Large heat-capacity jump in cooling-heating of fragile glass from kinetic Monte Carlo simulations based on a two-state picture
arXiv:2106.08633 · doi:10.1103/PhysRevE.104.024131
Abstract
The specific heat capacity of glass formers undergoes a hysteresis when subjected to a cooling-heating cycle, with a larger and a more pronounced hysteresis for fragile glasses than for strong ones. Here, we show that these experimental features, including the unusually large magnitude of of fragile glasses, are well reproduced by kinetic Monte Carlo and equilibrium study of a distinguishable particle lattice model (DPLM) incorporating a two-state picture of particle interactions. The large in fragile glasses is caused by a dramatic transfer of probabilistic weight from high-energy particle interactions to low-energy ones as temperature decreases.
11 pages, 12 figures
References in corpus (6)
- Glassy dynamics of kinetically constrained models
- Calorimetric glass transition explained by hierarchical dynamic facilitation
- Does the configurational entropy of polydisperse particles exist?
- Direct evidence of void induced structural relaxations in colloidal glass formers
- Lattice glass model in three spatial dimensions
- Calorimetric Measurements at Low Temperatures in Toluene Glass and Crystal
Cited by in corpus (5)
- Diffusion coefficient power laws and defect-driven glassy dynamics in swap acceleration
- Emergence of two-level systems in glass formers: a kinetic Monte Carlo study
- Kauzmann Paradox: a crossover due to diminishing local excitations
- Surface mobility gradient and emergent facilitation in glassy films
- The distinguishable-particle lattice model of glasses in three dimensions