Weiqiang Hao , Jie Tang , Yuying Deng , Lei Jiang , Qiong He , Jin Xu , Yibo Huang , Bo Li , Xiuxiu Qi
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引用次数: 0
Abstract
It is demonstrated that initial hold time (tI) before gradient elution may be taken as an extension of dwell time (tD) of the chromatograph. On the basis of this property, we deduce the expressions for retention time (tR) and band compression factor (GZ) under linear gradient with tI which is also called scouting gradient in this work. In the case of linear solvent strength model (LSSM) and when the analyte is eluted from the column after the end of linear gradient, an algebraic expression for GZ is deduced. A nonlinear fit based on the Levenberg-Marquardt algorithm was applied to the experimental data of tR acquired from six scouting gradient runs to obtain the retention parameters in LSSM as well as quadratic solvent strength model (QSSM). The plate number of the column was also calculated from the gradient elution experimental results. With the retention parameters and plate number obtained, the chromatograms under linear and curved gradient elution were predicted in the case of chiral and reversed-phase HPLC separation. The experimental and predicted chromatograms are consistent, and QSSM is generally better than LSSM for the prediction, especially in the case of chiral separation.
期刊介绍:
The Journal of Chromatography A provides a forum for the publication of original research and critical reviews on all aspects of fundamental and applied separation science. The scope of the journal includes chromatography and related techniques, electromigration techniques (e.g. electrophoresis, electrochromatography), hyphenated and other multi-dimensional techniques, sample preparation, and detection methods such as mass spectrometry. Contributions consist mainly of research papers dealing with the theory of separation methods, instrumental developments and analytical and preparative applications of general interest.