Imamura Shun, Kawakatsu Toshihiro
Department of Physics, Graduate School of Science, Tohoku University, Sendai, 980-8578, Japan.
Mathematics for Advanced Materials-OIL, AIST-Tohoku University, Sendai, 980-8577, Japan.
Eur Phys J E Soft Matter. 2021 Oct 16;44(10):127. doi: 10.1140/epje/s10189-021-00132-8.
The collective motion of chemically active particles at an air-liquid interface is studied theoretically as a dynamic self-organization problem. Based on a physical consideration, we propose a minimal model for self-propelled particles by combining hydrodynamic interaction, capillary interaction, driving force by Marangoni effect, and Marangoni flow. Our model has successfully captured the features of chemically active particles, that represent dynamic self-organized states such as crystalline, chain, liquid-like and spreading states.
作为一个动态自组织问题,理论上研究了气液界面处化学活性粒子的集体运动。基于物理考虑,我们通过结合流体动力相互作用、毛细相互作用、马兰戈尼效应驱动力和马兰戈尼流,提出了一个自驱动粒子的最小模型。我们的模型成功地捕捉到了化学活性粒子的特征,这些特征代表了诸如晶体、链状、液体状和扩散状等动态自组织状态。