Kumar Manoj, Murali Aniruddh, Subramaniam Arvin Gopal, Singh Rajesh, Thutupalli Shashi
Simons Centre for the Study of Living Machines, National Centre for Biological Sciences, Tata Institute of Fundamental Research, Bangalore, India.
Department of Physics, Indian Institute of Technology, Chennai, India.
Nat Commun. 2024 Jun 8;15(1):4903. doi: 10.1038/s41467-024-49155-7.
The field of synthetic active matter has, thus far, been led by efforts to create point-like, isolated (yet interacting) self-propelled objects (e.g. colloids, droplets, microrobots) and understanding their collective dynamics. The design of flexible, freely jointed active assemblies from autonomously powered sub-components remains a challenge. Here, we report freely-jointed active polymers created using self-propelled droplets as monomeric units. Our experiments reveal that the self-shaping chemo-hydrodynamic interactions between the monomeric droplets give rise to an emergent rigidity (the acquisition of a stereotypical asymmetric C-shape) and associated ballistic propulsion of the active polymers. The rigidity and propulsion of the chains vary systematically with their lengths. Using simulations of a minimal model, we establish that the emergent polymer dynamics are a generic consequence of quasi two-dimensional confinement and auto-repulsive trail-mediated chemical interactions between the freely jointed active droplets. Finally, we tune the interplay between the chemical and hydrodynamic fields to experimentally demonstrate oscillatory dynamics of the rigid polymer propulsion. Altogether, our work highlights the possible first steps towards synthetic self-morphic active matter.
到目前为止,合成活性物质领域一直致力于创造点状、孤立(但相互作用)的自推进物体(如胶体、液滴、微型机器人)并理解它们的集体动力学。由自主供能的子组件设计灵活、自由连接的活性组件仍然是一项挑战。在此,我们报告了使用自推进液滴作为单体单元创建的自由连接活性聚合物。我们的实验表明,单体液滴之间的自成型化学流体动力学相互作用产生了一种涌现的刚性(获得典型的不对称C形)以及活性聚合物相关的弹道推进。链的刚性和推进随其长度系统地变化。通过一个最小模型的模拟,我们确定涌现的聚合物动力学是准二维限制以及自由连接的活性液滴之间自排斥尾迹介导的化学相互作用的普遍结果。最后,我们调节化学和流体动力学场之间的相互作用,通过实验证明刚性聚合物推进的振荡动力学。总之,我们的工作突出了迈向合成自变形活性物质可能的第一步。