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反相液相色谱的分子模拟研究。

Molecular simulation studies of reversed-phase liquid chromatography.

机构信息

Department of Chemistry and Chemical Theory Center, University of Minnesota, 207 Pleasant Street SE, Minneapolis, MN 55455-0431, USA.

出版信息

J Chromatogr A. 2013 Apr 26;1287:60-82. doi: 10.1016/j.chroma.2013.02.040. Epub 2013 Feb 21.

Abstract

Over the past 20 years, molecular simulation methods have been applied to the modeling of reversed-phase liquid chromatography (RPLC). The purpose of these simulations was to provide a molecular-level understanding of: (i) the structure and dynamics of the bonded phase and its interface with the mobile phase, (ii) the interactions of analytes with the bonded phase, and (iii) the retention mechanism for different analytes. However, the investigation of chromatographic systems poses significant challenges for simulations with respect to the accuracy of the molecular mechanics force fields and the efficiency of the sampling algorithms. This review discusses a number of aspects concerning molecular simulation studies of RPLC systems including the historical development of the subject, the background needed to understand the two prevalent techniques, molecular dynamics (MD) and Monte Carlo (MC) methods, and the wealth of insight provided by these simulations. Examples from the literature employing MD approaches and from the authors' laboratory using MC methods are discussed. The former can provide information on chain dynamics and transport properties, whereas the latter techniques are uniquely suited for the investigation of phase and sorption equilibria that underly RPLC retention, and both can be used to elucidate the bonded-chain conformations and solvent distributions.

摘要

在过去的 20 年中,分子模拟方法已被应用于反相液相色谱(RPLC)的建模。这些模拟的目的是提供对以下方面的分子水平理解:(i)键合相的结构和动力学及其与流动相的界面,(ii)分析物与键合相的相互作用,以及(iii)不同分析物的保留机制。然而,对于模拟来说,色谱系统的研究提出了重大挑战,涉及分子力学力场的准确性和采样算法的效率。本综述讨论了有关 RPLC 系统的分子模拟研究的若干方面,包括主题的历史发展、理解两种流行技术(分子动力学(MD)和蒙特卡罗(MC)方法)所需的背景知识,以及这些模拟提供的丰富见解。讨论了文献中采用 MD 方法的示例和作者实验室采用 MC 方法的示例。前者可以提供有关链动力学和输运性质的信息,而后者技术特别适合于研究反相保留所依据的相和吸附平衡,并且两者都可用于阐明键合链构象和溶剂分布。

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