Wang Joseph, Pumera Martin, Collins Greg, Opekar Frantisek, Jelínek Ivan
Department of Chemistry and Biochemistry, New Mexico State University, Las Cruces 88003, USA.
Analyst. 2002 Jun;127(6):719-23. doi: 10.1039/b201700h.
A miniaturized analytical system for separating and detecting inorganic explosive residues, based on the coupling of a micromachined capillary electrophoresis (CE) chip with a contactless conductivity detector is described. The low electroosmotic flow (EOF) of the poly(methylmethacrylate) (PMMA) chip material facilitates the rapid switching between analyses of cations and anions using the same microchannel and run buffer (and without an EOF modifier), and hence offers rapid (< 1 min) measurement of seven explosive-related cations and anions. Experimental parameters relevant to the separation and detection processes have been optimized. Addition of a 18-crown-6 ether modifier has been used for separating the peaks of co-migrating potassium and ammonium ions. The ionic-explosive microchip system combines the distinct advantages of contactless conductivity detection with the attractive features of plastic CE microchips. The new microsystem offers great promise for monitoring explosive-related ions at the sample source, with significant advantages of speed/warning, efficiency, cost, or sample size.
描述了一种基于微机械毛细管电泳(CE)芯片与非接触式电导检测器联用的用于分离和检测无机爆炸物残留的小型化分析系统。聚甲基丙烯酸甲酯(PMMA)芯片材料的低电渗流(EOF)有助于在使用相同微通道和运行缓冲液(且无需EOF改性剂)的情况下,在阳离子和阴离子分析之间快速切换,因此能够快速(<1分钟)测定七种与爆炸物相关的阳离子和阴离子。与分离和检测过程相关的实验参数已得到优化。添加18-冠-6醚改性剂用于分离共迁移的钾离子和铵离子峰。离子爆炸微芯片系统将非接触式电导检测的独特优势与塑料CE微芯片的吸引人的特性相结合。这种新型微系统在样品源处监测与爆炸物相关的离子方面具有很大的前景,在速度/预警、效率、成本或样品量方面具有显著优势。