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通过微通道中的感应电荷电动流聚焦粒子。

Focusing particles by induced charge electrokinetic flow in a microchannel.

作者信息

Song Yongxin, Wang Chengfa, Li Mengqi, Pan Xinxiang, Li Dongqing

机构信息

Department of Marine Engineering, Dalian Maritime University, Dalian, P. R. China.

Department of Mechanical and Mechatronics Engineering, University of Waterloo, Waterloo, ON, Canada.

出版信息

Electrophoresis. 2016 Feb;37(4):666-75. doi: 10.1002/elps.201500361.

Abstract

A novel method of sheathless particle focusing by induced charge electrokinetic flow in a microchannel is presented in this paper. By placing a pair of metal plates on the opposite walls of the channel and applying an electrical field, particle focusing is achieved due to the two pairs of vortex that constrain the flow of the particle solution. As an example, the trajectories of particles under different electrical fields with only one metal plate on one side channel wall were numerically simulated and experimentally validated. Other flow focusing effects, such as the focused width ratio (focused width/channel width) and length ratio (focused length/half-length of metal plate) of the sample solution, were also numerically studied. The results show that the particle firstly passes through the gaps between the upstream vortices and the channel walls. Afterwards, the particle is focused to pass through the gap between the two downstream vortices that determine the focused particle position. Numerical simulations show that the focused particle stream becomes thin with the increases in the applied electrical field and the length of the metal plates. As regards to the focused length ratio of the focused stream, however, it slightly increases with the increase in the applied electrical field and almost keeps constant with the increase in the length of the metal plate. The size of the focused sample solution, therefore, can be easily adjusted by controlling the applied electrical field and the sizes of the metal plates.

摘要

本文提出了一种在微通道中通过感应电荷电动流实现无鞘粒子聚焦的新方法。通过在通道相对壁上放置一对金属板并施加电场,由于两对涡旋限制了粒子溶液的流动,从而实现了粒子聚焦。作为示例,对仅在一侧通道壁上有一块金属板的不同电场下粒子的轨迹进行了数值模拟和实验验证。还对其他流动聚焦效应,如样品溶液的聚焦宽度比(聚焦宽度/通道宽度)和长度比(聚焦长度/金属板半长)进行了数值研究。结果表明,粒子首先穿过上游涡旋与通道壁之间的间隙。之后,粒子聚焦穿过决定聚焦粒子位置的两个下游涡旋之间的间隙。数值模拟表明,随着外加电场和金属板长度的增加,聚焦粒子流变细。然而,对于聚焦流的聚焦长度比,它随着外加电场的增加略有增加,而随着金属板长度的增加几乎保持不变。因此,通过控制外加电场和金属板的尺寸,可以轻松调节聚焦样品溶液的大小。

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