Correlation dynamics during a slow interaction quench in a one-dimensional Bose gas
arXiv:1308.4699 · doi:10.1103/PhysRevLett.112.065301
Abstract
We investigate the response of a one-dimensional Bose gas to a slow increase of its interaction strength. We focus on the rich dynamics of equal-time single-particle correlations treating the Lieb-Liniger model within a bosonization approach and the Bose-Hubbard model using the time-dependent density-matrix renormalization group method. For short distances, correlations follow a power-law with distance with an exponent given by the adiabatic approximation. In contrast, for long distances, correlations decay algebraically with an exponent understood within the sudden quench approximation. This long distance regime is separated from an intermediate distance one by a generalized Lieb-Robinson criterion. At long times, in this intermediate regime, bosonization predicts that single-particle correlations decay following a stretched exponential. This latter regime is unconventional as, for one-dimensional interacting systems, the decay of single-particle correlations is usually algebraic within the Luttinger liquid picture. We develop here an intuitive understanding for the propagation of correlations, in terms of a generalized light-cone, applicable to a large variety of systems and quench forms.
5 pages, 2 figures, + supplementary material, typo in Eq.6 corrected
References in corpus (21)
- Many-Body Physics with Ultracold Gases
- Single-Atom Resolved Fluorescence Imaging of an Atomic Mott Insulator
- An Open-System Quantum Simulator with Trapped Ions
- Electrodynamics of Correlated Electron Materials
- Bose-Einstein condensation of atoms in a uniform potential
- Lieb-Robinson bounds and the generation of correlations and topological quantum order
- Dynamical control of matter-wave tunneling in periodic potentials
- The Luttinger model following a sudden interaction switch-on
- Strong dissipation inhibits losses and induces correlations in cold molecular gases
- Spreading of correlations and entanglement after a quench in the one-dimensional Bose-Hubbard model
- Breakdown of the adiabatic limit in low dimensional gapless systems
- Supplementary Information to the paper ``Breakdown of the adiabatic limit in low dimensional gapless systems''
- Entropy of entanglement and correlations induced by a quench: Dynamics of a quantum phase transition in the quantum Ising model
- Critical Behavior of a Trapped Interacting Bose Gas
- Sweeping from the superfluid to Mott phase in the Bose-Hubbard model
- Spatial correlations of trapped 1d bosons in an optical lattice
- Slow Mass Transport and Statistical Evolution of An Atomic Gas Across the Superfluid-Mott Insulator Transition
- Observing the Formation of Long-range Order during Bose-Einstein Condensation
- Luttinger liquid universality in the time evolution after an interaction quench
- Correlation functions in the prethermalized regime after a quantum quench of a spin-chain
- Crossover from adiabatic to sudden interaction quench in a Luttinger liquid
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- The Adiabatically Deformed Ensemble: Engineering Non-Thermal States of Matter
- Quantum quench dynamics in the Luttinger liquid phase of the Hatano-Nelson model
- Operator correlations in a quenched non-Hermitian Luttinger liquid
- Optimal protocols for finite-duration quantum quenches in the Luttinger model
- Finite-time quantum quenches in the XXZ Heisenberg chain
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- Exact Dynamics and Shortcuts to Adiabaticity in the Tomonaga-Luttinger Liquid