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Dynamical signatures of quantum chaos and relaxation timescales in a spin-boson system

Authors :
Miguel A. Bastarrachea-Magnani
Sergio Lerma-Hernández
E. J. Torres-Herrera
David Villaseñor
Jorge G. Hirsch
Lea F. Santos
Source :
Lerma-Hernandez, S, Villasenor, D, Bastarrachea-Magnani, M A, Torres-Herrera, E J, Santos, L F & Hirsch, J G 2019, ' Dynamical signatures of quantum chaos and relaxation time scales in a spin-boson system ', Physical Review E, vol. 100, no. 1, 012218 . https://doi.org/10.1103/PhysRevE.100.012218
Publication Year :
2019

Abstract

Quantum systems whose classical counterparts are chaotic typically have highly correlated eigenvalues and level statistics that coincide with those from ensembles of full random matrices. A dynamical manifestation of these correlations comes in the form of the so-called correlation hole, which is a dip below the saturation point of the survival probability's time evolution. In this work, we study the correlation hole in the spin-boson (Dicke) model, which presents a chaotic regime and can be realized in experiments with ultracold atoms and ion traps. We derive an analytical expression that describes the entire evolution of the survival probability and allows us to determine the timescales of its relaxation to equilibrium. This expression shows remarkable agreement with our numerical results. While the initial decay and the time to reach the minimum of the correlation hole depend on the initial state, the dynamics beyond the hole up to equilibration is universal. We find that the relaxation time of the survival probability for the Dicke model increases linearly with system size.<br />12 pages, 3 figures

Details

Language :
English
Database :
OpenAIRE
Journal :
Lerma-Hernandez, S, Villasenor, D, Bastarrachea-Magnani, M A, Torres-Herrera, E J, Santos, L F & Hirsch, J G 2019, ' Dynamical signatures of quantum chaos and relaxation time scales in a spin-boson system ', Physical Review E, vol. 100, no. 1, 012218 . https://doi.org/10.1103/PhysRevE.100.012218
Accession number :
edsair.doi.dedup.....fac0f82dd2636af35c1bc5ff571b8427