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首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Fabrication and performance of a three-dimensionally adjustable device for the amperometric detection of microchip capillary electrophoresis.
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Fabrication and performance of a three-dimensionally adjustable device for the amperometric detection of microchip capillary electrophoresis.

机译:用于微芯片毛细管电泳的安培检测的三维可调装置的制造和性能。

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摘要

A microchip CE-amperometric detection (AD) system has been fabricated by integrating a two-dimensionally adjustable CE microchip and an AD cell containing a one-dimensionally adjustable disk detection electrode in a Plexiglas holder. It facilitates the precise 3-D alignment between the channel outlet and the detection electrode without a complicated 3-D manipulator. The performance of this unique system was demonstrated by separating five aromatic amines (1,4-phenyldiamine, aniline, 2-methylaniline, 4-chloroaniline, and 1-naphthylamine) of environmental concern. Factors influencing their separation and detection processes were examined and optimized. The five analytes have been well separated within 140 s in a 74 cm long separation channel at a separation voltage of +2500 V using a 10 mM phosphate buffer (pH 3.5). Highly linear response is obtained for the five analytes over the range 20-200 microM with the detection limits ranging from 0.46 to 1.44 microM, respectively. The present system demonstrated long-term stability and reproducibility with RSDs of less than 5% for the peak current (n = 9). The new approach for the microchannel-electrode alignment should find a wide range of applications in CE, flowing injection analysis, and other microfluidic analysis systems.
机译:通过将二维可调的CE微芯片和包含一维可调的圆盘检测电极的AD单元集成到有机玻璃支架中,制造了微芯片CE安培检测(AD)系统。无需复杂的3D机械手,它就可以在通道出口和检测电极之间实现精确的3D对准。通过分离五种与环境有关的芳族胺(1,4-苯基二胺,苯胺,2-甲基苯胺,4-氯苯胺和1-萘胺)证明了该独特系统的性能。检查并优化了影响其分离和检测过程的因素。使用10 mM磷酸盐缓冲液(pH 3.5)在+2500 V的分离电压下,在74厘米长的分离通道中,在140 s内已将五种分析物很好地分离。在20-200 microM的范围内对五种分析物获得了高度线性响应,检测限分别为0.46至1.44 microM。本系统证明了长期稳定性和可重复性,峰值电流(n = 9)的RSD小于5%。用于微通道电极对准的新方法应该在CE,流动注射分析和其他微流体分析系统中找到广泛的应用。

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