Effect of fluid-colloid interactions on the mobility of a thermophoretic microswimmer in non-ideal fluids
Dmitry A. Fedosov, Ankush Sengupta, and Gerhard Gompper

TL;DR
This study uses numerical simulations to explore how fluid-colloid interactions and fluid properties influence the mobility of thermophoretic Janus microswimmers, revealing that heat exchange and fluid compressibility significantly affect their behavior.
Contribution
It provides new insights into the impact of fluid-colloid interactions and fluid compressibility on thermophoretic microswimmer mobility using advanced simulation techniques.
Findings
Fluid-colloid interactions strongly influence heat exchange and mobility.
Reduced heat exchange enhances thermophoretic mobility.
Fluid compressibility affects colloid behavior and flow fields.
Abstract
Janus colloids propelled by light, e.g., thermophoretic particles, offer promising prospects as artificial microswimmers. However, their swimming behavior and its dependence on fluid properties and fluid-colloid interactions remain poorly understood. Here, we investigate the behavior of a thermophoretic Janus colloid in its own temperature gradient using numerical simulations. The dissipative particle dynamics method with energy conservation is used to investigate the behavior in non-ideal and ideal-gas like fluids for different fluid-colloid interactions, boundary conditions, and temperature-controlling strategies. The fluid-colloid interactions appear to have a strong effect on the colloid behavior, since they directly affect heat exchange between the colloid surface and the fluid. The simulation results show that a reduction of the heat exchange at the fluid-colloid interface leads…
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