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首页> 外文期刊>Journal of chromatography, A: Including electrophoresis and other separation methods >Effect of mobile phase anionic additives on selectivity, efficiency, and sample loading capacity of cationic drugs in reversed-phase liquid chromatography
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Effect of mobile phase anionic additives on selectivity, efficiency, and sample loading capacity of cationic drugs in reversed-phase liquid chromatography

机译:反相液相色谱中流动相阴离子添加剂对阳离子药物选择性,效率和载样量的影响

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In the present work, we Study the effect of mobile phase anionic additive type and concentration on the selectivity, efficiency, and sample loading capacity of cationic drugs in reversed-phase liquid chromatography (RPLC). The type and concentration of an anionic additive are known to have a strong effect on the absolute retention of cations in RPLC; in contrast they have only a small effect on the selectivity of one cation relative to a second as seen here. This is mainly clue to the similarity of the ion pair formation constants between the selected cations. The limiting retention factors of cations (i.e. the retention factor of the fully ion-paired analyte at very high additive concentration) are roughly proportional to their inherent hydrophobicities (i.e. the retention factor of the analyte in the absence of the anionic additive). With a given anion, differences in ion pairing strength between the solutes are required for effective selectivity adjustment. Based on the Wade-Lucy-Carr (W-L-C) kinetic model of overload peaks, the approach we developed in our previous work was used to study the effect of mobile phase anionic additives type and concentration on the limiting plate count (N-0) and sample loading capacity (omega(0.5)) of various cationic drugs. Under linear chromatographic conditions, where the analyte exhibits its smallest peak width and thus maximum apparent plate Count, the type and concentration of anionic additives have almost no effect on peak width. In comparison to neutral analytes the sorption isotherms of cationic species are very easily overloaded even when many fewer moles of cations as compared to neutrals are injected. We showed that different anionic additives profoundly affect the cations(center dot) "overload profiles" (i.e. plots of plate count versus amount injected) by changing the sample loading capacities. The increase in sample loading capacities with different anions show the same order as the extent of ion pairing between the anions and the basic analytes. The detrimental effect of sample overloading on peak width can be greatly diminished by using either a stronger ion pairing agent or a higher concentration of a given ion pairing agent. Both effects operate by increasing the sample loading capacity, thereby allowing more solute to be injected. We believe that the increase in sample loading capacity described above is due in part to the increase in the number of ion-exchange sites as more anions sorb to the stationary phase. At the same time, the formation of a neutral ion-paired analyte also increases the amount of cation which can be loaded onto the stationary phase by allowing a greater fraction of the analyte to be present in the stationary phase as an electrically neutral (i.e. ion-paired) species. (C) 2009 Elsevier B.V. All rights reserved.
机译:在目前的工作中,我们研究了反相液相色谱(RPLC)中流动相阴离子添加剂的类型和浓度对阳离子药物的选择性,效率和样品载量的影响。已知阴离子添加剂的类型和浓度对阳离子在RPLC中的绝对保留有很大影响。相反,如此处所示,它们对一种阳离子相对于另一种阳离子的选择性影响很小。这主要是由于所选阳离子之间的离子对形成常数相似。阳离子的极限保留因子(即在非常高的添加剂浓度下完全离子对分析物的保留因子)与它们固有的疏水性(即在没有阴离子添加剂的情况下分析物的保留因子)大致成比例。对于给定的阴离子,有效的选择性调节需要溶质之间离子对强度的差异。基于超载峰的Wade-Lucy-Carr(WLC)动力学模型,我们在之前的工作中开发的方法用于研究流动相阴离子添加剂类型和浓度对极限板数(N-0)和各种阳离子药物的样品负载量(omega(0.5))。在线性色谱条件下,分析物表现出最小的峰宽,因此表观平板数最大,阴离子添加剂的类型和浓度对峰宽几乎没有影响。与中性分析物相比,阳离子类物质的吸附等温线很容易超载,即使注入的阳离子比中性物少得多。我们表明,通过改变样品的负载量,不同的阴离子添加剂会深刻影响阳离子(中心点)的“过载曲线”(即,板数与注入量的关系图)。不同阴离子的样品上样量的增加与阴离子与碱性分析物之间的离子配对程度相同。通过使用更强的离子对试剂或更高浓度的给定离子对试剂,可以大大减少样品超载对峰宽的有害影响。两种效果都通过增加样品的上样量来实现,从而可以注入更多的溶质。我们相信,上述样品装载量的增加部分是由于随着更多的阴离子吸附到固定相,离子交换位点的数量增加。同时,中性离子配对分析物的形成还增加了阳离子的量,该阳离子量可以通过允许更大一部分分析物以电中性形式存在于固定相中(例如,离子对)物种。 (C)2009 Elsevier B.V.保留所有权利。

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