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Improved Separation of Complex Polycyclic Aromatic Hydrocarbon Mixtures Using Novel Column Combinations in GC×GC/ToF-MS

机译:复合多环芳烃混合物的改进的分离在GC×GC / TOF-ms使用新颖的列组合

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摘要

Complex mixtures of polycyclic aromatic hydrocarbons (PAHs) are difficult to resolve because of the high degree of overlap in compound vapor pressures, boiling points and mass spectral fragmentation patterns. The objective of this research was to improve the separation of complex PAH mixtures (including 97 different parent, alkyl-, nitro-, oxy-, thio-, chloro-, bromo-, and high molecular weight PAHs) using GC×GC/ToF-MS by maximizing the orthogonality of different GC column combinations and improving the separation of PAHs from the sample matrix interferences, including unresolved complex mixtures (UCM). Four different combinations of non-polar, polar, liquid crystal and nano-stationary phase columns were tested. Each column combination was optimized and evaluated for orthogonality using a method based on conditional entropy that considers the quantitative peak distribution in the entire two-dimensional space. Finally, an atmospheric particulate matter with diameter < 2.5 µm (PM2.5) sample from Beijing, China, a soil sample from St. Maries Creosote Superfund Site, and a sediment sample from the Portland Harbor Superfund Site were analyzed for complex mixtures of PAHs. The highest chromatographic resolution, lowest synentropy, highest orthogonality and lowest interference from UCM were achieved using a 10 m × 0.15 mm × 0.10 µm LC-50 liquid crystal column in the first dimension and a 1.2 m × 0.10 mm × 0.10 µm NSP-35 nano-stationary phase column in the second dimension. In addition, the use of this column combination in GC×GC/ToF-MS resulted in significantly shorter analysis times (176 min) for complex PAH mixtures compared to one-dimensional GC/MS (257 min), as well as potentially reduced sample preparation time.
机译:由于化合物蒸汽压力,沸点和质谱碎片图案中的高度重叠,复合多环芳烃(PAHS)的复杂混合物难以解决。本研究的目的是使用GC×GC / TOF改善复合PAH混合物(包括97种不同的亲本,烷基,硝基,氧化氢,溴 - ,溴 - ,溴 - ,溴 - ,溴 - ,溴 - ,溴 - ,溴 - ,溴 - ,溴 - ,溴 - ,溴 - ,溴类) - 通过最大化不同GC柱组合的正交性并改善PAHS与样本矩阵干扰的分离,包括未解析的复杂混合物(UCM)。测试了四种不同的非极性,极性,液晶和纳米固定相柱组合。使用基于条件熵的方法进行优化和评估每个列组合,并考虑整个二维空间中定量峰值分布的方法进行正交性。最后,来自北京,中国的直径<2.5μm(PM2.5)样品的大气颗粒物质,来自圣马里斯杂货店超级优惠网站的土壤样本,以及来自波特兰港超级优惠网站的沉积物样品,复杂的PAHS混合物。在第一尺寸中使用10m×0.15mm×0.10μmLC-50液晶柱和1.2M×0.10mm×0.10μmnsp-35实现最高的色谱分辨率纳米固定相位在第二尺寸中。此外,与一维GC / MS(257分钟)相比,复合PAH混合物的分析时间(176分钟)在GC×GC / TOF-MS中使用该柱组合产生显着较短的分析时间(176分钟),以及潜在的降低的样品准备时间。

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