Run-and-Tumble-Like Motion of Active Colloids in Viscoelastic Media
arXiv:1711.10800 · doi:10.1088/1367-2630/aa9ed1
Abstract
Run-and-tumble (RNT) motion is a prominent locomotion strategy employed by many living microorganisms. It is characterized by straight swimming intervals (runs), which are interrupted by sudden reorientation events (tumbles). In contrast, directional changes of synthetic microswimmers (active particles, APs) are caused by rotational diffusion, which is superimposed with their translational motion and thus leads to rather continuous and slow particle reorientations. Here we demonstrate that active particles can also perform a swimming motion where translational and orientational changes are disentangled, similar to RNT. In our system, such motion is realized by a viscoelastic solvent and a periodic modulation of the self-propulsion velocity. Experimentally, this is achieved using light-activated Janus colloids, which are illuminated by a time-dependent laser field. We observe a strong enhancement of the effective translational and rotational motion when the modulation time is comparable to the relaxation time of the viscoelastic fluid. Our findings are explained by the relaxation of the elastic stress, which builds up during the self-propulsion, and is suddenly released when the activity is turned off. In addition to a better understanding of active motion in viscoelastic surroundings, our results may suggest novel steering strategies for synthetic microswimmers in complex environments.
6 figures, New Journal of Physics accepted
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- Memory-based mediated interactions between rigid particulate inclusions in viscoelastic environments
- Autonomously Probing Viscoelasticity in Disordered Suspensions
- Transport of a self-propelled tracer through a hairy cylindrical channel: interplay of stickiness and activity
- Deforming Active Droplets in Viscoelastic Media
- Colloidal Brazil nut effect in microswimmer mixtures induced by motility contrast
- Optothermal pulling, trapping, and assembly of colloids using nanowire plasmons
- Active colloid with externally induced periodic bipolar motility and its cooperative motion
- Colloidal Clusters as models for chiral active micromotors