论文标题

被动粒子从活性引起的能量景观中逃脱:慢速和快速扩散的出现

Escape of a passive particle from activity-induced energy landscape: Emergence of slow and fast effective diffusion

论文作者

Chaki, Subhasish, Chakrabarti, Rajarshi

论文摘要

由主动过程驱动的自发持续运动起着核心作用,可以维持远离平衡的活细胞。在大多数研究工作中,已经描述了有效温度的活动系统的稳态动力学。在大多数研究工作中,已经描述了有效温度的活动系统的稳态动力学。相比之下,我们检查了一个原型模型,以扩散在活动引起的坚固的能量景观中,以描述密集的活性环境中标记粒子的缓慢动力学。从活跃的崎rugged能源景观中平均逃生时间的表达仅在低活动范围内保持,而从坚固的能量景观中的平均逃生时间随着活动而增加。主动相关的精确形式将决定平均逃生时间是否取决于持久时间。活跃的坚固能量景观方法还允许估计非平衡有效扩散率,以表征由于活性引起的标记粒子的缓慢扩散运动。另一方面,在稀释环境中,高活性增强了标记粒子的扩散。增强的扩散可以归因于有效温度,高于环境温度,并用于计算Kramers的平均逃生时间,这随着活动而减少。我们的结果与凝结相的标记颗粒扩散的最新实验直接相关。

Spontaneous persistent motions driven by active processes play a central role to maintain the living cells far from equilibrium. In the majority of the research works, the steady state dynamics of an active system has been described in terms of an effective temperature. In the majority of the research works, the steady state dynamics of an active system has been described in terms of an effective temperature. By contrast, we have examined a prototype model for diffusion in an activity-induced rugged energy landscape to describe the slow dynamics of a tagged particle in a dense active environment. The expression for the mean escape time from the active rugged energy landscape holds only in the limit of low activity and the mean escape time from the rugged energy landscape increases with activity. The precise form of the active correlation will determine whether the mean escape time will depend on the persistence time or not. The active rugged energy landscape approach also allows an estimate of non-equilibrium effective diffusivity characterizing the slow diffusive motion of the tagged particle due to activity. On the other hand, in a dilute environment, high activity augments the diffusion of the tagged particle. The enhanced diffusion can be attributed to an effective temperature, higher than the ambient temperature and is used to calculate the Kramers' mean escape time, which decreases with activity. Our results have direct relevance to recent experiments on tagged particle diffusion in condensed phases.

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