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Design and Modelling of a Microfluidic Electro-Lysis Device with Controlling Plates

机译:具有控制板的微流控电解装置的设计与建模

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摘要

Many Lab-on-Chip applications require sample pre-treatment systems. Using electric fields to perform cell-lysis in bio-MEMS systems has provided a powerful tool which can be integrated into Lab-on-a-Chip platforms. The major design considerations for electro-lysis devices include optimal geometry and placement of micro-electrodes, cell concentration, flow rates, optimal electric field (e.g. pulsed DC vs. AC), etc. To avoid electrolysis of the flowing solution at the exposed electrode surfaces, magnitudes and the applied voltages and duration of the DC pulse, or the AC frequency of the AC, have to be optimized for a given configuration. Using simulation tools for calculation of electric fields has proved very useful, for exploring alternative configurations and operating conditions for achieving electro cell-lysis. To alleviate the problem associated with low electric fields within the microfluidics channel and the high voltage demand on the contact electrode strips, two "control plates" are added to the microfluidics configuration. The principle of placing the two controlling plate-electrodes is based on the electric fields generated by a combined insulator/dielectric (gladwater) media. Surface charges are established at the insulator/dielectric interface. This paper discusses the effects of this interface charge on the modification of the electric field of the flowing liquid/cell solution.
机译:许多片上实验室应用需要样品预处理系统。利用电场在生物MEMS系统中执行细胞裂解已提供了强大的工具,可以将其集成到芯片实验室平台中。电解设备的主要设计考虑因素包括最佳的几何结构和微电极的放置,电池浓度,流速,最佳电场(例如脉冲直流与交流),等等。避免在裸露的电极上流动的溶液发生电解对于给定的配置,必须优化表面,大小以及施加的电压和DC脉冲的持续时间或AC的AC频率。使用仿真工具计算电场已被证明非常有用,可用于探索实现电细胞裂解的其他配置和操作条件。为了减轻与微流体通道内的低电场和接触电极条上的高电压需求相关的问题,将两个“控制板”添加到微流体配置中。放置两个控制板电极的原理是基于由绝缘体/电介质(地下水)结合产生的电场。表面电荷在绝缘体/电介质界面处建立。本文讨论了这种界面电荷对液体/细胞溶液流动电场的影响。

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