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通过临界 Casimir 力控制胶体粒子的动力学。

Controlling the dynamics of colloidal particles by critical Casimir forces.

机构信息

Department of Physics, University of Gothenburg, SE-41296 Gothenburg, Sweden.

Soft Matter Lab, Department of Physics and UNAM - National Nanotechnology Research Center, Bilkent University, Ankara 06800, Turkey.

出版信息

Soft Matter. 2019 Mar 6;15(10):2152-2162. doi: 10.1039/c8sm01376d.

Abstract

Critical Casimir forces can play an important role for applications in nano-science and nano-technology, owing to their piconewton strength, nanometric action range, fine tunability as a function of temperature, and exquisite dependence on the surface properties of the involved objects. Here, we investigate the effects of critical Casimir forces on the free dynamics of a pair of colloidal particles dispersed in the bulk of a near-critical binary liquid solvent, using blinking optical tweezers. In particular, we measure the time evolution of the distance between the two colloids to determine their relative diffusion and drift velocity. Furthermore, we show how critical Casimir forces change the dynamic properties of this two-colloid system by studying the temperature dependence of the distribution of the so-called first-passage time, i.e., of the time necessary for the particles to reach for the first time a certain separation, starting from an initially assigned one. These data are in good agreement with theoretical results obtained from Monte Carlo simulations and Langevin dynamics.

摘要

临界 Casimir 力在纳科学和纳技术应用中具有重要作用,因为它们具有皮牛顿的强度、纳米级的作用范围、可作为温度函数进行精细调节的能力,以及对涉及物体的表面特性的敏感性。在这里,我们使用闪烁光镊研究了临界 Casimir 力对分散在近临界二元液体溶剂体相中的一对胶体粒子自由动力学的影响。具体来说,我们测量了两个胶体之间距离的时间演化,以确定它们的相对扩散和漂移速度。此外,我们通过研究所谓的首次通过时间(即粒子从初始设定的一个分离开始首次到达某个分离所需的时间)分布的温度依赖性,展示了临界 Casimir 力如何改变这一两个胶体系统的动态特性。这些数据与从蒙特卡罗模拟和朗之万动力学获得的理论结果吻合良好。

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