English

Hyperuniform structures formed by shearing colloidal suspensions

Soft Condensed Matter 2020-10-07 v1

Abstract

In periodically sheared suspensions there is a dynamical phase transition characterized by a critical strain amplitude γc\gamma_c between an absorbing state where particle trajectories are reversible and an active state where trajectories are chaotic and diffusive. Repulsive non-hydrodynamic interactions between "colliding" particles' surfaces have been proposed as a source of this broken time reversal symmetry. A simple toy model called Random Organization qualitatively reproduces the dynamical features of this transition. Random Organization and other absorbing state models exhibit hyperuniformity, a strong suppression of density fluctuations on long length-scales quantified by a structure factor S(q0)qαS(q \rightarrow 0) \sim q^\alpha with α>0\alpha > 0, at criticality. Here we show experimentally that the particles in periodically sheared suspensions organize into structures with anisotropic short-range order but isotropic, long-range hyperuniform order when oscillatory shear amplitudes approach γc\gamma_c.

Keywords

Cite

@article{arxiv.2002.04499,
  title  = {Hyperuniform structures formed by shearing colloidal suspensions},
  author = {Sam Wilken and Rodrigo E. Guerra and David J. Pine and Paul M. Chaikin},
  journal= {arXiv preprint arXiv:2002.04499},
  year   = {2020}
}