Entropy production and statistical relaxation of dipolar bosons and fermions in interaction quench dynamics
Barnali Chakrabarti, N D Chavda, F.V. Prudente

TL;DR
This paper investigates the out-of-equilibrium dynamics of dipolar bosons and fermions after an interaction quench, revealing distinct relaxation behaviors and the onset of chaos in strongly interacting dipolar bosons.
Contribution
It provides the first detailed comparison of relaxation dynamics between dipolar bosons and fermions post-quench, highlighting the role of interaction strength and many-body chaos.
Findings
Weak interaction quench leads to no relaxation in both systems.
Dipolar bosons relax and approach Gaussian orthogonal ensemble predictions at strong interactions.
Dipolar fermions exhibit persistent oscillations and do not relax under the same conditions.
Abstract
We study the out-of-equilibrium dynamics of dipolar bosons and fermions after a sudden change in the interaction strength from zero to a finite repulsive value. We simulate the interaction quench on the initial state which is the ground state of harmonic potential with noninteracting bosons and fermions. We solve the time-dependent many-boson Schr\"odinger equation exactly using numerical methods. To understand the many-body dynamics we analyze several measures of many-body information entropy, monitoring their time evolution and assessing their dependence on interaction strength. We establish that for weak interaction quench the dynamics is statistics independent, both dipolar bosons and fermions do not relax. Whereas it is significantly different for dipolar bosons from that of dipolar fermions in the stronger interaction quench. When dipolar bosons exhibit concurrent signature of…
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