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纳米通道中电渗流对聚合物链产生的升力

Electroosmotic Flow Induced Lift Forces on Polymer Chains in Nanochannels.

作者信息

Perez Ocampo Lisbeth, Weiss Lisa B, Jardat Marie, Likos Christos N, Dahirel Vincent

机构信息

Sorbonne Université, CNRS, Physico-chimie des électrolytes et nano-systèmes interfaciaux, PHENIX, F-75005 Paris, France.

Faculty of Physics, University of Vienna, Boltzmanngasse 5, A-1090 Vienna, Austria.

出版信息

ACS Polym Au. 2022 Aug 10;2(4):245-256. doi: 10.1021/acspolymersau.1c00058. Epub 2022 Mar 8.

Abstract

A major objective of research in nanofluidics is to achieve better selectivity in manipulating the fluxes of nano-objects and in particular of biopolymers. Numerical simulations allow one to better understand the physical mechanisms at play in such situations. We performed hybrid mesoscale simulations to investigate the properties of polymers under flows in slit pores at the nanoscale. We use multiparticle collision dynamics, an algorithm that includes hydrodynamics and thermal fluctuations, to investigate the properties of fully flexible and stiff polymers under several types of flow, showing that Poiseuille flows and electroosmotic flows can lead to quantitatively and qualitatively different behaviors of the chain. In particular, a counterintuitive phenomenon occurs in the presence of an electroosmotic flow: When the monomers are attracted by the solid surfaces through van der Waals forces, shear-induced forces lead to a stronger repulsion of the polymers from these surfaces. Such focusing of the chain in the middle of the channel increases its flowing velocity, a phenomenon that may be exploited to separate different types of polymers.

摘要

纳米流体学研究的一个主要目标是在操纵纳米物体特别是生物聚合物的通量方面实现更好的选择性。数值模拟能让人更好地理解在这种情况下起作用的物理机制。我们进行了混合中尺度模拟,以研究纳米级狭缝孔隙中聚合物在流动下的特性。我们使用多粒子碰撞动力学,一种包含流体动力学和热涨落的算法,来研究完全柔性和刚性聚合物在几种流动类型下的特性,结果表明泊肃叶流和电渗流会导致链的行为在定量和定性上有所不同。特别是,在存在电渗流的情况下会出现一种违反直觉的现象:当单体通过范德华力被固体表面吸引时,剪切诱导力会导致聚合物从这些表面产生更强的排斥。链在通道中间的这种聚焦增加了其流动速度,这一现象可用于分离不同类型的聚合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7f12/9955195/8c7f039538b5/lg1c00058_0001.jpg

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