Signatures of Conformal Symmetry in the Dynamics of Quantum Gases: A Cyclic Quantum State and Entanglement Entropy
Jeff Maki, Fei Zhou

TL;DR
This paper explores how conformal symmetry influences the non-equilibrium dynamics of strongly interacting quantum gases, revealing oscillatory revivable states and deriving general structures of key physical quantities.
Contribution
It derives the general forms of auto-correlation, Wigner distribution, and entanglement entropy functions under conformal symmetry constraints in quantum gases.
Findings
Entropy production can be absent in certain non-equilibrium states.
Oscillatory revivable many-body states are predicted.
General structures of correlation functions are derived for conformally invariant systems.
Abstract
Conformal symmetry heavily constrains the dynamics of non-relativistic quantum gases tuned to a nearby quantum critical point. One important consequence of this symmetry is that entropy production can be absent in far away from equilibrium dynamics of strongly interacting three-dimensional (3D) and one-dimensional (1D) quantum gases placed inside a soft harmonic trapping potential. This can lead to an oscillatory fully revivable many-body dynamic state, which is reflected in many physical observables. In this article we further investigate the consequences of conformal symmetry on a) the zero-temperature auto-correlation function, b) the Wigner distribution function, and c) the Von Neumann entanglement entropy. A direct calculation of these quantities for generic strongly interacting systems is usually extremely difficult. However, we have derived the general structures of these…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum, superfluid, helium dynamics
