Enhanced rotational diffusion and spontaneous rotation of an active Janus disk in a complex fluid
Marco De Corato, Paula Mart\'inez-Lera

TL;DR
This study uses numerical simulations to show that active Janus disks in complex fluids experience significantly enhanced rotational diffusion and spontaneous rotation, influenced by fluid microstructure and propulsion speed.
Contribution
The paper introduces a finite element simulation approach to model the rotational dynamics of active Janus disks in complex fluids, revealing new behaviors like spontaneous rotation and increased diffusion.
Findings
Enhanced rotational diffusion observed in simulations.
Spontaneous rotation occurs at higher propulsion speeds.
Rotational behaviors depend on fluid microstructure and particle interactions.
Abstract
Active colloids and self-propelled particles moving through microstructured fluids can display different behavior compared to what is observed in simple fluids. As they are driven out of equilibrium in complex fluids they can experience enhanced translational and rotational diffusion as well as instabilities. In this work, we study the deterministic and the Brownian rotational dynamics of an active Janus disk propelling at a constant speed through a complex fluid. The interactions between the Janus disk and the complex fluid are modeled using a fluctuating advection-diffusion equation, which we solve using the finite element method. Motivated by experiments, we focus on the case of a complex fluid comprising molecules that are much smaller than the size of the active disk but much bigger than the solvent. Using numerical simulations, we elucidate the interplay between active motion and…
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Taxonomy
TopicsMicro and Nano Robotics · Pickering emulsions and particle stabilization
