Programmable Hydrodynamics of Active Particles
Lisa Rohde, Gordei Anchutkin, Viktor Holubec, Frank Cichos

TL;DR
This paper demonstrates a method to dynamically program and switch the hydrodynamic behavior of microswimmers between pusher and puller modes using patterned laser heating, enabling new explorations in active matter physics.
Contribution
The authors introduce a technique to controllably switch the hydrodynamic class of active particles in real time, which was not possible in previous synthetic systems.
Findings
Flow fields match theoretical predictions.
Swimmers can switch modes while maintaining movement.
Hydrodynamic mode affects efficiency and symmetry.
Abstract
Self-propelled microparticles create flow fields that determine how they interact with surfaces, external flows, and each other. These flow fields fall into distinct classes--pushers, pullers, and neutral swimmers--each exhibiting fundamentally different collective behaviors. In all existing synthetic systems, this hydrodynamic character is permanently set during fabrication, making it impossible to explore how adaptive switching between these classes might enable new functions or emergent phenomena. Here we demonstrate that the hydrodynamic character of a microswimmer can be programmed and switched on demand. Using patterned laser heating of surface-bound nanoparticles, we create tailored temperature gradients that drive controllable boundary flows at the particle surface. By changing the illumination pattern in real time, we dynamically transform the swimmers flow field continuously…
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Taxonomy
TopicsMicro and Nano Robotics · Pickering emulsions and particle stabilization · Modular Robots and Swarm Intelligence
