Solvable Hydrodynamics of Quantum Integrable Systems

ORAL

Abstract

Quantum integrable systems, such as the interacting Bose gas in one dimension and the XXZ quantum spin chain, have an extensive number of local conserved quantities that endow them with exotic thermalization and transport properties. We discuss recently introduced hydrodynamic techniques to describe far-from-equilibrium dynamics in such integrable systems. Explicit comparison with density matrix renormalization group time evolution of a thermal expansion in the XXZ model shows that hydrodynamical predictions from smooth initial conditions can be remarkably accurate, even for small system sizes. Solutions are also obtained in the Lieb-Liniger model for free expansion into vacuum and collisions between clouds of particles, which model experiments on ultracold one-dimensional Bose gases. Finally, we discuss possible applications of hydrodynamics to scenarios where integrability is broken, for example, by a trapping potential.

Presenters

  • Vir Bulchandani

    • Physics, University of California, Berkeley
    • Univ of California - Berkeley

Authors

  • Vir Bulchandani

    • Physics, University of California, Berkeley
    • Univ of California - Berkeley
  • Romain Vasseur

    • Physics, UMass Amherst
    • UMass Amherst
    • Univ of Massachusetts, Amherst
    • Physics, University of Massachusetts
    • University of Massachusetts
  • Christoph Karrasch

    • Freie Universitaet Berlin
  • Xiangyu Cao

    • Univ of California - Berkeley
  • Joel Moore

    • Physics, Univ of California - Berkeley
    • Materials Science Division, Lawrence Berkeley National Laboratory
    • Univ of California - Berkeley
    • Physics, University of California, Berkeley
    • University of California Berkeley and Lawrence Berkeley National Laboratory
    • UC Berkeley