Fu Lung-Ming, Yang Ruey-Jen
Department of Engineering Science, National Cheng Kung University, Tainan, Taiwan.
Electrophoresis. 2003 Apr;24(7-8):1253-60. doi: 10.1002/elps.200390161.
This paper presents the use of a physical model and numerical simulation in the investigation of traveling electric fields on capillary electrophoresis (CE) chips. The principal material transport mechanisms of electrokinetic migration, ionic concentration, fluid flow, and diffusion are all taken into consideration. Traditionally, the high electric field strength required for the separation of biological samples by microfluidic devices has involved the application of high external voltages. In contrast, this study presents a proposal for samples separation by means of a moving electric field within a low voltage-driven CE chip. Under this proposal, the separation channel is partitioned into a series of smaller separation zones by means of electrode pairs. This paper considers two different electrode configurations, namely arranged along a single side of the separation channel, and arranged on two sides of the separation channel. The quality of the separation achieved with these two configurations is then compared with the traditional straight separation channel approach. The results confirm that the proposed method is successful in maintaining an adequate field strength for separation purposes in a low-voltage driven CE chip. Furthermore, it is determined that the best separation results are obtained using electrodes arranged along both sides of the separation channel.
本文介绍了在毛细管电泳(CE)芯片上利用物理模型和数值模拟研究移动电场的情况。考虑了电动迁移、离子浓度、流体流动和扩散等主要物质传输机制。传统上,微流控设备分离生物样品所需的高电场强度涉及施加高外部电压。相比之下,本研究提出了一种在低电压驱动的CE芯片内通过移动电场进行样品分离的方案。根据该方案,通过电极对将分离通道划分为一系列较小的分离区。本文考虑了两种不同的电极配置,即沿分离通道的一侧排列和沿分离通道的两侧排列。然后将这两种配置实现的分离质量与传统的直线分离通道方法进行比较。结果证实,所提出的方法成功地在低电压驱动的CE芯片中保持了用于分离目的的足够场强。此外,确定沿分离通道两侧排列电极可获得最佳分离结果。