Out-of-equilibrium spinodal-like scaling behaviors across the magnetic first-order transitions of 2D and 3D Ising systems
Andrea Pelissetto, Ettore Vicari

TL;DR
This paper investigates the out-of-equilibrium scaling behaviors of 2D and 3D Ising systems during magnetic first-order transitions, revealing spinodal-like phenomena and scaling laws in the Kibble-Zurek protocol.
Contribution
It demonstrates the emergence of spinodal-like behaviors and scaling laws in the out-of-equilibrium dynamics of Ising models across first-order transitions, extending understanding of Kibble-Zurek scaling.
Findings
Evidence of out-of-equilibrium finite-size scaling (OFSS) in Ising systems.
Identification of spinodal-like behavior with $h_*>0$ decreasing as $1/( ext{ln} t_s)^eta$.
Derivation of the relevant scaling variable $\sigma$ for the KZ dynamics in the thermodynamic limit.
Abstract
We study the out-of-equilibrium scaling behavior of two-dimensional and three-dimensional Ising systems, when they are slowly driven across their {\em magnetic} first-order transitions at low temperature , where is the temperature of their continuous transition. We consider Kibble-Zurek (KZ) protocols in which a spatially homogenous magnetic field varies as with a time scale . The KZ dynamics starts from negatively-magnetized configurations equilibrated at and stops at a positive value of where the configurations acquire a positive average magnetization. We consider the Metropolis and the heat-bath dynamics, which are two specific examples of a purely relaxational dynamics. We focus on two different dynamic regimes. We consider the out-equilibrium finite-size scaling (OFSS) limit in which the system size and the time scale diverge…
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Taxonomy
TopicsTheoretical and Computational Physics · Quantum many-body systems · Physics of Superconductivity and Magnetism
