Universal Prethermal Dynamics of Bose Gases Quenched to Unitarity
Christoph Eigen, Jake A. P. Glidden, Raphael Lopes, Eric A. Cornell,, Robert P. Smith, Zoran Hadzibabic

TL;DR
This study investigates the universal prethermal dynamics of Bose gases quenched to unitarity, revealing universal behaviors and providing benchmarks for theoretical models in strongly correlated quantum systems.
Contribution
It demonstrates universal post-quench dynamics in Bose gases at unitarity, including the emergence of a prethermal state and universal functions describing thermal properties.
Findings
Universal post-quench dynamics in degenerate Bose gases.
Existence of a prethermal state with a universal nonzero condensate fraction.
Correlation energy independence from gas temperature.
Abstract
Understanding strongly correlated phases of matter, from the quark-gluon plasma to neutron stars, and in particular the dynamics of such systems, following a Hamiltonian quench, poses a fundamental challenge in modern physics. Ultracold atomic gases are excellent quantum simulators for these problems, thanks to tuneable interparticle interactions and experimentally resolvable intrinsic timescales. In particular, they give access to the unitary regime where the interactions are as strong as allowed by quantum mechanics. Following years of experiments on unitary Fermi gases, unitary Bose gases have recently emerged as a new experimental frontier. They promise exciting new possibilities, including universal physics solely controlled by the gas density and novel forms of superfluidity. Here, through momentum- and time-resolved studies, we explore both degenerate and thermal…
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