Nonequilibrium Mass Transport in the 1D Fermi-Hubbard Model

ORAL

Abstract

We report on the results of a combined experimental and numerical study of nonequilibrium dynamics of ultracold fermions in a 1d lattice induced by quenching the trapping potential to zero [1]. This leads to an expansion of the cloud in a homogeneous lattice under the influence of interactions. For initial states with a significant admixture of doublons in a sea of singlons, we observe a dynamical demixing of fast expanding singlons from doublons that remain in the center of the system. We interpret this as evidence for fermionic quantum distillation [2]. For initial product states of one fermion per site and random spin orientations, we study the asymptotic expansion velocity. Compared to bosons [3], these velocities depend only very weakly on the interaction strength. We explain this observation by the fact that the Pauli principle significantly limits the amount of interaction energy that can be generated for fermions as compared to bosons.

[1] S. Scherg et al., PRL 121, 130402 (2018)
[2] F. Heidrich-Meisner et al., PRA 80, 041603 (2009)
[3] J. P. Ronzheimer et al., PRL 110, 205301 (2013)

*European Commission (UQUAM, AQuS) and the Nanosystems Initiative Munich (NIM). DFG (Deutsche Forschungsgemeinschaft) Research Unit FOR 1807 and SFB 1073.

Presenters

  • Jan Stolpp

    • Institute for Theoretical Physics, Universität Göttingen

Authors

  • Jan Stolpp

    • Institute for Theoretical Physics, Universität Göttingen
  • Sebastian Scherg

    • Fakultät für Physik, Universität München
  • Thomas Kohlert

    • Fakultät für Physik, Universität München
  • Jacek Herbrych

    • Department of Physics and Astronomy, The University of Tennessee
    • Department of Physics and Astronomy, University of Tennessee
    • University of Tennessee
  • Pranjal Bordia

    • Fakultät für Physik, Universität München
  • Ulrich Schneider

    • Cavendish Laboratory, University of Cambridge
    • Cambridge University
  • Fabian Heidrich-Meisner

    • Institute for Theoretical Physics, Georg-August-Universität Göttingen
    • Institute for Theoretical Physics, Universität Göttingen
  • Immanuel Felix Bloch

    • Fakultät für Physik, Universität München
  • Monika Aidelsburger

    • Fakultät für Physik, Ludwig-Maximilians-Universität München
    • Fakultät für Physik, Universität München