Prikryl Petr, Sevcik Jiri G K
Department of Analytical Chemistry, Faculty of Science, Charles University in Prague, Hlavova 2030/8, Prague 2, Czech Republic.
J Chromatogr A. 2008 Jan 25;1179(1):24-32. doi: 10.1016/j.chroma.2007.10.016. Epub 2007 Oct 11.
The linear solvation energy relationship (LSER) model was used to characterize interactions responsible for sorption of volatile organic compounds (VOCs) in air samples on six different solid-phase microextraction (SPME) fibers at 296K and zero relative humidity. The polydimethylsiloxane and polyacrylate fibers sorption data were also modeled at different relative humidities in the range of 10-90% and influence of water vapors on the extraction process is discussed. The LSER equations were obtained by a multiple regression of the distribution coefficients of 14 probe solutes on an appropriate SPME fiber against the solvation parameters of the solutes. The derived LSER equations successfully predicted the VOC distribution coefficients and the selectivity of individual SPME fibers for the various volatile solutes. The LSER approach coupled with SPME is a relatively simple and reliable tool to rapidly characterize the sorption mechanism of VOCs with various stationary phases and may potentially be applied to design and test new chromatographic materials for sampling or separation of VOCs.
线性溶剂化能关系(LSER)模型用于表征在296K和零相对湿度下,空气样品中挥发性有机化合物(VOCs)在六种不同固相微萃取(SPME)纤维上吸附的相互作用。还对聚二甲基硅氧烷和聚丙烯酸酯纤维在10%-90%不同相对湿度下的吸附数据进行了建模,并讨论了水蒸气对萃取过程的影响。通过将14种探针溶质在合适的SPME纤维上的分配系数与溶质的溶剂化参数进行多元回归,得到了LSER方程。推导得到的LSER方程成功预测了VOC的分配系数以及各SPME纤维对各种挥发性溶质的选择性。LSER方法与SPME相结合是一种相对简单可靠的工具,可快速表征VOCs与各种固定相的吸附机理,并有可能应用于设计和测试用于VOCs采样或分离的新型色谱材料。