English

Bridging transitions for spheres and cylinders

Soft Condensed Matter 2015-09-30 v1 Statistical Mechanics Atomic and Molecular Clusters

Abstract

We study bridging transitions between spherically and cylindrically shaped particles (colloids) of radius RR separated by a distance HH that are dissolved in a bulk fluid (solvent). Using macroscopics, microscopic density functional theory and finite-size scaling theory we study the location and order of the bridging transition and also the stability of the liquid bridges which determines spinodal lines. The location of the bridging transitions is similar for cylinders and spheres, so that for example, at bulk coexistence the distance HbH_b at which a transition between bridged and unbridged configurations occurs, is proportional to the colloid radius RR. However all other aspects, and, in particular, the stability of liquid bridges, are very different in the two systems. Thus, for cylinders the bridging transition is typically strongly first-order, while for spheres it may be first-order, critical or rounded as determined by a critical radius RcR_c. The influence of thick wetting films and fluctuation effects beyond mean-field are also discussed in depth.

Keywords

Cite

@article{arxiv.1508.03723,
  title  = {Bridging transitions for spheres and cylinders},
  author = {Alexandr Malijevský and Andrew O. Parry},
  journal= {arXiv preprint arXiv:1508.03723},
  year   = {2015}
}
R2 v1 2026-06-22T10:34:25.306Z