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Application of multisolute adsorption equilibrium to the simulation of nonlinear chromatographic band profiles.

机译:多溶质吸附平衡在非线性色谱带谱模拟中的应用。

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In this study, multisolute adsorption equilibrium data were determined experimentally for three systems which are relevant to the area of preparative liquid chromatography. The first system refers to the multisolute adsorption of three light aromatic alcohols on a reversed phase column from a mobile phase composed of a mixture of water and methanol. The second system corresponds to the adsorption of three basic drugs on a C18 column from a buffered mixture of water and acetonitrile. The third system refers to the adsorption of a racemic pharmaceutical intermediate on a chiral column from acetonitrile.; A nonideal, adsorbed solution theory model was developed in order to better understand the distribution of the phenylalcohols between the adsorbed and the bulk phases. The model is able to accurately predict the competitive data based on the single solute adsorption data. It was found that the activity coefficients of the solutes in both phases at equilibrium are roughly constant. In our opinion, this fact explains why the competitive adsorption data presented in this and previous studies can be successfully predicted using simple models like the Langmuir, bi-Langmuir or the ideal adsorbed solution theory models.; Finally, high-concentration band profiles and system peaks were also measured for the aforementioned experimental systems. Theoretical band profiles were calculated using the relevant adsorption isotherms and the equilibrium-dispersive model of nonlinear chromatography. Very good agreement was found between the experimental and the calculated band profiles. This fact provides additional evidence about the usefulness of the equilibrium-dispersive model for the method development, scale-up and optimization of preparative separations when using highly efficient columns.
机译:在这项研究中,实验确定了与制备型液相色谱领域相关的三个系统的多溶质吸附平衡数据。第一种系统是指从水和甲醇的混合物组成的流动相将三种轻质芳香醇在反相色谱柱上进行多溶质吸附。第二种系统对应于三种基本药物在水和乙腈的缓冲混合物中在C18色谱柱上的吸附。第三种系统是指外消旋药物中间体从乙腈吸附在手性柱上。为了更好地理解在吸附相和本体相之间苯醇的分布,建立了一个非理想的吸附溶液理论模型。该模型能够基于单个溶质吸附数据准确预测竞争数据。发现在平衡时两相中的溶质的活度系数大致恒定。我们认为,这一事实解释了为何可以使用简单模型(例如Langmuir,bi-Langmuir或理想的吸附溶液理论模型)成功预测本研究和先前研究中提出的竞争性吸附数据。最后,还针对上述实验系统测量了高浓度带谱和系统峰。使用相关的吸附等温线和非线性色谱的平衡-分散模型计算理论带谱。在实验谱带和计算谱带谱之间发现了很好的一致性。这一事实为平衡分散模型在使用高效色谱柱进行方法开发,放大和优化分离分离方面的实用性提供了更多证据。

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