论文标题

通过主动鸟类中的弹性带弹出拓扑缺陷

Catapulting of topological defects through elasticity bands in active nematics

论文作者

Kumar, Nitin, Zhang, Rui, Redford, Steven A., de Pablo, Juan J., Gardel, Margaret L.

论文摘要

活性材料是单个不协调的局部应力在全球范围内使材料脱离平衡的材料。可以在从鱼类流派到细胞细胞骨架的尺度上看到此类组件的例子,并以许多重要的生物学过程为基础。概括此类活动系统基本特征的合成实验已成为研究的对象,因为它们的简单规则使我们能够阐明集体运动的物理基础。一个特别感兴趣的系统是活跃的列液晶(LCS)。由于他们对被动物理的理解,LCS提供了一个丰富的平台来询问主动压力的影响。在活性LC中出现的流量和稳态结构已被理解为列明弹性与局部活性之间的竞争。但是,大多数对这种现象的研究仅考虑弹性抗性的大小,而不是其特点。在这里,我们研究了列液晶,并选择性地改变了材料的张力和弯曲弹性的比率。我们表明,列型弯曲弹性的增加专门将材料驱动到异国情调的稳态中,在这种稳态中,急性弯曲变形或“弹性波段”的拉长区域主导了结构和动力学。我们表明,这些频段强烈影响缺陷动力学,包括沿其中一个频段瓦解的快速运动或“弹射”,从而将弯曲失真转化为缺陷转运。因此,我们报告了列弹性和主动应力之间的竞争竞争产生的新型动力状态。

Active materials are those in which individual, uncoordinated local stresses drive the material out of equilibrium on a global scale. Examples of such assemblies can be seen across scales from schools of fish to the cellular cytoskeleton and underpin many important biological processes. Synthetic experiments that recapitulate the essential features of such active systems have been the object of study for decades as their simple rules allow us to elucidate the physical underpinnings of collective motion. One system of particular interest has been active nematic liquid crystals (LCs). Because of their well understood passive physics, LCs provide a rich platform to interrogate the effects of active stress. The flows and steady state structures that emerge in an active LCs have been understood to result from a competition between nematic elasticity and the local activity. However most investigations of such phenomena consider only the magnitude of the elastic resistance and not its peculiarities. Here we investigate a nematic liquid crystal and selectively change the ratio of the material's splay and bend elasticities. We show that increases in the nematic's bend elasticity specifically drives the material into an exotic steady state where elongated regions of acute bend distortion or "elasticity bands" dominate the structure and dynamics. We show that these bands strongly influence defect dynamics, including the rapid motion or "catapulting" along the disintegration of one of these bands thus converting bend distortion into defect transport. Thus, we report a novel dynamical state resultant from the competition between nematic elasticity and active stress.

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