Chirality Reversing Active Brownian Motion in Two Dimensions
Santanu Das, Urna Basu

TL;DR
This paper investigates the complex dynamics of chirality reversing active Brownian particles in two dimensions, revealing four distinct regimes with unique behaviors influenced by reversing rate and rotational diffusion.
Contribution
It introduces a comprehensive analysis of the four dynamical regimes of chirality reversing active Brownian motion, highlighting the effects of two key time-scales on particle behavior.
Findings
Four dynamical regimes identified based on time scales
Short-time regime shows anisotropic, non-Gaussian distribution
Long-time regime exhibits diffusive Gaussian behavior
Abstract
We study the dynamics of a chirality reversing active Brownian particle, which models the chirality reversing active motion common in many microorganisms and microswimmers. We show that, for such a motion, the presence of the two time-scales set by the chirality reversing rate and rotational diffusion constant gives rise to four dynamical regimes, namely, (I) , (II) , (III) and (IV) , each showing different behaviour. The short-time regime (I) is characterized by a strongly anisotropic and non-Gaussian position distribution, which crosses over to a diffusive Gaussian behaviour in the long-time regime (IV) via an intermediate regime (II) or (III), depending on the relative strength of and . In regime (II), the…
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Taxonomy
TopicsMicro and Nano Robotics · Advanced Thermodynamics and Statistical Mechanics · Molecular Communication and Nanonetworks
