English

Reciprocal theorem for ion-releasing colloidal particles

Soft Condensed Matter 2026-07-28 v1 Fluid Dynamics

Abstract

We describe a generalization of the reciprocal theorem for particles suspended in electrolyte solutions and subjected to an electric field that could be either applied or emerged spontaneously. Attention is focused on catalytic colloids that release ions. The power of the generalization is to capture the effect of formation of a secondary cloud around a catalytic particle, which is equivalent to accounting for an excess charge QQ of a system. Our results show that the propulsion speed of catalytic particles has an extra contribution proportional to QQ and an external field EE_{\infty}. The derived equation for QQ reveals that its sign is defined by the difference in the ion diffusivity and the magnitude is controlled by the average flux of ions from the surface. We demonstrate the application of the generalized theorem to electro- and diffusiophoresis of homogeneously releasing ions passive particles, as well as to a self-propulsion of inhomogeneous active particles (microswimmers). It is shown that whilst in some situations the extra term in the reciprocal theorem vanishes or has a little effect on the particle mobility, in many others it may dramatically change its magnitude, and even sign. In addition, the relevance of our results for microswimmer interactions is discussed briefly.

Cite

@article{arxiv.2607.25385,
  title  = {Reciprocal theorem for ion-releasing colloidal particles},
  author = {Evgeny S. Asmolov and Olga I. Vinogradova},
  journal= {arXiv preprint arXiv:2607.25385},
  year   = {2026}
}

Comments

10 pages, 3 figures