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Extending the solid-phase microextraction technique to high analyte concentrations: Measurements and thermodynamic analysis

机译:将固相微萃取技术扩展到高分析物浓度:测量和热力学分析

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The solid-phase microextraction (SPME) technique has been used historically to quantify analytes present at the parts per million level. However, the nonintrusive nature of SPME lends itself to other applications involving analytes at higher concentration. In the current work, the possibility of using the SPME technique to measure concentrated gaseous samples was examined. Pentane concentrations between 0 and 100% saturation were studied, over a temperature range of 20-45 degreesC. The results showed that, up to a critical mole fraction in the solid phase, the concentrations of pentane in the polymeric extracting solid and vapor phases were related by a constant, equal to Henry's constant. The temperature dependence of Henry's constant was shown to follow the predicted trend with temperature, as determined from rigorous thermodynamic calculations. Above the pentane concentration in the polymeric phase, the response deviated from linearity. The nonideality was captured in an activity coefficient. An activity coefficient model developed to describe the nonideality was found to be a function of the swollen volume of the SPME polymer phase. The results indicate that the SPME technique can be applied to high analyte concentrations, although difficulties may be encountered when multiple analytes are absorbed. [References: 25]
机译:固相微萃取(SPME)技术在历史上一直用于量化百万分之几的分析物。但是,SPME的非侵入性使其适用于涉及更高浓度分析物的其他应用。在当前的工作中,研究了使用SPME技术测量浓缩气态样品的可能性。在20-45摄氏度的温度范围内,研究了戊烷浓度在0%至100%饱和之间。结果表明,直到固相的临界摩尔分数,聚合萃取固相和气相中戊烷的浓度都与一个常数相关,该常数等于亨利常数。由严格的热力学计算确定,亨利常数的温度依赖性显示其随温度变化遵循预测趋势。在聚合物相中戊烷浓度以上时,响应偏离线性。非理想性被捕获在活动系数中。发现开发出用来描述非理想性的活度系数模型是SPME聚合物相溶胀体积的函数。结果表明,尽管当多种分析物被吸收时可能会遇到困难,但SPME技术可以应用于高分析物浓度。 [参考:25]

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