Yuan Zhen, Garcia Anthony L, Lopez Gabriel P, Petsev Dimiter N
Center for Biomedical Engineering, Department of Chemical and Nuclear Engineering, University of New Mexico, Albuquerque, NM 87131, USA.
Electrophoresis. 2007 Feb;28(4):595-610. doi: 10.1002/elps.200600612.
This article presents a summary of theory, experimental studies, and results for the electrokinetic transport in small fluidic nanochannels. The main focus is on the effect of the electric double layer on the EOF, electric current, and electrophoresis of charged analytes. The double layer thickness can be of the same order as the width of the nanochannels, which has an impact on the transport by shaping the fluid velocity profile, local distributions of the electrolytes, and charged analytes. Our theoretical consideration is limited to continuum analysis where the equations of classical hydrodynamics and electrodynamics still apply. We show that small channels may lead to qualitatively new effects like selective ionic transport based on charge number as well as different modes for molecular separation. These new possibilities together with the rapid development of nanofabrication capabilities lead to an extensive experimental effort to utilize nanochannels for a variety of applications, which are also discussed and analyzed in this review.
本文概述了小尺寸流体纳米通道中的电动输运理论、实验研究及结果。主要关注电双层对电渗流、电流以及带电分析物电泳的影响。双层厚度可能与纳米通道宽度处于同一量级,这通过塑造流体速度分布、电解质局部分布以及带电分析物来影响输运。我们的理论考量限于连续介质分析,其中经典流体动力学和电动力学方程仍然适用。我们表明,小通道可能导致定性的新效应,如基于电荷数的选择性离子输运以及分子分离的不同模式。这些新可能性连同纳米制造能力的快速发展,引发了利用纳米通道进行各种应用的广泛实验努力,本综述也对这些应用进行了讨论和分析。