT study
- Trapping and cooling fermionic atoms into the Mott and Néel states
- Relaxation dynamics of a Fermi gas in an optical superlattice
- Dynamical Transition in Interaction Quenches of the One-Dimensional Hubbard Model
- Magnetism, coherent many-particle dynamics, and relaxation with ultracold bosons in optical superlattices
- Dynamics of thermalisation in small Hubbard-model systems
- Interaction quantum quenches in the one-dimensional Fermi-Hubbard model with spin imbalance
- Coherent quench dynamics in the one-dimensional Fermi-Hubbard model
- Loading and detecting a three-dimensional Fermi gas in one-dimensional optical superlattice
Cited by in corpus (7)
- Nonergodic dynamics in disorder-free potentials
- Dynamical quantum phase transitions in the one-dimensional extended Fermi-Hubbard model
- Formation of spin and charge ordering in the extended Hubbard model during a finite-time quantum quench
- Bounding the finite-size error of quantum many-body dynamics simulations
- Efficiency of fermionic quantum distillation
- Rényi entanglement entropy after a quantum quench starting from insulating states in a free boson system
- Entanglement entropy dynamics of non-Gaussian states in free boson systems: Random sampling approach