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Influence functional of quantum many-body systems

ORAL

Abstract

Feynman-Vernon influence functional (IF) was originally introduced to describe the effect of a quantum environment on the dynamics of an open quantum system. We apply the IF approach to describe quantum many-body dynamics in isolated spin systems, viewing the system as an environment for its local subsystems. While the IF can be computed exactly only in certain many-body models, it generally satisfies a self-consistency equation, provided the system, or an ensemble of systems, are translationally invariant. We view the IF as a fictitious wavefunction in the temporal domain, and approximate it using matrix-product states (MPS). This approach is efficient provided the temporal entanglement of the IF is sufficiently low. We illustrate the versatility of the IF approach by analyzing several models that exhibit a range of dynamical behaviors, from thermalizing to many-body localized, in both Floquet and Hamiltonian settings. The IF approach offers a new lens on many-body non-equilibrium phenomena, both in ergodic and non-ergodic regimes, connecting the theory of open quantum systems theory to quantum statistical physics.

Publication: Alessio Lerose, Michael Sonner, and Dmitry A. Abanin. "Influence matrix approach to many-body Floquet dynamics." Physical Review X 11.2 (2021): 021040.<br>Michael Sonner, Alessio Lerose, and Dmitry A. Abanin. "Influence functional of many-body systems: temporal entanglement and matrix-product state representation." arXiv preprint arXiv:2103.13741 (2021).<br>Michael Sonner, Alessio Lerose, and Dmitry A. Abanin. "Characterizing many-body localization via exact disorder-averaged quantum noise." arXiv preprint arXiv:2012.00777 (2020).<br>Alessio Lerose, Michael Sonner, and Dmitry A. Abanin. "Scaling of temporal entanglement in proximity to integrability." arXiv preprint arXiv:2104.07607 (2021).<br>Alessio Lerose, Michael Sonner, and Dmitry A. Abanin. "Overcoming entanglement barrier in quantum many-body dynamics" in preparation<br>Julian Thoenniss, Alessio Lerose, Michael Sonner, and Dmitry A. Abanin. (in preparation)

Presenters

  • Alessio Lerose

    Univ of Geneva

Authors

  • Alessio Lerose

    Univ of Geneva

  • Michael Sonner

    Univ of Geneva, University of Geneva

  • Julian Thoenniss

    University of Geneva

  • Dmitry A Abanin

    University of Geneva