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Peak dispersion and contributions to plate height in nonaqueous capillary electrophoresis at high electric field strengths: Propanol as background electrolyte solvent

机译:非水毛细管电泳在高电场强度下的峰分散度和对板高的影响:丙醇作为背景电解质溶剂

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Peak dispersion effects in nonaqueous capillary electrophoretic separations of aromatic anionic analytes were investigated in a propanolic background electrolyte solution. Poly(glycidylmethacrylate-co-N-vinylpyrrolidone) coating was applied to the capillary to suppress the electroosmotic flow and to improve the repeatability of the migration times. Electrical field strengths up to 2000 Vcm(-1) were applied in separations and the separation efficiencies were compared with theoretical values calculated on the basis of plate height theory. The contributions to the total plate height were calculated for injection plug length, diffusion, Joule heating, electromigration dispersion, analyte adsorption to the capillary wall, and detector slit aperture length. Analyte diffusion coefficients were measured by Taylor dispersion method, while distribution constants were measured chromatographically. Agreement between the calculated and empirical results was fairly good even though some approximations were required. In most cases the longitudinal diffusion contribution governed the total plate height, while the contribution of Joule heating was insignificant even at exceptionally high field strengths used. The relatively long detection slit aperture was found to influence the separation efficiency strongly, while the other dispersion sources that were investigated were of minor importance, except for adsorption in the case of one analyte. With all analytes, the dispersive effect of longitudinal diffusion was reduced as the field strength was increased, leading to enhanced migration velocities and faster separations. [References: 35]
机译:在丙醇背景电解质溶液中研究了芳香族阴离子分析物在非水毛细管电泳分离中的峰分散效应。将聚(甲基丙烯酸缩水甘油酯-co-N-乙烯基吡咯烷酮)涂层施加到毛细管上,以抑制电渗流并提高迁移时间的可重复性。在分离中施加高达2000 Vcm(-1)的电场强度,并将分离效率与根据板高理论计算的理论值进行比较。计算了总板高的贡献,包括注入塞长度,扩散,焦耳加热,电迁移分散,分析物吸附到毛细管壁和检测器狭缝孔的长度。通过泰勒分散法测量分析物的扩散系数,而色谱法则测量分布常数。即使需要一些近似值,计算结果和经验结果之间的一致性也很好。在大多数情况下,纵向扩散贡献决定了整个板的高度,而焦耳加热的贡献即使在使用极高的场强时也微不足道。发现相对较长的检测狭缝孔径对分离效率有很大影响,而所研究的其他分散源的重要性不大,除了一种分析物的吸附以外。对于所有分析物,随着场强的增加,纵向扩散的分散效应会降低,从而导致迁移速度加快和分离速度加快。 [参考:35]

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