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Updated: May 12, 2026

Preparation and 3D Tracking of Catalytic Swimming Devices
Published on: July 1, 2016
Is chemical asymmetry necessary for directed motion in catalytic swimmers?
Sangeeta Kumari1, Chandra Shekhar2, Aryan Sharma1
1Department of Chemical Engineering, Indian Institute of Technology Ropar, Rupnagar 140001, Punjab, India.
Abstract:
In the context of directed motion or self-propelled catalytic swimmers, a central open question is whether Janus-type chemical asymmetry is essential for inducing self-propulsion. However, to tackle this unresolved puzzle, we demonstrate that anisotropic catalytic colloids, possessing chemically homogeneous surface activity but asymmetric geometry, exhibit sustained non-equilibrium propulsion, biasing Brownian dynamics toward directed motion. Self-propelled anisotropic colloids provide a versatile platform for investigating non-equilibrium transport and collective dynamics in active matter systems. Shape anisotropy introduces additional degrees of freedom that strongly influence propulsion mechanisms and self-assembly in bulk suspensions. Here, we report the synthesis of anisotropic platinum-coated polystyrene (PS-Pt) particles with an acorn-like geometry (1 μm) using a temperature-induced deformation approach. We examine the propulsion and collective behavior of these acorn-shaped particles in their monomeric, dimeric, and trimeric forms whose pronounced geometric asymmetry distinguishes them from Janus colloids. Self-propulsion is driven by the asymmetric catalytic decomposition of hydrogen peroxide on the platinum-coated region, resulting in sustained translational motion. The curvature anisotropy of the acorn geometry generates uneven solute gradients and induces motion. Statistical analyses based on Gaussian and non-Gaussian displacement distributions confirm the active nature of the observed transport and elucidate the flow behavior of both individual particles and self-assembled structures.
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