论文标题

在聚合物介质中的球形自行示踪剂的动力学:自我推测,粘性和拥挤的相互作用

Dynamics of a spherical self-propelled tracer in a polymeric medium: interplay of self-propulsion, stickiness, and crowding

论文作者

Yadav, Ramanand Singh, Das, Chintu, Chakrabarti, Rajarshi

论文摘要

我们采用计算机模拟来研究由长聚合物链制成的粘弹性介质中自构的球形示踪粒子的动力学。在这里,粘弹性,粘性和活性(自我推测)之间的相互作用为示踪剂动力学带来了更多的复杂性。我们的模拟表明,将示踪剂粒子的粘性增加到聚合物珠时,示踪剂粒子的动力学会在粘在聚合物链上时变慢,并随之移动。但是,随着自我推广速度的提高,动力学得到了增强。如果粘性和活性增加,非高斯参数(NGP)表现出非单调的行为,这也显示在van-hove功能的重新缩放自我部分中。由于增强的结合事件以及示踪剂的粘性运动以及链条的粘性,其粘性随着粘性的增加而导致的非豪斯性结果。另一方面,随着活动的增加,随着示踪剂穿过异质聚合物环境的移动,最初非高斯性增加,但对于更高的活性,逃逸导致了负NGP负。对于更高的粘性值,被动示踪粒子的捕获时间分布宽扩大并具有长尾巴。另一方面,对于给定的自我刺激力的粘性,同样的尾巴变窄且尾巴短。我们认为,我们当前的模拟研究将有助于阐明粘弹性介质中活动驱动探针的复杂运动。

We employ computer simulations to study the dynamics of a self-propelled spherical tracer particle in a viscoelastic medium, made of a long polymer chain. Here, the interplay between viscoelasticity, stickiness, and activity (self-propulsion) brings additional complexity to the tracer dynamics. Our simulation shows that on increasing the stickiness of the tracer particle to the polymer beads, the dynamics of the tracer particle slows down as it gets stuck to the polymer chain, and moves along with it. But with increasing the self-propulsion velocity, the dynamics gets enhanced. In case of increasing stickiness as well as activity, the non-Gaussian parameter (NGP) exhibits non-monotonic behavior, which also shows up in the re-scaled self part of the van-Hove function. Non-Gaussianity results owing to the enhanced binding events, and the sticky motion of the tracer along with the chain with increasing stickiness. On the other hand, with increasing activity, initially non-Gaussianity increases as the tracer moves through the heterogenous polymeric environment but for higher activity, escapes resulting negative NGP. For higher values of stickiness, the trapping time distributions of the passive tracer particle broadens and have long tails. On the other hand, for a given stickiness with increasing self-propulsion force, the same becomes narrower and have short tails. We believe that our current simulation study will be helpful in elucidating the complex motion of activity-driven probes in viscoelastic media.

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