Seeley John V, Schimmel Nicolaas E, Seeley Stacy K
Department of Chemistry, Oakland University, Rochester, MI, 48309, USA.
Division of Arts and Sciences, Mott Community College, Flint, MI, 48504, USA.
Anal Bioanal Chem. 2023 May;415(13):2399-2409. doi: 10.1007/s00216-022-04387-8. Epub 2022 Oct 27.
This study examines how the height and width of peaks exiting the secondary column of a comprehensive two-dimensional gas chromatography (GC × GC) separation are affected by the width of the pulse introduced to the secondary column. A flow-modulated GC × GC apparatus was assembled that allowed input pulse widths to be controlled precisely over a range of 10 to 70 ms. GC × GC chromatograms were obtained using secondary columns containing a polyethylene glycol stationary phase with internal diameters of 0.25 and 0.32 mm. The area, height, and width of peaks emerging from the secondary column were found to be accurately modeled by the convolution of a rectangular function with a Gaussian distribution. The rectangular function represents the input pulse, and the Gaussian distribution represents the broadening that occurs in the secondary column. The minimum peak width that could be produced by the secondary column was determined for a wide range of compounds. Injection pulse widths that matched a compound's minimum peak width produced peaks that were 25% wider than the minimum width and had heights that were 76% of the maximum possible peak height. Increasing the injection width significantly above the minimum width yielded substantially broader peaks with only a modest increase (< 25%) in peak height.
本研究考察了全二维气相色谱(GC×GC)分离中从第二根色谱柱流出的峰的高度和宽度如何受到引入第二根色谱柱的脉冲宽度的影响。组装了一台流量调制式GC×GC仪器,该仪器可在10至70毫秒的范围内精确控制输入脉冲宽度。使用内径为0.25和0.32毫米、含有聚乙二醇固定相的第二根色谱柱获得了GC×GC色谱图。发现从第二根色谱柱流出的峰的面积、高度和宽度可以通过矩形函数与高斯分布的卷积精确建模。矩形函数代表输入脉冲,高斯分布代表在第二根色谱柱中发生的展宽。针对多种化合物确定了第二根色谱柱能够产生的最小峰宽。与化合物最小峰宽匹配的进样脉冲宽度产生的峰比最小宽度宽25%,且峰高为最大可能峰高的76%。将进样宽度显著增加到高于最小宽度会产生宽得多的峰,而峰高仅适度增加(<25%)。