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Tutorial for the Characterization of Fatty Acid Methyl Esters by Gas Chromatography with Highly Polar Capillary Columns

机译:用气相色谱用高极性毛细管柱表征脂肪酸甲酯的教程

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The fatty acid composition of fats and oils is commonly determined by gas chromatography after preparing fatty acid methyl esters (FAME). Capillary columns coated with polyethylene glycol emerged as the preferred separation tool for the quantification of the polyunsaturated fatty acids contained primarily in marine oils. However, their selectivity is inadequate for measuring the trans fatty acids (TFA) contained in refined vegetable oils, dairy fats, and marine oils. Highly polar 100% poly(biscyanopropyl siloxane) capillary columns provide the necessary selectivity, but small differences in the phase polarity caused by column age, conditioning, or manufacturing variations affect the reproducibility of their separations of these complex samples. In this study, a simple procedure is described to compensate for small variations in column selectivity by adjusting the elution temperature. The balance between the dipole-induced dipole interactions and dispersive interactions was determined by measuring selectivity factors [SF(i)] corresponding to the elution of an unsaturated FAME such as 18:3n-3 relative to two saturated FAME such as 20:0 and 22:0. Knowing the SF(i) provided by the installed capillary column at a given elution temperature, and the SF(i) of the target separation, we propose a simple calculation to determine the necessary elution temperature adjustment to achieve (or restore) the desired separation. After determining the SF(i) which provides the optimal separation of TFA, the novel methodology was applied to the separation of refined vegetable oils, butter fats, and marine oils.
机译:脂肪和油的脂肪酸组成通常在制备脂肪酸甲酯(FAME)后通过气相色谱法测定。涂有聚乙二醇的毛细管柱成为定量分析海洋石油中主要含有的多不饱和脂肪酸的首选分离工具。然而,它们的选择性不足以测量精炼植物油、乳脂肪和海洋油中所含的反式脂肪酸(TFA)。高极性100%聚(双氰基丙基硅氧烷)毛细管柱具有必要的选择性,但由于柱龄、调节或制造变化引起的相极性微小差异会影响其分离这些复杂样品的再现性。在这项研究中,描述了一个简单的程序,通过调整洗脱温度来补偿柱选择性的微小变化。偶极诱导的偶极相互作用和色散相互作用之间的平衡通过测量与不饱和FAME(如18:3n-3)相对于两个饱和FAME(如20:0和22:0)的洗脱相对应的选择性因子[SF(i)]来确定。已知安装的毛细管柱在给定洗脱温度下提供的SF(i)和目标分离的SF(i),我们提出一个简单的计算来确定实现(或恢复)所需分离所需的洗脱温度调整。在确定了提供TFA最佳分离的SF(i)后,新方法被应用于精制植物油、黄油和海洋油的分离。

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