paper

Universal scaling laws for dynamical-thermal hysteresis

arXiv:2603.24007

Abstract

Dynamic hysteresis, the rate-dependent lagged response of materials to external fields, underpins applications from energy-efficient transformers to gas storage systems. A fundamental yet unresolved question is how the hysteresis loop area scales with the field sweep rate . Here, we reveal that a competition between the field sweep and thermal fluctuations governs a universal crossover between two scaling regimes: for and for , where is the quasi-static area and the crossover rate depends on the temperature and the material's critical temperature . We demonstrate these scaling laws universally across experiments of magnetic materials, simulations of Ising and metal-organic framework models, and analytical solutions of a stochastic Langevin equation. This framework not only resolves the long-standing non-universality of reported scaling exponents but also provides a direct design principle for the application of dynamic hysteresis.

8 pages, 4 figures(SI: 14 pages, 16 figures)

Universal scaling laws for dynamical-thermal hysteresis · wovepaper