Center for Nonlinear Phenomena and Complex Systems, Université libre de Bruxelles, Campus Plaine - CP231, 50 Av. F. Roosevelt, 1050 Brussels, Belgium.
Nanoscale. 2013 Feb 21;5(4):1337-44. doi: 10.1039/c2nr33711h.
The fabrication of synthetic self-propelled particles and the experimental investigations of their dynamics have stimulated interest in self-generated phoretic effects that propel nano- and micron-scale objects. Theoretical modeling of these phenomena is often based on a continuum description of the solvent for different phoretic propulsion mechanisms, including, self-electrophoresis, self-diffusiophoresis and self-thermophoresis. The work in this paper considers various types of catalytic chemical reaction at the motor surface and in the bulk fluid that come into play in mesoscopic descriptions of the dynamics. The formulation is illustrated by developing the mesoscopic reaction dynamics for exothermic and dissociation reactions that are used to power motor motion. The results of simulations of the self-propelled dynamics of composite Janus particles by these mechanisms are presented.
合成自推进颗粒的制造以及对其动力学的实验研究激发了人们对自产生推斥力效应的兴趣,这种效应可以推动纳米和微米级物体。这些现象的理论建模通常基于对溶剂的连续体描述,用于不同的推斥力推进机制,包括自电泳、自扩散泳和自热泳。本文研究了在介观描述动力学中发挥作用的各种类型的马达表面和体相流体中的催化化学反应。通过开发用于驱动马达运动的放热和离解反应的介观反应动力学,说明了该公式。通过这些机制展示了复合 Janus 颗粒的自推进动力学的模拟结果。