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Coupling temperature control with electrochemically modulated liquid chromatography: Fundamental aspects and applications

机译:电化学调制液相色谱与温度控制的耦合:基本方面和应用

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摘要

The primary focus of the doctoral research presented herein has been the integration of temperature control into electrochemically modulated liquid chromatography (EMLC). The combination of temperature control and the tunable characteristics of carbonaceous EMLC stationary phases have been invaluable in deciphering the subtleties of the retention mechanism. The effects of temperature and Eapp on the retention of several naphthalene disulfonates were therefore examined by the van't Hoff relationship. The results indicate that while the retention of both compounds is exothermic at levels comparable to that in many reversed-phase separations, the potential dependence of the separation is actually entropically affected in a manner paralleling that of several classical ion exchange systems. Furthermore, the retention of small inorganic anions at constant temperature also showed evidence of an ion exchange type of mechanism. While a more complete mechanistic description will come from examining the thermodynamics of retention for a wider variety of analytes, this research has laid the groundwork for full exploitation of temperature as a tool to develop retention rules for EMLC.;Operating EMLC at elevated temperature and flow conditions has decreased analysis time and has enabled the separation of analytes not normally achievable on a carbon stationary phase. The separation of several aromatic sulfonates was achieved in less than 1 min, a reduction of analysis time by more than a factor of 20 as compared to room temperature separations. The use of higher operating temperatures also facilitated the separation of this mixture with an entirely aqueous mobile phase in less than 2 min. This methodology was extended to the difficult separation of polycyclic aromatic hydrocarbons on PGC. This study also brought to light the mechanistic implications of the unique retention behavior of these analytes through variations of the mobile phase composition.
机译:本文介绍的博士研究的主要重点是将温度控制集成到电化学调制液相色谱(EMLC)中。温度控制和碳质EMLC固定相的可调谐特性的结合对于破译保留机理的微妙之处具有不可估量的价值。因此,通过van't Hoff关系检验了温度和Eapp对几种萘二磺酸盐保留的影响。结果表明,尽管两种化合物的保留量都以与许多反相分离相当的水平放热,但实际上以与几种经典离子交换系统相似的方式,熵地影响了分离的电势依赖性。此外,小的无机阴离子在恒温下的保留也显示出离子交换类型机理的证据。虽然将通过检查更广泛的分析物的保留热力学来获得更完整的机理描述,但这项​​研究为充分利用温度作为开发EMLC保留规则的工具奠定了基础;在较高的温度和流量下操作EMLC这种条件减少了分析时间,并使分离出通常在碳固定相上无法实现的分析物成为可能。在不到1分钟的时间内完成了几种芳族磺酸盐的分离,与室温分离相比,分析时间减少了20倍以上。使用较高的操作温度还有助于在不到2分钟的时间内用完全含水的流动相分离该混合物。这种方法扩展到了在PGC上难以分离多环芳烃的问题。这项研究还通过流动相组成的变化揭示了这些分析物独特保留行为的机理。

著录项

  • 作者

    Ponton, Lisa M.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Analytical chemistry.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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