English

Hydrodynamic Mechanism of Colloidal Propulsion through Momentum Exchange

Soft Condensed Matter 2025-10-08 v1

Abstract

Propulsion of colloidal particles due to momentum transfer from localized surface reactions is investigated by solving the exact unsteady Stokes equation. We model the effect of surface reactions as either a {\it force dipole} acting on the fluid or a {\it pair force} acting on both the colloid and the fluid. Our analysis reveals that after a single reaction event the colloid's velocity initially decays as t1/2\sim t^{-1/2}, followed by a long-time tail decay t5/2\sim t^{-5/2}. This behavior is distinct from the t3/2\sim t^{-3/2} decay seen for simple impulsively forced particles, a result of the force-free nature of the reaction mechanism. The velocity and transient dynamics are strongly controlled by the distance of the reaction from the colloid surface. For a colloid subject to periodic reactions, the theory predicts a steady-state velocity that is comparable to experimental results and previous simulations, suggesting that direct momentum transfer is a relevant mechanism for self-propulsion in systems like Janus particles. Finally, our study shows that fluid compressibility is not required for momentum transfer to produce colloidal propulsion.

Keywords

Cite

@article{arxiv.2510.06163,
  title  = {Hydrodynamic Mechanism of Colloidal Propulsion through Momentum Exchange},
  author = {Javier Diaz and Ignacio Pagonabarraga and Carles Calero},
  journal= {arXiv preprint arXiv:2510.06163},
  year   = {2025}
}