Directed transport and collective dynamics of pulsing particles in topological lattices.

IF 2.4 3区 物理与天体物理 Q1 Mathematics
Wei-Jing Zhu, Xiao-Kun Jiang, Jia-Jian Li, Bao-Quan Ai
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引用次数: 0

Abstract

We investigated the directed transport and collective patterns of pulsing particles with periodic size variation in topological lattices. Self-pulsing provides energy input at the individual level and serves as nonequilibrium driving. The distribution of the topological lattice determines the direction of particle motion, with pulsing particles preferentially moving toward high-density lattice regions, in contrast to the behavior of conventional active particles. The competition dynamics of repulsion contraction and synchronization give rise to deformation waves in dense particle environments, including both planar and circular waves, corresponding to a disordered state. These deformation waves exhibit local order but global disorder. Notably, directed transport is most pronounced in the disordered state, whereas particles exhibit no directed transport in the arrested ordered state. Additionally, optimal values of the self-pulsing parameters (the driving frequency, the self-pulsation amplitude, and the strengths of synchronization) lead to a peak in the average velocity. The particle number density also significantly influences directed transport, as an increase in number density promotes directed transport.

拓扑晶格中脉冲粒子的定向输运和集体动力学。
我们研究了拓扑晶格中具有周期性尺寸变化的脉冲粒子的定向输运和集体模式。自脉冲在个体水平上提供能量输入,并作为非平衡驱动。拓扑晶格的分布决定了粒子运动的方向,与传统活性粒子的行为相反,脉冲粒子优先向高密度晶格区域移动。在致密粒子环境中,斥力、收缩和同步的竞争动力学产生了变形波,包括平面波和圆形波,对应于一种无序状态。这些变形波表现为局部有序而全局无序。值得注意的是,定向输运在无序态中最为明显,而粒子在被捕获的有序态中没有定向输运。此外,自脉冲参数(驱动频率、自脉冲幅值和同步强度)的最优值导致平均速度达到峰值。粒子数密度也显著影响定向输运,因为粒子数密度的增加促进了定向输运。
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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来源期刊
Physical review. E
Physical review. E 物理-物理:流体与等离子体
CiteScore
4.60
自引率
16.70%
发文量
0
审稿时长
3.3 months
期刊介绍: Physical Review E (PRE), broad and interdisciplinary in scope, focuses on collective phenomena of many-body systems, with statistical physics and nonlinear dynamics as the central themes of the journal. Physical Review E publishes recent developments in biological and soft matter physics including granular materials, colloids, complex fluids, liquid crystals, and polymers. The journal covers fluid dynamics and plasma physics and includes sections on computational and interdisciplinary physics, for example, complex networks.
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