English

Dynamical coexistence in moderately polydisperse hard-sphere glasses

Statistical Mechanics 2020-01-28 v1 Disordered Systems and Neural Networks Computational Physics

Abstract

We perform extensive numerical simulations of a paradigmatic model glass former, the hard-sphere fluid with 10% polydispersity. We sample from the ensemble of trajectories with fixed observation time, whereby single trajectories are generated by event-driven molecular dynamics. We show that these trajectories can be characterized in terms of local structure, and we find a dynamical-structural (active-inactive) phase transition between two dynamical phases: one dominated by liquid-like trajectories with low degree of local order and one dominated by glassy-like trajectories with a high degree of local order. We show that both phases coexist and are separated by a spatiotemporal interface. Sampling exceptionally long trajectories allows to perform a systematic finite-size scaling analysis. We find excellent agreement with Binder's scaling theory for first-order transitions. Interestingly, the coexistence region narrows at higher densities, supporting the idea of a critical point controlling the dynamic arrest.

Keywords

Cite

@article{arxiv.1910.12045,
  title  = {Dynamical coexistence in moderately polydisperse hard-sphere glasses},
  author = {Matteo Campo and Thomas Speck},
  journal= {arXiv preprint arXiv:1910.12045},
  year   = {2020}
}
R2 v1 2026-06-23T11:55:37.918Z