首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Study on the interrelated effects of capillary diameter, background electrolyte concentration, and flow rate in pressure assisted capillary electrophoresis with contactless conductivity detection
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Study on the interrelated effects of capillary diameter, background electrolyte concentration, and flow rate in pressure assisted capillary electrophoresis with contactless conductivity detection

机译:非接触电导检测在压力辅助毛细管电泳中毛细管直径,背景电解质浓度和流速的相关影响

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摘要

A detailed study on the effect of the buffer concentration and the magnitude of the superimposed hydrodynamic flow on separation performance in CZE with contactless conductivity detection was carried out with capillaries of 10, 25, and 50 μm internal diameter. It was confirmed that capillaries of narrow internal diameters require higher buffer concentrations for best sensitivities. For all diameters it was found that electrodispersion was the most pronounced band-broadening factor for relatively long residence times. For shorter times, Joule heating related band broadening appears to be the most significant factor, which means that best separation efficiencies are obtained with the narrowest capillaries. As detection limits are as good for capillaries of 10 μm internal diameters as for the other diameters when using contactless conductivity detection, these narrow capillaries are, therefore, generally of benefit when employing this detection technique. Hydrodyamic flow was found to have only a very limited effect on band broadening; an effect was only noticeable for the 50 μm capillary and relatively high flow rates.
机译:使用内径为10、25和50μm的毛细管,对缓冲液浓度和叠加​​的流体动力流量大小对CZE中分离性能的影响进行了详细研究,并进行了非接触电导检测。已经证实,内径狭窄的毛细管需要更高的缓冲液浓度才能获得最佳的灵敏度。对于所有直径,发现电分散是相对较长的停留时间的最显着的谱带扩展因子。对于较短的时间,焦耳热相关的谱带展宽似乎是最重要的因素,这意味着使用最窄的毛细管可以获得最佳的分离效率。当使用非接触式电导率检测时,内径为10μm的毛细管的检测极限与其他直径一样好,因此,使用这种检测技术时,这些狭窄的毛细管通常是有益的。人们发现水动力流对谱带展宽只有非常有限的影响。仅对于50μm毛细管和相对较高的流速,效果才明显。

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