Surfing and crawling macroscopic active particles under strong confinement: Inertial dynamics

M. Leoni, M. Paoluzzi, Sarah Eldeen, A. Estrada, Lauren Nguyen, M. Alexandrescu, Karin Sherb, W. Ahmed
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引用次数: 13

Abstract

We study two types of active (self-propelled) macroscopic particles under confinement: camphor surfers and hexbug crawlers, using a combined experimental, theoretical, and numerical approach. Unlike widely studied microscopic active particles and swimmers, where thermal forces are often important and inertia is negligible, our macroscopic particles exhibit complex dynamics due expressly to active non-thermal noise combined with inertial effects. Hard confinement induces accumulation at a finite distance within the boundary and gives rise to three distinguishable dynamical states; both depending on activity and inertia. These surprisingly complex dynamics arise already at the single particle level -- highlighting the importance of inertia in macroscopic active matter.
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强约束下宏观活性粒子的冲浪和爬行:惯性动力学
本文采用实验、理论和数值相结合的方法,研究了约束条件下两种主动(自推进)宏观粒子:樟脑冲浪者和六虫爬行者。与广泛研究的微观主动粒子和游泳者不同,其中热作用力通常很重要,惯性可以忽略不计,我们的宏观粒子表现出复杂的动力学,这明显是由于主动非热噪声与惯性效应相结合。硬约束引起边界内有限距离的积累,并产生三种可区分的动力学状态;都取决于活动和惰性。这些令人惊讶的复杂动力学已经在单个粒子水平上出现了——突出了宏观活性物质中惯性的重要性。
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