Many-body quantum chaos in stroboscopically-driven cold atoms
Ceren B. Dag, Simeon I. Mistakidis, Amos Chan, H. R. Sadeghpour

TL;DR
This paper demonstrates the presence of the 'bump-ramp-plateau' spectral form factor behavior in various driven cold atom models, revealing how many-body quantum chaos features depend on atom number and system locality.
Contribution
It shows the existence of the bump-ramp-plateau spectral form factor in driven cold atom systems and analyzes how chaos indicators scale with atom number and locality.
Findings
The bump-ramp-plateau behavior appears in multiple cold atom models.
Scaling of Thouless time and bump amplitude depends on atom number more than lattice size.
Spinor gases exhibit slower chaos development compared to interacting bosons in lattices.
Abstract
In quantum chaotic systems, the spectral form factor (SFF), defined as the Fourier transform of the two-level spectral correlation function, is known to follow random matrix theory (RMT), namely a 'ramp' followed by a 'plateau' in sufficiently late times. Recently, a generic early-time deviation from the RMT behavior, which we call the 'bump', was shown to exist in random quantum circuits and spin chains as toy models for many-body quantum chaotic systems. Here we demonstrate the existence of the 'bump-ramp-plateau' behavior in the SFF for a number of paradigmatic and stroboscopically-driven 1D cold atom models: (i) Bose-Hubbard model, (ii) spin Bose-Hubbard model, and (iii) nonintegrable spin- condensate with contact or dipolar interactions. We find that the scaling of the many-body Thouless time -- the onset of RMT -- , and the bump amplitude are more…
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Taxonomy
TopicsQuantum chaos and dynamical systems · Theoretical and Computational Physics · Quantum many-body systems
