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Topological Defects in a Living Nematic Ensnare Swimming Bacteria

机译:生物盲肠肌肉游泳细菌中的拓扑缺陷

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Active matter exemplified by suspensions of motile bacteria or synthetic self-propelled particles exhibits a remarkable propensity to self-organization and collective motion. The local input of energy and simple particle interactions often lead to complex emergent behavior manifested by the formation of macroscopic vortices and coherent structures with long-range order. A realization of an active system has been conceived by combining swimming bacteria and a lyotropic liquid crystal. Here, by coupling the well-established and validated model of nematic liquid crystals with the bacterial dynamics, we develop a computational model describing intricate properties of such a living nematic. In faithful agreement with the experiment, the model reproduces the onset of periodic undulation of the director and consequent proliferation of topological defects with the increase in bacterial concentration. It yields a testable prediction on the accumulation of bacteria in the cores of + 1 / 2 topological defects and depletion of bacteria in the cores of ? 1 / 2 defects. Our dedicated experiment on motile bacteria suspended in a freestanding liquid crystalline film fully confirms this prediction. Our findings suggest novel approaches for trapping and transport of bacteria and synthetic swimmers in anisotropic liquids and extend a scope of tools to control and manipulate microscopic objects in active matter.
机译:通过运动细菌或合成自挖颗粒的悬浮液例举的活性物质表现出对自组织和集体运动的显着倾向。能量和简单颗粒相互作用的局部输入通常导致复杂的紧急行为,其形成宏观涡流的形成和具有远程顺序的相干结构。通过组合游泳细菌和旋转层液晶来构思活性系统的实现。这里,通过用细菌动力学耦合良好的型列液晶模型,我们开发了描述这种生活列目的复杂性质的计算模型。在忠实的实验协议中,该模型再现了导演的周期性波动发作,并随后随着细菌浓度的增加,拓扑缺陷的激增。它对核心+ 1/2拓扑缺陷的核心核心积累和核心核心的核心的累积产生了可测试的预测1/2缺陷。我们对悬浮在独立液晶膜中的动机细菌的专用实验完全证实了这一预测。我们的研究结果表明了在各向异性液体中捕获和运输细菌和合成游泳者的新方法,并扩展了控制和操纵主动物体的微观物体的工具范围。

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