Yu Nan, Shah Zameer H, Yang Mingcheng, Gao Yongxiang
Institute for Advanced Study, Shenzhen University, 518060, Shenzhen, China.
Key Laboratory of Optoelectronic Device and Systems of Ministry of Education and Guangdong Province, College of Optoelectronic Engineering, Shenzhen University, 518060, Shenzhen, China.
Research (Wash D C). 2024 Jan 24;7:0304. doi: 10.34133/research.0304. eCollection 2024.
Mixtures of active self-propelled and passive colloidal particles promise rich assembly and dynamic states that are beyond reach via equilibrium routes. Yet, controllable transition between different dynamic states remains rare. Here, we reveal a plethora of dynamic behaviors emerging in assemblies of chemically propelled snowman-like active colloids and passive spherical particles as the particle shape, size, and composition are tuned. For example, assembles of one or more active colloids with one passive particle exhibit distinct translating or orbiting states while those composed of one active colloid with 2 passive particles display persistent "8"-like cyclic motion or hopping between circling states around one passive particle in the plane and around the waist of 2 passive ones out of the plane, controlled by the shape of the active colloid and the size of the passive particles, respectively. These morphology-tailored dynamic transitions are in excellent agreement with state diagrams predicted by mesoscale dynamics simulations. Our work discloses new dynamic states and corresponding transition strategies, which promise new applications of active systems such as micromachines with functions that are otherwise impossible.
活性自推进胶体粒子与被动胶体粒子的混合物有望呈现出丰富的组装和动态状态,这是通过平衡途径无法实现的。然而,不同动态状态之间的可控转变仍然很少见。在这里,我们揭示了随着粒子形状、大小和组成的调整,在化学推进的雪人状活性胶体和被动球形粒子的组装中出现了大量的动态行为。例如,一个或多个活性胶体与一个被动粒子的组装表现出不同的平移或轨道状态,而由一个活性胶体与两个被动粒子组成的组装则呈现出持续的“8”字形循环运动,或在平面内围绕一个被动粒子以及在平面外围绕两个被动粒子的腰部的圆周状态之间跳跃,分别由活性胶体的形状和被动粒子的大小控制。这些形态定制的动态转变与中尺度动力学模拟预测的状态图非常吻合。我们的工作揭示了新的动态状态和相应的转变策略,这有望为活性系统带来新的应用,如具有其他功能不可能实现的微型机器。