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Considerations on Orthogonality Duality in Comprehensive Two-Dimensional Gas Chromatography

机译:综合二维气相色谱法对正交性的考虑

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The term "orthogonal" in comprehensive two-dimensional gas chromatography (GC X GC) has a double sided meaning as it stands for a separation resulting from the combination of two independent retention mechanisms (Giddings, J. C. J. High Resolut. Chromatogr. 1987, 10, 319) but also for a 2D separation where the components are evenly distributed over the entire 2D space. It is shown in the present study that a nonorthogonal GC X GC system associating a polar stationary phase in the first dimension (poly(ethylene glycol)) to a nonpolar one in the second dimension (poly(dimethyl siloxane)) leads to a structured chromatogram, a high peak capacity, and a great 2D space occupation. This idea is demonstrated through the characterization of oxygenated compounds in a coal-derived middle distillate. Results show a clear separation between oxygenated species and hydrocarbons which are classified into linear alkanes, cyclic alkanes, and aromatics. A breakthrough configuration combining a polar poly(ethylene glycol) first dimension and a trifluoropropyl methyl stationary phase in the second dimension enabled a unique identification and quantification of linear, cyclic, and aromatic alcohols. This configuration which could be considered as nonorthogonal still involves two different retention mechanisms: polarity and boiling point in the first dimension and electronic interactions in the second dimension. It is selective toward electronegative poles of alcohols and phenols. The contributions of these two configurations compared to a conventional orthogonal system as well as their roles for oxygenated compounds speciation are highlighted. This contribution is measured through three 2D space occupation factors. It appears through these two examples that orthogonality is intimately linked to analyte properties, and a general concept of dimensionality must be considered.
机译:综合二维气相色谱法(GC X GC)中的“正交”一词具有双面含义,因为它表示由两个独立的保留机制结合而导致的分离(Giddings,JCJ High Resolut。Chromatogr。1987,10, 319),也适用于2D分离,其中组件均匀分布在整个2D空间中。本研究表明,将第一维的极性固定相(聚(乙二醇))与第二维的非极性相(聚(二甲基硅氧烷))关联的非正交GC X GC系统可得到结构化色谱图,高峰值容量和2D空间占用。通过表征煤衍生的中间馏分中的含氧化合物可以证明这一想法。结果表明,含氧物质与碳氢化合物之间的分离清晰,碳氢化合物分为直链烷烃,环状烷烃和芳烃。突破性的配置结合了极性聚(乙二醇)第一维和第二维的三氟丙基甲基固定相,可以对线性,环状和芳族醇进行独特的鉴定和定量。可以认为是非正交的这种配置仍涉及两个不同的保留机制:第一维的极性和沸点以及第二维的电子相互作用。它对醇和酚的负电性极具选择性。与常规正交系统相比,这两种构型的贡献以及它们在含氧化合物物种形成中的作用都得到了强调。此贡献是通过三个2D空间占用因子来衡量的。通过这两个示例可以看出,正交性与分析物的特性密切相关,因此必须考虑尺寸的一般概念。

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