English

Non-Fickian single-file pore transport

Statistical Mechanics 2021-09-15 v2

Abstract

Single file diffusion (SFD) exhibits anomalously slow collective transport when particles are able to immobilize by binding and unbinding to the one-dimensional channel within which the particles diffuse. We have explored this system for short pore-like channels using a symmetric exclusion process (SEP) with fully stochastic dynamics. We find that for shorter channels, a non-Fickian regime emerges for slow binding kinetics. In this regime the average flux Φ1/L3\langle \Phi \rangle \sim 1/L^3, where LL is the channel length in units of the particle size. We find that a two-state model describes this behavior well for sufficiently slow binding rates, where the binding rates determine the switching time between high-flux bursts of directed transport and low-flux leaky states. Each high-flux burst is Fickian with Φ1/L\langle \Phi \rangle \sim 1/L. Longer systems are more often in a low flux state, leading to the non-Fickian behavior.

Keywords

Cite

@article{arxiv.2107.03498,
  title  = {Non-Fickian single-file pore transport},
  author = {Spencer Farrell and Andrew D Rutenberg},
  journal= {arXiv preprint arXiv:2107.03498},
  year   = {2021}
}
R2 v1 2026-06-24T03:58:54.515Z