集体运动
活性物质
微尺度化学
集体行为
群体行为
植绒(纹理)
生命系统
运动(物理)
稳健性(进化)
生物系统
经典力学
计算机科学
物理
纳米技术
材料科学
人工智能
生物
社会学
数学教育
人类学
基因
细胞生物学
量子力学
生物化学
数学
作者
Zhihan Chen,Hongru Ding,Pavana Siddhartha Kollipara,Jingang Li,Yuebing Zheng
标识
DOI:10.1002/adma.202304759
摘要
Abstract The collective motion observed in living active matter, such as fish schools and bird flocks, is characterized by its dynamic and complex nature, involving various moving states and transitions. By tailoring physical interactions or incorporating information exchange capabilities, inanimate active particles can exhibit similar behavior. However, the lack of synchronous and arbitrary control over individual particles hinders their use as a test system for the study of more intricate collective motions in living species. Herein, a novel optical feedback control system that enables the mimicry of collective motion observed in living objects using active particles is proposed. This system allows for the experimental investigation of the velocity alignment, a seminal model of collective motion (known as the Vicsek model), in a microscale perturbed environment with controllable and realistic conditions. The spontaneous formation of different moving states and dynamic transitions between these states is observed. Additionally, the high robustness of the active‐particle group at the critical density under the influence of different perturbations is quantitatively validated. These findings support the effectiveness of velocity alignment in real perturbed environments, thereby providing a versatile platform for fundamental studies on collective motion and the development of innovative swarm microrobotics.
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