English

Scalar $\phi^4$ field theory for active-particle phase separation

Soft Condensed Matter 2014-07-14 v2 Biological Physics Fluid Dynamics

Abstract

Recent theories predict phase separation among orientationally disordered active particles whose propulsion speed decreases rapidly enough with density. Coarse-grained models of this process show time-reversal symmetry (detailed balance) to be restored for uniform states, but broken by gradient terms; hence detailed-balance violation is strongly coupled to interfacial phenomena. To explore the subtle generic physics resulting from such coupling we here introduce `Active Model B'. This is a scalar ϕ4\phi^4 field theory (or phase-field model) that minimally violates detailed balance via a leading-order square-gradient term. We find that this additional term has modest effects on coarsening dynamics, but alters the static phase diagram by creating a jump in (thermodynamic) pressure across flat interfaces. Both results are surprising, since interfacial phenomena are always strongly implicated in coarsening dynamics but are, in detailed-balance systems, irrelevant for phase equilibria.

Keywords

Cite

@article{arxiv.1311.1256,
  title  = {Scalar $\phi^4$ field theory for active-particle phase separation},
  author = {Raphael Wittkowski and Adriano Tiribocchi and Joakim Stenhammar and Rosalind J. Allen and Davide Marenduzzo and Michael E. Cates},
  journal= {arXiv preprint arXiv:1311.1256},
  year   = {2014}
}

Comments

15 pages, 7 figures

R2 v1 2026-06-22T02:01:55.594Z