Dipartimento di Fisica, Sapienza Università di Roma, Piazzale A. Moro 5, I-00185, Rome, Italy.
NANOTEC-CNR, Soft and Living Matter Laboratory, Institute of Nanotechnology, Piazzale A. Moro 5, I-00185, Rome, Italy.
Nat Commun. 2022 May 18;13(1):2740. doi: 10.1038/s41467-022-30201-1.
Active particles can self-propel by exploiting locally available energy resources. When powered by light, these resources can be distributed with high resolution allowing spatio-temporal modulation of motility. Here we show that the random walks of light-driven bacteria are rectified when they swim in a structured light field that is obtained by a simple geometric transformation of a previous system snapshot. The obtained currents achieve an optimal value that we establish by general theoretical arguments. This optical feedback is used to gather and confine bacteria in high-density and high-activity regions that can be dynamically relocated and reconfigured. Moving away from the boundaries of these optically confined states, the density decays to zero in a few tens of micrometers, exhibiting steep exponential tails that suppress cell escape and ensure long-term stability. Our method is general and scalable, providing a versatile tool to produce localized and tunable active baths for microengineering applications and systematic studies of non-equilibrium phenomena in active systems.
活性粒子可以通过利用局部可用的能源来自我推进。当由光驱动时,这些资源可以以高分辨率分布,从而实现运动的时空调制。在这里,我们展示了当光驱动的细菌在通过对先前系统快照进行简单几何变换获得的结构化光场中游泳时,它们的随机游动被纠正。通过一般的理论论证,我们确定了所得到的电流达到了最佳值。这种光学反馈可用于收集和限制高密度和高活性的细菌,这些细菌可以动态地重新定位和重新配置。远离这些光限制状态的边界,密度在几十微米内衰减到零,呈现出陡峭的指数尾部,抑制了细胞逃逸并确保了长期稳定性。我们的方法具有通用性和可扩展性,为微工程应用提供了一种通用且可调谐的局部活性浴的产生方法,并为活性系统中非平衡现象的系统研究提供了一种工具。