Simulation of active Brownian particles in optical potentials

G. Volpe, S. Gigan, G. Volpe
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Abstract

Optical forces can affect the motion of a Brownian particle. For example, optical tweezers use optical forces to trap a particle at a desirable position. Unlike passive Brownian particles, active Brownian particles, also known as microswimmers, propel themselves with directed motion and thus drive themselves out of equilibrium. Understanding their motion in a confined potential can provide insight into out-of-equilibrium phenomena associated with biological examples such as bacteria, as well as with artificial microswimmers. We discuss how to mathematically model their motion in an optical potential using a set of stochastic differential equations and how to numerically simulate it using the corresponding set of finite difference equations.
光势中活跃布朗粒子的模拟
光力可以影响布朗粒子的运动。例如,光镊利用光力将粒子困在理想位置。与被动布朗粒子不同,主动布朗粒子,也被称为微游泳者,以定向运动推动自己,从而使自己脱离平衡。了解它们在受限势中的运动可以帮助我们深入了解与细菌等生物例子以及人工微游泳者相关的不平衡现象。我们讨论了如何用一组随机微分方程在数学上模拟它们在光势中的运动,以及如何用相应的一组有限差分方程对其进行数值模拟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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