首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >DYNAMICS OF CAPILLARY ELECTROCHROMATOGRAPHY - EXPERIMENTAL STUDY ON THE ELECTROSMOTIC FLOW AND CONDUCTANCE IN OPEN AND PACKED CAPILLARIES
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DYNAMICS OF CAPILLARY ELECTROCHROMATOGRAPHY - EXPERIMENTAL STUDY ON THE ELECTROSMOTIC FLOW AND CONDUCTANCE IN OPEN AND PACKED CAPILLARIES

机译:毛细管层析动力学-开放式和填充式毛细管电流动和电导率的实验研究。

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For capillary electrochromatography (CEC) to become an analytical separation technique of high speed and resolution the factors determining the conductivity of the column as well as the generation and control of electroosmotic flow (EOF) in porous media have to be understood. In the present study the conductance of capillaries packed with a variety of stationary phases was evaluated with respect to the conductance of the open capillary and the data were interpreted in the light of the Tobias equation. However, the consistently observed reduction of the EOF when a capillary having a charged inner wall is packed with particles having charges of the same sign and the dependence of the EOF velocity on the particle size needs further explanation. The data suggests that, due to the employment of relatively long columns packed with small particles, CEC may offer peak capacities much higher than HPLC or micro-HPLC. The CEC columns are unique as they consist of a packed and an open capillary segment having different conductances and consequently different voltage gradients and electrical field strengths. Therefore, any sufficiently detailed study on CEC systems requires also the characterization of the individual column segments. EOF velocities of 6-7 mm/s could be realized at 60 kV applied voltage with a 23/32 cm x 50 mu m raw fused-silica capillary packed with 6-mu m Zorbax ODS particles. The current was a linear function of the field strength up to 1.8 kV/cm, but at high field strengths the EOF increased with squared held strength. Data on band spreading indicate that with a given column the plate height at high EOF velocities is smaller in CEC than in micro-HPLC and it is weakly dependent on the velocity. (C) 1997 Elsevier Science B.V
机译:为了使毛细管电色谱(CEC)成为高速和高分辨率的分析分离技术,必须了解决定色谱柱电导率以及多孔介质中电渗流(EOF)的产生和控制的因素。在本研究中,相对于开放毛细管的电导率,评估了填充有各种固定相的毛细管的电导率,并根据Tobias方程解释了数据。然而,当具有带电荷的内壁的毛细管填充有具有相同符号的电荷的颗粒以及EOF速度对颗粒尺寸的依赖性时,始终观察到的EOF的降低。数据表明,由于使用了填充有小颗粒的相对长的色谱柱,CEC可能会提供比HPLC或micro-HPLC高得多的峰容量。 CEC色谱柱的独特之处在于它们由填充的毛细管段和开放的毛细管段组成,这些毛细管段具有不同的电导率,因此具有不同的电压梯度和电场强度。因此,对CEC系统的任何足够详细的研究也都需要对各个色谱柱段进行表征。在60 kV施加电压下,用填充有6微米Zorbax ODS颗粒的23/32厘米x 50微米生熔融石英毛细管可以实现6-7毫米/秒的EOF速度。电流是场强高达1.8 kV / cm的线性函数,但是在高场强下,EOF随着保持强度的平方增加。谱带扩展数据表明,对于给定的色谱柱,在高EOF速度下,CEC的板高度要比微型HPLC小,并且它对速度的依赖性很小。 (C)1997年Elsevier Science B.V

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