Thewalim Yasar, Aldaeus Fredrik, Colmsjö Anders
Department of Analytical Chemistry, Stockholm University, 106 91, Stockholm, Sweden.
Anal Bioanal Chem. 2009 Jan;393(1):327-34. doi: 10.1007/s00216-008-2295-2. Epub 2008 Aug 27.
This paper presents an extension of a previous investigation in which the behavior of nonpolar compounds in temperature-programmed gas chromatographic runs was predicted using thermodynamic (entropy and enthalpy) parameters derived from isothermal runs. In a similar manner, entropy and enthalpy parameters were determined for a Grob standard mixture of compounds with widely varying chemical characteristics. These parameters were used to predict the retention times and chromatographic behaviors of the compounds on four gas chromatography capillary columns: three that had phenyl-based stationary phases (with degrees of substitution of 0%, 5% and 50%) and one with (50%) cyanopropyl substitution. The predictions matched data empirically obtained from temperature-programmed chromatographic runs for all of the compounds extremely well, despite the wide variations in polarity of both the compounds and stationary phases. Thus, the results indicate that such simulations could greatly reduce the time and material costs of chromatographic optimizations.
本文介绍了之前一项研究的扩展内容。在之前的研究中,利用等温运行得出的热力学(熵和焓)参数预测了程序升温气相色谱运行中非极性化合物的行为。以类似方式,为具有广泛不同化学特性的化合物的格罗布标准混合物测定了熵和焓参数。这些参数用于预测化合物在四根气相色谱毛细管柱上的保留时间和色谱行为:三根具有苯基固定相(取代度分别为0%、5%和50%),一根具有(50%)氰丙基取代。尽管化合物和固定相的极性差异很大,但预测结果与程序升温色谱运行凭经验获得的数据非常吻合。因此,结果表明这种模拟可以大大降低色谱优化的时间和材料成本。