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采用双通道顺序注射微芯片电泳系统,通过流体动力学注射对阴离子和阳离子进行同时测定的聚合物微芯片。

Polymeric microchip for the simultaneous determination of anions and cations by hydrodynamic injection using a dual-channel sequential injection microchip electrophoresis system.

机构信息

Australian Centre for Research on Separation Science, School of Physical Sciences: Chemistry, Faculty of Science Engineering and Technology, University of Tasmania , Private Bag 75, Hobart, Tasmania, 7001, Australia.

出版信息

Anal Chem. 2014 Apr 1;86(7):3380-8. doi: 10.1021/ac403627g. Epub 2014 Mar 17.

Abstract

A dual-channel sequential injection microchip capillary electrophoresis system with pressure-driven injection is demonstrated for simultaneous separations of anions and cations from a single sample. The poly(methyl methacrylate) (PMMA) microchips feature integral in-plane contactless conductivity detection electrodes. A novel, hydrodynamic "split-injection" method utilizes background electrolyte (BGE) sheathing to gate the sample flows, while control over the injection volume is achieved by balancing hydrodynamic resistances using external hydrodynamic resistors. Injection is realized by a unique flow-through interface, allowing for automated, continuous sampling for sequential injection analysis by microchip electrophoresis. The developed system was very robust, with individual microchips used for up to 2000 analyses with lifetimes limited by irreversible blockages of the microchannels. The unique dual-channel geometry was demonstrated by the simultaneous separation of three cations and three anions in individual microchannels in under 40 s with limits of detection (LODs) ranging from 1.5 to 24 μM. From a series of 100 sequential injections the %RSDs were determined for every fifth run, resulting in %RSDs for migration times that ranged from 0.3 to 0.7 (n = 20) and 2.3 to 4.5 for peak area (n = 20). This system offers low LODs and a high degree of reproducibility and robustness while the hydrodynamic injection eliminates electrokinetic bias during injection, making it attractive for a wide range of rapid, sensitive, and quantitative online analytical applications.

摘要

双通道顺序注射微流控芯片毛细管电泳系统与压力驱动注射相结合,可从单个样品中同时分离阴离子和阳离子。聚甲基丙烯酸甲酯(PMMA)微芯片具有集成的平面非接触式电导检测电极。一种新颖的流体动力学“分裂注入”方法利用背景电解质(BGE)鞘流来控制样品流动,同时通过使用外部流体电阻器平衡流体阻力来控制注入体积。通过独特的直通式接口实现注入,允许通过微芯片电泳进行自动化、连续的顺序注射分析采样。所开发的系统非常稳健,单个微芯片可使用多达 2000 次分析,其使用寿命受微通道不可逆堵塞的限制。独特的双通道几何形状通过在单个微通道中同时分离三种阳离子和三种阴离子得到了证明,整个过程在 40 秒内完成,检测限(LOD)范围为 1.5 至 24 μM。通过 100 次连续进样,每五次进样的相对标准偏差(RSD)被确定,迁移时间的 RSD 范围为 0.3 至 0.7(n=20),峰面积的 RSD 范围为 2.3 至 4.5(n=20)。该系统具有低检测限、高重现性和稳健性,同时流体动力学注入在注入过程中消除了电动偏压,使其成为各种快速、灵敏和定量在线分析应用的理想选择。

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