Vortex loop dynamics and dynamical quantum phase transitions in 3D fermion matter

Fuente: arXiv
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Main Authors: Kosior, Arkadiusz, Heyl, Markus
Format: Preprint
Published: 2023
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author Kosior, Arkadiusz
Heyl, Markus
author_facet Kosior, Arkadiusz
Heyl, Markus
contents Over the past decade, dynamical quantum phase transitions (DQPTs) have emerged as a paradigm shift in understanding nonequilibrium quantum many-body systems. However, the challenge lies in identifying order parameters that effectively characterize the associated dynamic phases. In this study, we investigate the behavior of vortex singularities in the phase of the Green's function for a broad class of fermion lattice models in three dimensions after an instantaneous quench in both interacting and non-interacting systems. We find that the full set of vortices form one-dimensional dynamical objects, which we call \emph{vortex loops}. We propose that the number of such vortex loops can be interpreted as a quantized order parameter that distinguishes between different non-equilibrium phases. Our results establish an explicit link between variations in the order parameter and DQPTs in the non-interacting scenario. Moreover, we show that the vortex loops are robust in the weakly interacting case, even though there is no direct relation between the Loschmidt amplitude and the Green's function. Finally, we observe that vortex loops can form complex dynamical patterns in momentum space. Our findings provide valuable insights for developing definitions of dynamical order parameters in non-equilibrium systems.
format Preprint
id arxiv_https___arxiv_org_abs_2307_02985
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Vortex loop dynamics and dynamical quantum phase transitions in 3D fermion matter
Kosior, Arkadiusz
Heyl, Markus
Statistical Mechanics
Quantum Gases
Quantum Physics
Over the past decade, dynamical quantum phase transitions (DQPTs) have emerged as a paradigm shift in understanding nonequilibrium quantum many-body systems. However, the challenge lies in identifying order parameters that effectively characterize the associated dynamic phases. In this study, we investigate the behavior of vortex singularities in the phase of the Green's function for a broad class of fermion lattice models in three dimensions after an instantaneous quench in both interacting and non-interacting systems. We find that the full set of vortices form one-dimensional dynamical objects, which we call \emph{vortex loops}. We propose that the number of such vortex loops can be interpreted as a quantized order parameter that distinguishes between different non-equilibrium phases. Our results establish an explicit link between variations in the order parameter and DQPTs in the non-interacting scenario. Moreover, we show that the vortex loops are robust in the weakly interacting case, even though there is no direct relation between the Loschmidt amplitude and the Green's function. Finally, we observe that vortex loops can form complex dynamical patterns in momentum space. Our findings provide valuable insights for developing definitions of dynamical order parameters in non-equilibrium systems.
title Vortex loop dynamics and dynamical quantum phase transitions in 3D fermion matter
topic Statistical Mechanics
Quantum Gases
Quantum Physics
url https://arxiv.org/abs/2307.02985