论文标题

活动引起的锯齿棘轮潜能中的捕获

Activity induced trapping in a saw-tooth ratchet potential

论文作者

Muhsin, M, Sahoo, M

论文摘要

我们认为在锯齿棘轮潜力中惯性活跃的Ornstein-Uhlenbeck粒子自我抛光。在整个棘轮中,研究了使用langevin仿真和矩阵继续分数方法,粒子传输,稳态扩散和运输中的连贯性进行了研究。发现空间不对称是在棘轮中定向运输的可能性的关键标准。有趣的是,模拟的粒子轨迹以及相应的位置和速度分布函数表明,该系统通过动力学的自动螺旋/活动时间从运行阶段到锁定阶段的运输中通过活动诱导的过渡。均方位移(MSD)计算进一步证实了这一点。 MSD随着介质中的活动持续性的增加而被抑制,最终在非常大的自推动时间价值中接近零,这反映了棘轮将粒子捕获的一种捕获,以使介质中的活动持续更长。粒子电流的非单调行为和带有自推进时间的小子数证实,通过微调持续的活性持续时间,可以增强或降低粒子的传输及其连贯性。此外,对于动力学中的自我传播时间的中间范围以及粒子质量的中间范围,即使粒子电流显示出明显的不寻常的最大值,质量也没有增强,而是peclet数量没有增强,而是随着质量的质量,peclet的数量降低了,确认了运输中相干性的脱落。最后,从分析计算中,可以观察到,对于高粘性介质而言,惯性影响可忽略不足,粒子电流接近过度阻尼状态中的电流。

We consider an inertial active Ornstein-Uhlenbeck particle self-propelling in a saw-tooth ratchet potential. Using the Langevin simulation and matrix continued fraction method, the particle transport, steady state diffusion, and coherence in transport are investigated throughout the ratchet. Spatial asymmetry is found to be the key criterion for the possibility of directed transport in the ratchet. Interestingly, the simulated particle trajectories and the corresponding position and velocity distribution functions reveal that the system passes through an activity-induced transition in the transport from the running phase to the locked phase with the self-propulsion/activity time of the dynamics. This is further corroborated by the mean square displacement (MSD) calculation. The MSD gets suppressed with increase in the persistence of activity in the medium and finally approaches zero for very large value of self propulsion time, reflecting a kind of trapping of the particle by the ratchet for longer persistent of activity in the medium. The non-monotonic behaviour of the particle current and Peclet number with self propulsion time confirms that the particle transport and it's coherence can be enhanced or reduced by fine tuning the persistent duration of activity. Moreover, for an intermediate range of self-propulsion time in the dynamics as well as for an intermediate range of mass of the particle, even though the particle current shows a pronounced unusual maximum with mass, there is no enhancement in the Peclet number, instead the Peclet number decreases with mass, confirming the degradation of coherence in transport. Finally, from the analytical calculations, it is observed that for a highly viscous medium, where the inertial influence is negligibly small, the particle current approaches the current in the over damped regime.

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