Chardac Amélie, Shankar Suraj, Marchetti M Cristina, Bartolo Denis
Université de Lyon, École Normale Supérieure de Lyon, Université Claude Bernard, CNRS, Laboratoire de Physique, F-69342 Lyon, France.
Department of Physics, Harvard University, Cambridge, MA 02138.
Proc Natl Acad Sci U S A. 2021 Mar 9;118(10). doi: 10.1073/pnas.2018218118.
In equilibrium, disorder conspires with topological defects to redefine the ordered states of matter in systems as diverse as crystals, superconductors, and liquid crystals. Far from equilibrium, however, the consequences of quenched disorder on active condensed matter remain virtually uncharted. Here, we reveal a state of strongly disordered active matter with no counterparts in equilibrium: a dynamical vortex glass. Combining microfluidic experiments and theory, we show how colloidal flocks collectively cruise through disordered environments without relaxing the topological singularities of their flows. The resulting state is highly dynamical but the flow patterns, shaped by a finite density of frozen vortices, are stationary and exponentially degenerated. Quenched isotropic disorder acts as a random gauge field turning active liquids into dynamical vortex glasses. We argue that this robust mechanism should shape the collective dynamics of a broad class of disordered active matter, from synthetic active nematics to collections of living cells exploring heterogeneous media.
在平衡状态下,无序与拓扑缺陷共同作用,重新定义了诸如晶体、超导体和液晶等各种系统中物质的有序状态。然而,在远离平衡的情况下,猝灭无序对活性凝聚态物质的影响实际上仍未被探索。在这里,我们揭示了一种在平衡状态下不存在对应物的强无序活性物质状态:动态涡旋玻璃态。结合微流体实验和理论,我们展示了胶体群如何在无序环境中集体巡游,而不消除其流动的拓扑奇点。由此产生的状态具有高度动态性,但由有限密度的冻结涡旋塑造的流动模式是静止的且呈指数级退化。猝灭各向同性无序充当随机规范场,将活性液体转变为动态涡旋玻璃态。我们认为,这种强大的机制应该塑造了从合成活性向列相到探索异质介质的活细胞集合等一大类无序活性物质的集体动力学。