1] Center for Soft Condensed Matter Physics and Interdisciplinary Research, Soochow University, Suzhou 215006, China [2] National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University, Nanjing 210093, China.
Nat Commun. 2013;4:3013. doi: 10.1038/ncomms4013.
Topological defects frequently emerge in active matter like bacterial colonies, cytoskeleton extracts on substrates, self-propelled granular or colloidal layers and so on, but their dynamical properties and the relations to large-scale organization and fluctuations in these active systems are seldom touched. Here we reveal, through a simple model for active nematics using self-driven hard elliptic rods, that the excitation, annihilation and transportation of topological defects differ markedly from those in non-active media. These dynamical processes exhibit strong irreversibility in active nematics in the absence of detailed balance. Moreover, topological defects are the key factors in organizing large-scale dynamic structures and collective flows, resulting in multi-spatial temporal effects. These findings allow us to control the self-organization of active matter through topological structures.
拓扑缺陷经常出现在活性物质中,如细菌菌落、基质上的细胞骨架提取物、自主推进的颗粒或胶体层等,但它们的动力学性质以及与这些活性系统中大规模组织和涨落的关系很少被触及。在这里,我们通过使用自驱动硬椭圆棒的活性向列模型揭示了,拓扑缺陷的激发、湮灭和输运与非活性介质中的显著不同。这些动力学过程在没有详细平衡的情况下表现出活性向列体的强烈不可逆性。此外,拓扑缺陷是组织大尺度动态结构和集体流动的关键因素,导致多时空效应。这些发现使我们能够通过拓扑结构来控制活性物质的自组织。