论文标题

控制主动拓扑缺陷的设计规则

Design rules for controlling active topological defects

论文作者

Shankar, Suraj, Scharrer, Luca V. D., Bowick, Mark J., Marchetti, M. Cristina

论文摘要

拓扑缺陷在许多材料的物理学中起着核心作用,包括磁铁,超导体和液晶。在活跃的流体中,缺陷成为自主颗粒,从内部活跃应力自发推动并驱动混乱的流动搅动流体。缺陷纹理与活动流之间的紧密联系表明,可以通过控制缺陷来设计活性材料的性能,但是它们的时空控制的设计原理仍然难以捉摸。在这里,我们提出了一种基于对称性的添加剂策略,用于使用基本活动模式作为主动拓扑镊子来创建,移动和编织此类缺陷。通过结合理论和仿真,我们演示了在集体水平上,空间活动梯度的作用如何像电场一样,如果足够强,则诱导缺陷的倒拓扑极化,类似于负易感性介电。我们将此功能在动态设置中利用,以集体模式和运输相互作用的活动缺陷。我们的工作建立了一个添加框架来雕刻流量并操纵空间和时间的主动缺陷,为设计可编程的活动和活材料铺平了道路,用于运输,内存和逻辑。

Topological defects play a central role in the physics of many materials, including magnets, superconductors and liquid crystals. In active fluids, defects become autonomous particles that spontaneously propel from internal active stresses and drive chaotic flows stirring the fluid. The intimate connection between defect textures and active flow suggests that properties of active materials can be engineered by controlling defects, but design principles for their spatiotemporal control remain elusive. Here we propose a symmetry-based additive strategy for using elementary activity patterns, as active topological tweezers, to create, move and braid such defects. By combining theory and simulations, we demonstrate how, at the collective level, spatial activity gradients act like electric fields which, when strong enough, induce an inverted topological polarization of defects, akin to a negative susceptibility dielectric. We harness this feature in a dynamic setting to collectively pattern and transport interacting active defects. Our work establishes an additive framework to sculpt flows and manipulate active defects in both space and time, paving the way to design programmable active and living materials for transport, memory and logic.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源