New Journal of Physics (Jan 2018)

Double light-cone dynamics establish thermal states in integrable 1D Bose gases

  • T Langen,
  • T Schweigler,
  • E Demler,
  • J Schmiedmayer

DOI
https://doi.org/10.1088/1367-2630/aaaaa5
Journal volume & issue
Vol. 20, no. 2
p. 023034

Abstract

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We theoretically investigate the non-equilibrium dynamics in a quenched pair of one-dimensional Bose gases with density imbalance. We describe the system using its low-energy effective theory, the Luttinger liquid model. In this framework the system shows strictly integrable relaxation dynamics via dephasing of its approximate many-body eigenstates. In the balanced case, this leads to the well-known light-cone-like establishment of a prethermalized state, which can be described by a generalized Gibbs ensemble. In the imbalanced case the integrable dephasing leads to a state that, counter-intuitively, closely resembles a thermal equilibrium state. The approach to this state is characterized by two separate light-cone dynamics with distinct characteristic velocities. This behavior is a result of the fact that in the imbalanced case observables are not aligned with the conserved quantities of the integrable system. We discuss a concrete experimental realization to study this effect using matterwave interferometry and many-body revivals on an atom chip.

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