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首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Sample preconcentration by field amplification stacking for microchip-based capillary electrophoresis
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Sample preconcentration by field amplification stacking for microchip-based capillary electrophoresis

机译:通过基于场放大堆叠的样品预浓缩,以进行基于微芯片的毛细管电泳

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摘要

A microchip structure for field amplification stacking (FAS) was developed, which allowed the formation of comparatively long, volumetrically defined sample plugs with a minimal electrophoretic bias. Up to 20-fold signal gains were achieved by injection and separation of 400 mum long plugs in a 7.5 cm long channel. We studied fluidic effects arising when solutions with mismatched ionic strengths are electrokinetically handled on microchips. In particular, the generation of pressure-driven Poiseuille flow effects in the capillary system due to different electroosmotic flow velocities in adjacent solution zones could clearly be observed by video imaging. The formation of a sample plug, stacking of the analyte and subsequent release into the separation column showed that careful control of electric fields in the side channels of the injection element is essential. To further improve the signal gain, a new chip layout was developed for full-column stacking with subsequent sample matrix removal by polarity switching. The design features a coupled-column structure with separate stacking and capillary electrophoresis (CE) channels, showing signal enhancements of up to 65-fold for a 69 mm long stacking channel. [References: 43]
机译:开发了用于场放大堆叠(FAS)的微芯片结构,该结构允许以最小的电泳偏差形成相对较长的,体积限定的样品塞。通过在7.5厘米长的通道中注入和分离400毫米长的插头,可获得高达20倍的信号增益。我们研究了当在微芯片上电动处理离子强度不匹配的溶液时产生的流体效应。特别地,通过视频成像可以清楚地观察到由于相邻溶液区域中不同的电渗流速度而在毛细管系统中产生的压力驱动的泊松流动效应。样品塞的形成,分析物的堆积以及随后释放到分离柱中的现象表明,仔细控制注入元件侧通道中的电场至关重要。为了进一步提高信号增益,开发了一种新的芯片布局,用于全柱堆叠,随后通过极性切换去除样本矩阵。该设计采用耦合柱结构,具有独立的堆叠和毛细管电泳(CE)通道,对于69毫米长的堆叠通道,信号增强高达65倍。 [参考:43]

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