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活性环从吸引表面逸出:表现得像一个自驱动布朗粒子。

Escape of an active ring from an attractive surface: Behaving like a self-propelled Brownian particle.

作者信息

Tang Bin, Gao Jin-Cheng, Chen Kang, Zhang Tian Hui, Tian Wen-de

机构信息

Center for Soft Condensed Matter Physics and Interdisciplinary Research, <a href="https://ror.org/05t8y2r12">Soochow University</a>, Suzhou 215006, China.

出版信息

Phys Rev E. 2024 Sep;110(3-1):034609. doi: 10.1103/PhysRevE.110.034609.

Abstract

Escape of active agents from metastable states is of great interest in statistical and biological physics. In this paper, we investigate the escape of a flexible active ring, composed of active Brownian particles, from a flat attractive surface using Brownian dynamics simulations. To systematically explore the effects of activity, persistence time, and the shape of attractive potentials, we calculate escape time τ_{e} and effective temperature T_{eff}. We observe two distinct escape mechanisms: Kramers-like thermal activation at small persistence times, where ln(τ_{e})∼1/(k_{B}T_{eff}), and the maximal force problem at large persistence time, where τ_{e} is determined by persistence time. The escape time explicitly depends on the shape of the potential barrier at high activity and large persistence time. Moreover, when the propulsion force is biased along the ring's contour, escape becomes more difficult and is primarily driven by thermal noise. Our findings highlight that, despite its intricate configuration, the active ring can be effectively modeled as a self-propelled Brownian particle when studying its escape from a smooth surface.

摘要

在统计物理学和生物物理学中,活性粒子从亚稳态逃逸是一个备受关注的问题。在本文中,我们使用布朗动力学模拟研究了由活性布朗粒子组成的柔性活性环从平坦吸引表面的逃逸过程。为了系统地探究活性、持续时间和吸引势形状的影响,我们计算了逃逸时间τₑ和有效温度Tₑff。我们观察到两种不同的逃逸机制:在短持续时间下类似Kramers的热激活,其中ln(τₑ) ∼ 1/(kBTₑff),以及在长持续时间下的最大力问题,其中τₑ由持续时间决定。在高活性和长持续时间下,逃逸时间明确依赖于势垒的形状。此外,当推进力沿环的轮廓有偏置时,逃逸变得更加困难,并且主要由热噪声驱动。我们的研究结果表明,尽管活性环的构型复杂,但在研究其从光滑表面逃逸时,可以有效地将其建模为自推进布朗粒子。

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