Self-diffusiophoretic propulsion of a spheroidal particle in a shear-thinning fluid
arXiv:2405.09136 · doi:10.1017/jfm.2024.350
Abstract
Shear-thinning viscosity is a non-Newtonian behaviour that active particles often encounter in biological fluids such as blood and mucus. The fundamental question of how this ubiquitous non-Newtonian rheology affects the propulsion of active particles has attracted substantial interest. In particular, spherical Janus particles driven by self-diffusiophresis, a major physico-chemical propulsion mechanism of synthetic active particles, were shown to always swim slower in a shear-thinning fluid than in a Newtonian fluid. In this work, we move beyond the spherical limit to examine the effect of particle eccentricity on self-diffusiophoretic propulsion in a shear-thinning fluid. We use a combination of asymptotic analysis and numerical simulations to show that shear-thinning rheology can enhance self-diffusiophoretic propulsion of a spheroidal particle, in stark contrast to previous findings for the spherical case. A systematic characterization of the dependence of the propulsion speed on the particle's active surface coverage has also uncovered an intriguing feature associated with the propulsion speeds of a pair of complementarily coated particles not previously reported. Symmetry arguments are presented to elucidate how this new feature emerges as a combined effect of anisotropy of the spheroidal geometry and nonlinearity in fluid rheology.
21 Pages, 8 figures
References in corpus (14)
- The hydrodynamics of swimming microorganisms
- Self-motile colloidal particles: from directed propulsion to random walk
- Propulsion of a molecular machine by asymmetric distribution of reaction--products
- Designing phoretic micro- and nano-swimmers
- Phoretic self-propulsion at finite Péclet numbers
- Phoretic Motion of Spheroidal Particles Due To Self-Generated Solute Gradients
- A frictionless microswimmer
- Locomotion in complex fluids: Integral theorems
- Helical propulsion in shear-thinning fluids
- Undulatory swimming in shear-thinning fluids: Experiments with C. elegans
- Swimming in Complex Fluids
- Effects of shear thinning viscosity and viscoelastic stresses on flagellated bacteria motility
- Autophoretic locomotion in weakly viscoelastic fluids at finite Péclet number
- Self-diffusiophoresis of Janus particles that release ions