Suppression of discontinuous phase transitions by particle diffusion
arXiv:2202.13895 · doi:10.1103/PhysRevE.105.054144
Abstract
We investigate the phase transitions of the -state Brownian Potts model in two dimensions (2d) comprising Potts spins that diffuse like Brownian particles and interact ferromagnetically with other spins within a fixed distance. With extensive Monte Carlo simulations we find a continuous phase transition from a paramagnetic to a ferromagnetic phase even for . This is in sharp contrast to the existence of a discontinuous phase transition in the equilibrium -state Potts model in 2d with . We present detailed numerical evidence for a continuous phase transition and argue that diffusion generated dynamical positional disorder suppresses phase coexistence leading to a continuous transition.
revised version (8 pages with 9 figures)
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