Spatial heterogeneity can facilitate the target search of self-propelled particles.

Wang, Jiajun; Zhang, Donghua; Xia, Baicheng; Yu, Wancheng · Soft Matter · 2017

basic_science · Level V

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Abstract

A numerical investigation of the target search dynamics of self-propelled particles (SPPs) in heterogeneous environments is presented in this work. We show that the spatial heterogeneity has a dramatic effect on the target search dynamics of SPPs. The relative magnitude of the self-propulsion length l<sub>p</sub> and the radius of the circular domain R<sub>c</sub> determines how the mean search time of SPPs τ depends on the area fraction of fixed obstacles ϕ<sub>ob</sub>. For l<sub>p</sub> < R<sub>c</sub>, the target search process is diffusion-dominated so that a monotonic increase in τ with increasing ϕ<sub>ob</sub> is observed. For l<sub>p</sub> > R<sub>c</sub>, τ is shown to be a non-monotonic convex function as a function of ϕ<sub>ob</sub> due to the interplay of the distribution-dominated and diffusion-dominated dynamic regimes. Furthermore, at fixed ϕ<sub>ob</sub>, τ shows a minimum upon increasing the self-propulsion velocity v<sub>0</sub> of a SPP of a slow rotational diffusion when it searches for a target at low ϕ<sub>ob</sub>, while it decreases monotonically at high ϕ<sub>ob</sub>. The present work highlights that the introduction of spatial heterogeneity causes rich dynamic behaviors of a SPP searching for a target, and deepens our understanding of the transport of active matter in heterogeneous media.