arXiv:2507.21286·v2·Statistical Mechanics
Out-of-equilibrium spinodal-like scaling behaviors across the magnetic first-order transitions of 2D and 3D Ising systems
Andrea Pelissetto · Ettore Vicari
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 simultaneously, keeping an appropriate combination fixed. Then, we analyze the KZ dynamics in the thermodynamic limit (TL), obtained by taking first the limit at fixed and , and then considering the scaling behavior in the large- limit. Our numerical results provide evidence of OFSS, as predicted by general scaling arguments. The results in the TL show the emergence of spinodal-like behaviors: The passage from the negatively-magnetized phase to the positively-magnetized one occurs at positive values of the magnetic field, which decrease as , with and in two and three dimensions, respectively, for . We identify as the relevant scaling variable associated with the KZ dynamics in the TL.
Comments: 16 pages, added 4D results