Institute of Industrial Science, University of Tokyo, Meguro-ku, Tokyo 153-8505, Japan.
Phys Rev Lett. 2013 Aug 2;111(5):055701. doi: 10.1103/PhysRevLett.111.055701. Epub 2013 Jul 31.
Colloids immersed in a critical binary liquid mixture are subject to critical Casimir forces (CCFs) because they confine its concentration fluctuations and influence the latter via effective surface fields. To date, CCFs have been primarily studied in thermodynamic equilibrium. However, due to the critical slowing down, the order parameter around a particle can easily be perturbed by any motion of the colloid or by solvent flow. This leads to significant but largely unexplored changes in the CCF. Here we study the drag force on a single colloidal particle moving in a near-critical fluid mixture and the relative motion of two colloids due to the CCF acting on them. In order to account for the kinetic couplings among the order parameter field, the solvent velocity field, and the particle motion, we use a fluid particle dynamics method. These studies extend the understanding of CCFs from thermal equilibrium to nonequilibrium processes, which are relevant to current experiments, and show the emergence of significant effects near the critical point.
胶体沉浸在临界二元液体混合物中会受到临界 Casimir 力(CCF)的影响,因为它们限制了混合物浓度的涨落,并通过有效表面场对其产生影响。迄今为止,CCF 主要在热力学平衡中进行研究。然而,由于临界减速,粒子周围的序参量很容易受到胶体的任何运动或溶剂流的干扰。这会导致 CCF 发生显著但在很大程度上尚未被探索的变化。在这里,我们研究了在近临界流体混合物中运动的单个胶体粒子上的阻力以及由于作用在它们上的 CCF 导致的两个胶体的相对运动。为了说明序参量场、溶剂速度场和粒子运动之间的动力学耦合,我们使用了流体粒子动力学方法。这些研究将 CCF 的理解从热平衡扩展到与当前实验相关的非平衡过程,并在临界点附近显示出显著的效果。