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用于微珠控制应用的多相电极:介电电泳与电动学集成用于生物粒子定位

Multiphase electrodes for microbead control applications: integration of DEP and electrokinetics for bio-particle positioning.

作者信息

Yantzi J D, Yeow J T W, Abdallah S S

机构信息

Systems Design Engineering, University of Waterloo, 200 University Ave., Waterloo N2L 3G1, Canada.

出版信息

Biosens Bioelectron. 2007 May 15;22(11):2539-45. doi: 10.1016/j.bios.2006.10.012. Epub 2006 Nov 16.

Abstract

Advances in microfabrication have introduced new possibilities for automated, high-throughput biomedical investigations and analysis. Physical effects such as dielectrophoresis (DEP) and AC electrokinetics can be used to manipulate particles in solution to coordinate a sequence of bioanalytical processing steps. DEP is accomplished with non-uniform electric fields that can polarize particles (microbeads, cells, viruses, DNA, proteins, etc.) in suspension causing translational or rotational movement. AC electrokinetics is another phenomena involved with movement of particles in suspension with electric fields and is comprised of both electro-thermal and electro-osmotic effects. This paper investigates single layer electrodes that are effective for particle localization and clustering based on DEP and AC electrokinetic effects. We demonstrate a novel multi-electrode setup capable of clustering particles into an array of discrete bands using activated and electrically floating electrodes. These bands shift to adjacent regions on the electrode surface by altering the electrode activation scheme. The predictability of particle placement to specific locations provides new opportunities for integration and coordination with raster scanning lasers or a charge coupled device (CCD) for advanced biomedical diagnostic devices, and more sophisticated optical interrogation techniques.

摘要

微纳制造技术的进步为自动化、高通量生物医学研究与分析带来了新的可能性。诸如介电泳(DEP)和交流电动学等物理效应可用于操控溶液中的粒子,以协调一系列生物分析处理步骤。DEP通过非均匀电场实现,该电场可使悬浮液中的粒子(微珠、细胞、病毒、DNA、蛋白质等)极化,从而引起平移或旋转运动。交流电动学是另一种与电场作用下悬浮粒子运动相关的现象,它由电热效应和电渗效应组成。本文研究了基于DEP和交流电动学效应,对粒子定位和聚集有效的单层电极。我们展示了一种新型多电极装置,该装置能够利用激活电极和电浮置电极将粒子聚集成一系列离散的带。通过改变电极激活方案,这些带会移动到电极表面的相邻区域。将粒子放置到特定位置的可预测性为与光栅扫描激光器或电荷耦合器件(CCD)集成与协调,用于先进生物医学诊断设备以及更复杂的光学询问技术提供了新的机会。

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