Memory-induced alignment of colloidal dumbbells
Abstract
When a colloidal probe is forced through a viscoelastic fluid which is characterized by a long stress-relaxation time, the fluid is excited out of equilibrium. This is leading to a number of interesting effects including a non-trivial recoil of the probe when the driving force is removed. Here, we experimentally and theoretically investigate the transient recoil dynamics of non-spherical particles, i.e., colloidal dumbbells. In addition to a translational recoil of the dumbbells, we also find a pronounced angular reorientation which results from the relaxation of the surrounding fluid. Our findings are in good agreement with a Langevin description based on the symmetries of a director (dumbbell) as well as a microscopic bath-rod model. Remarkably, we find a frustrated state with amplified fluctuations when the dumbbell is oriented perpendicular to the direction of driving. Our results demonstrate the complex behavior of non-spherical objects within a relaxing environment which are of immediate interest for the motion of externally but also self-driven asymmetric objects in viscoelastic fluids.
Cite
@article{arxiv.2308.16023,
title = {Memory-induced alignment of colloidal dumbbells},
author = {Karthika Krishna Kumar and Juliana Caspers and Félix Ginot and Matthias Krüger and Clemens Bechinger},
journal= {arXiv preprint arXiv:2308.16023},
year = {2024}
}
Comments
10 pages, 6 figures