Lei Lijie, Cheng Rong, Zhou Yuxiu, Yang Tiezhu, Liang Beirong, Wang Shuo, Zhang Xinyuan, Lin Guanhua, Zhou Xuemao
College of Aviation Engineering, Civil Aviation Flight University of China, Guanghan, China.
School of Mechanical and Electrical Engineering, Guangxi Science and Technology Normal University, Laibin, China.
Front Chem. 2022 Aug 12;10:973961. doi: 10.3389/fchem.2022.973961. eCollection 2022.
The application of the active colloids is strongly related to their self-propulsion velocity, which is controlled by the generated anisotropic concentration field. We investigated the effect of this anisotropy on velocity induced by numerical treatments and size of Janus colloids. The far-field approximation is effective in estimating the velocity, even though it neglects the shape effect on the anisotropy of the concentration field. If the surface mobility contrast between the active and the inert part is moderate, the spherical approximation is feasible for sphere-like Janus colloids. Legendre expansion of the concentration field causes artificial anisotropy. Raising the order of the expansion can suppress this effect, but also distorts the concentration field at the top of active part. Thus, the order of the expansion should be chosen carefully depending on the goal of the study. Based on the verified Legendre expansion method and ionic-diffusiophoresis model, we show that due to the size-effect on both the concentration field and the surface mobility, increasing size of colloids can lower the self-propulsion velocity. Our finding is consistent with previous experimental observations without fitting parameter, shedding new light on the self-propulsion mechanism of chemically-driven active colloids. We further show a velocity reversal at high overall potential induced by increasing size, providing a new way for controlling the dynamics of acitve colloids.
活性胶体的应用与其自推进速度密切相关,而自推进速度由所产生的各向异性浓度场控制。我们通过数值处理和Janus胶体的尺寸研究了这种各向异性对速度的影响。尽管远场近似忽略了形状对浓度场各向异性的影响,但在估计速度方面是有效的。如果活性部分和惰性部分之间的表面迁移率对比度适中,对于类球形Janus胶体,球形近似是可行的。浓度场的勒让德展开会导致人为的各向异性。提高展开阶数可以抑制这种影响,但也会使活性部分顶部的浓度场发生畸变。因此,应根据研究目的谨慎选择展开阶数。基于经过验证的勒让德展开方法和离子扩散电泳模型,我们表明,由于尺寸对浓度场和表面迁移率都有影响,胶体尺寸的增加会降低自推进速度。我们的发现与先前的实验观察结果一致,且无需拟合参数,为化学驱动活性胶体的自推进机制提供了新的见解。我们进一步表明,尺寸增加会在高总电势下导致速度反转,为控制活性胶体的动力学提供了一种新方法。