Dynamical phase transitions in the collisionless pre-thermal states of
isolated quantum systems: theory and experiments
- URL: http://arxiv.org/abs/2201.09894v1
- Date: Mon, 24 Jan 2022 19:00:01 GMT
- Title: Dynamical phase transitions in the collisionless pre-thermal states of
isolated quantum systems: theory and experiments
- Authors: Jamir Marino, Martin Eckstein, Matthew S. Foster, Ana Maria Rey
- Abstract summary: We focus on non-equilibrium transitions characterized by an order parameter.
Our presentation covers both cold atoms as well as condensed matter systems.
We revisit a broad plethora of platforms exhibiting pre-thermal DPTs, which become theoretically tractable in a certain limit.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We overview the concept of dynamical phase transitions in isolated quantum
systems quenched out of equilibrium. We focus on non-equilibrium transitions
characterized by an order parameter, which features qualitatively distinct
temporal behaviour on the two sides of a certain dynamical critical point.
Dynamical phase transitions are currently mostly understood as long-lived
prethermal phenomena in a regime where inelastic collisions are incapable to
thermalize the system. The latter enables the dynamics to substain phases that
explicitly break detailed balance and therefore cannot be encompassed by
traditional thermodynamics. Our presentation covers both cold atoms as well as
condensed matter systems. We revisit a broad plethora of platforms exhibiting
pre-thermal DPTs, which become theoretically tractable in a certain limit, such
as for a large number of particles, large number of order parameter components,
or large spatial dimension. The systems we explore include, among others,
quantum magnets with collective interactions, $\phi^4$ quantum field theories,
and Fermi-Hubbard models. A section dedicated to experimental explorations of
DPTs in condensed matter and AMO systems connects this large variety of
theoretical models.
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