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Amperometric determination of electroosmotic flow in microchip electrophoresis with a self-generated marker

机译:用自生标记物在安培法中测定微芯片电泳中的电渗流

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This work described a novel method to evaluate the electroosmotic flow (EOF) without using any complicated electric profile or physical modification of the running buffer. In a typical off- channel based microfludic device, it is found the carbon ink based decoupler electrode maintains its reduction capability after the electric field is turned off, this phenomenon makes it continually converts the dissolved oxygen into hydrogen peroxide. Since the electric field is isolated before the decoupler electrode, this in-situ generated sample plug is delivered to pass through the detector with an equal velocity to the EOF in the next run. Therefore, the velocity of EOF can be easily estimated based on the migration time and the distance between the decoupler and the working electrode. Subsequently, the application of simultaneous evaluation of the velocity of EOF and the electrophoretic property of several analytes, including catechol, 2-aminophenol, dopamine and hydrogen peroxide have been also demonstrated in this method, respectively. (C) 2015 Elsevier Ltd. All rights reserved.
机译:这项工作描述了一种新颖的方法来评估电渗流(EOF),而无需使用任何复杂的电剖面或运行缓冲液的物理修改。在典型的基于通道的微流体装置中,发现基于碳墨水的去耦电极在关闭电场后仍保持其还原能力,这种现象使之不断将溶解的氧气转化为过氧化氢。由于电场是在解耦器电极之前隔离的,因此在下一次运行中,该原位生成的样品塞将以与EOF相等的速度传递通过检测器。因此,可以根据迁移时间和解耦器与工作电极之间的距离轻松估算EOF的速度。随后,该方法还分别证明了同时评估EOF速度和几种分析物的电泳性能的应用,这些分析物包括邻苯二酚,2-氨基苯酚,多巴胺和过氧化氢。 (C)2015 Elsevier Ltd.保留所有权利。

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