Low-temperature transport in out-of-equilibrium XXZ chains

Bruno Bertini, Lorenzo Piroli

Research output: Contribution to journalArticlepeer-review

Abstract

We study the low-temperature transport properties of out-of-equilibrium XXZ spin-1/2 chains. We consider the protocol where two semi-infinite chains are prepared in two thermal states at small but different temperatures and suddenly joined together. We focus on the qualitative and quantitative features of the profiles of local observables, which at large times t and distances x from the junction become functions of the ratio . By means of the generalized hydrodynamic equations, we analyse the rich phenomenology arising by considering different regimes of the phase diagram. In the gapped phases, variations of the profiles are found to be exponentially small in the temperatures, but described by non-trivial functions of ζ. We provide analytical formulae for the latter, which give accurate results also for small but finite temperatures. In the gapless regime, we show how the three-step conformal predictions for the profiles of energy density and energy current are naturally recovered from the hydrodynamic equations. Moreover, we also recover the recent non-linear Luttinger liquid predictions for low-temperature transport: universal peaks of width emerge at the edges of the light cone in the profiles of generic observables. Such peaks are described by the same function of ζ for all local observables.

Original languageEnglish
Article number033104
JournalJournal of Statistical Mechanics: Theory and Experiment
Volume2018
Issue number3
DOIs
Publication statusPublished - 26 Mar 2018

Bibliographical note

Publisher Copyright:
© 2018 IOP Publishing Ltd and SISSA Medialab srl.

Keywords

  • quantum integrability (Bethe ansatz)
  • quantum quenches
  • quantum transport in 1D
  • thermodynamic Bethe ansatz

ASJC Scopus subject areas

  • Statistical and Nonlinear Physics
  • Statistics and Probability
  • Statistics, Probability and Uncertainty

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