Abécassis B, Cottin-Bizonne C, Ybert C, Ajdari A, Bocquet L
Laboratoire PMCN, Université Lyon 1; Université de Lyon, UMR CNRS 5586, 69622 Villeurbanne, France.
Nat Mater. 2008 Oct;7(10):785-9. doi: 10.1038/nmat2254. Epub 2008 Aug 17.
Brownian diffusion is a keystone concept in a large variety of domains, from physics, chemistry to biology. Diffusive transport controls situations as diverse as reaction-diffusion processes in biology and chemistry, Brownian ratchet processes, dispersion in microfluidic devices or even double-diffusive instability and salt-fingering phenomena in the context of ocean mixing. Although these examples span a broad range of length scales, diffusive transport becomes increasingly inefficient for larger particles. Applications, for example, in microfluidics, usually have recourse to alternative driving methods involving external sources to induce and control migration. Here, we demonstrate experimentally a strongly enhanced migration of large particles, achieved by slaving their dynamics to that of a fast carrier species, a dilute salt. The underlying fast salt diffusion leads to an apparent diffusive-like dynamics of the large particles, which is up to two orders of magnitude faster than their natural 'bare' diffusion. Moreover both spreading and focusing of the particle assembly can be achieved on demand. A model description shows a remarkable quantitative agreement with all measured data. Applications of this process are illustrated in microfluidics for filtering and concentrating operations, as well as in conjunction with standard hydrodynamic focusing. In a wider perspective, this mechanism can affect a broad range of scales and phenomena, from biological transport to the dispersion of sediments and pollutants in oceanographic situations.
布朗扩散是从物理、化学到生物学等众多领域的一个关键概念。扩散输运控制着各种不同的情况,如生物和化学中的反应扩散过程、布朗棘轮过程、微流控装置中的扩散,甚至海洋混合背景下的双扩散不稳定性和盐指现象。尽管这些例子涵盖了广泛的长度尺度,但对于较大的粒子,扩散输运的效率变得越来越低。例如,在微流控领域的应用通常求助于涉及外部源的替代驱动方法来诱导和控制迁移。在此,我们通过实验证明了大粒子的迁移显著增强,这是通过使它们的动力学从属于一种快速载体物种(一种稀盐)的动力学来实现的。潜在的快速盐扩散导致大粒子呈现出类似扩散的动力学,其速度比它们自然的“裸”扩散快达两个数量级。此外,粒子集合的扩散和聚焦都可以按需实现。模型描述与所有测量数据显示出显著的定量一致性。该过程的应用在微流控中用于过滤和浓缩操作,以及与标准的流体动力聚焦相结合。从更广泛的角度来看,这种机制可以影响从生物输运到海洋学情况下沉积物和污染物扩散等广泛的尺度和现象。