Bose-Hubbard systems; discrete symmetries; many-body interference; semiclassical theory; truncated Wigner method; Statistical and Nonlinear Physics; Statistics and Probability; Modeling and Simulation; Mathematical Physics; Physics and Astronomy (all); General Physics and Astronomy
Abstract :
[en] Although highly successful, the truncated Wigner approximation (TWA) does not account for genuine many-body (MB) quantum interference between different solutions of the mean-field equations of a bosonic MB system. This renders the TWA essentially classical, where a large number of particles formally takes the role of the inverse of Planck's constant ., . The failure to describe genuine interference phenomena, such as localization and scarring in Fock space, can be seen as a virtue of this quasiclassical method, which thereby allows one to identify genuine quantum effects when being compared with 'exact' quantum calculations that do not involve any a priori approximation. A rather prominent cause for such quantum effects that are not accounted for by the TWA is the constructive interference between the contributions of symmetry-related trajectories, which would occur in the presence of discrete symmetries provided the phase-space distribution of the initial state and the observable to be evaluated feature a strong localization about the corresponding symmetry subspaces. Here we show how one can conceive an augmented version of the TWA which can account for this particular effect. This augmented TWA effectively amounts to complementing conventional TWA calculations by separate truncated Wigner simulations that are restricted to symmetric subspaces and involve weight factors that account for the dynamical stability of sampling trajectories with respect to perpendicular deviations from those subspaces. We illustrate the validity of this method at pre- as well as post-Ehrenfest time scales in prototypical Bose-Hubbard systems displaying chaotic classical dynamics, where it also reveals the existence of additional MB interference effects.
Disciplines :
Physics
Author, co-author :
Hummel, Quirin ; Université de Liège - ULiège > Département de physique > Physique quantique statistique ; Institut für Theoretische Physik, Universität Regensburg, Regensburg, Germany
Schlagheck, Peter ; Université de Liège - ULiège > Département de physique > Physique quantique statistique
Language :
English
Title :
Symmetry-induced many-body quantum interference in chaotic bosonic systems: An augmented truncated Wigner method
Publication date :
23 September 2022
Journal title :
Journal of Physics. A, Mathematical and Theoretical
ULiège - Université de Liège DFG - Deutsche Forschungsgemeinschaft
Funding text :
This research was supported by the University of Liège under Special Funds for Research, IPD-STEMA Programme. We acknowledge funding of the Deutsche Forschungsgemeinschaft through project Ri681/15-1 within the Reinhart-Koselleck Programme. We thank Klaus Richter, Steven Tomsovic, Denis Ullmo, and Juan Diego Urbina for useful and inspiring discussions.
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Bibliography
Haake F 2010 Quantum Signatures of Chaos Springer Series in Synergetics 3rd edn Berlin Springer
Stöckmann H J. 1999 Quantum Chaos: An Introduction Cambridge Nonlinear Science Series vol 3 Cambridge Cambridge University Press
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