Palmer Bryce, Chen Sheng, Govan Patrick, Yan Wen, Gao Tong
Department of Mechanical Engineering, Michigan State University, East Lansing, MI 48864, USA.
Department of Biomedical Engineering, Yale University, West Haven, CT 06516, USA.
Soft Matter. 2022 Feb 2;18(5):1013-1018. doi: 10.1039/d1sm01405f.
Dense assemblies of self-propelling rods (SPRs) may exhibit fascinating collective behaviors and anomalous physical properties that are far away from equilibrium. Using large-scale Brownian dynamics simulations, we investigate the dynamics of disclination defects in 2D fluidized swarming motions of dense dry SPRs (, without hydrodynamic effects) that form notable local positional topological structures that are reminiscent of smectic order. We find the deformations of smectic-like rod layers can create unique polar structures that lead to slow translations and rotations of ±1/2-order defects, which are fundamentally different from the fast streaming defect motions observed in wet active matter. We measure and characterize the statistical properties of topological defects and reveal their connections with the coherent structures. Furthermore, we construct a bottom-up active-liquid-crystal model to analyze the instability of polar lanes, which effectively leads to defect formation between interlocked polar lanes and serves as the origin of the large-scale swarming motions.
自推进棒(SPR)的密集集合可能会表现出迷人的集体行为和远离平衡态的异常物理性质。通过大规模布朗动力学模拟,我们研究了密集干燥SPR二维流化群聚运动(无流体动力学效应)中向错缺陷的动力学,这些运动形成了值得注意的局部位置拓扑结构,让人联想到近晶序。我们发现,类近晶棒层的变形会产生独特的极性结构,导致±1/2阶缺陷的缓慢平移和旋转,这与在湿活性物质中观察到的快速流动缺陷运动有根本不同。我们测量并表征了拓扑缺陷的统计性质,并揭示了它们与相干结构的联系。此外,我们构建了一个自下而上的活性液晶模型来分析极性通道的不稳定性,这有效地导致了互锁极性通道之间的缺陷形成,并成为大规模群聚运动的起源。