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Sorption equilibrium of a wide spectrum of organic vapors in Leonardite humic acid: Experimental setup and experimental data

机译:芒硝腐殖酸中多种有机蒸气的吸附平衡:实验装置和实验数据

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摘要

The environmental fate of volatile and semivolatile organic compounds is determined by their partitioning between air and soil constituents, in particular soil organic matter (SOM). While there are many studies on the partitioning of nonpolar compounds between water and SOM, data on sorption of polar compounds and data for sorption from the gas phase are rather limited. In this study, Leonardite humic acid/air partition coefficients for 188 polar and nonpolar organic compounds at temperatures between 5 and 75 degrees C and relative humidities between < 0.01% and 98% have been determined using a dynamic flow-through technique. To the best of our knowledge, this is by far the largest and most diverse and consistent data set for sorption into humic material published so far. The major results are as follows: the relative humidity affected the experimental partition coefficients by up to a factor of 3; polar compounds generally sorbed more strongly than nonpolar compounds due to H-bonding (electron donor/acceptor interactions) with the humic acid; no glass transitions in the range of 5-75 degrees C that would be relevant with respect to the sorption behavior of hydrated Leonardite humic acid were observed; our experimental data agree well with experimental partition coefficients from various literature sources.
机译:挥发性和半挥发性有机化合物的环境命运取决于它们在空气和土壤成分(特别是土壤有机质)之间的分配。尽管有许多关于非极性化合物在水和SOM之间分配的研究,但极性化合物的吸附数据和气相吸附数据却非常有限。在这项研究中,使用动态流通技术确定了5至75摄氏度之间的温度和相对湿度<0.01%至98%之间的188种极性和非极性有机化合物的伦纳石腐殖酸/空气分配系数。就我们所知,这是迄今为止出版的最大,最多样化和最一致的吸附到腐殖质材料中的数据集。主要结果如下:相对湿度对实验分配系数的影响最大为3。由于与腐殖酸的氢键(电子给体/受体相互作用),极性化合物通常比非极性化合物吸收更强;在5-75℃的范围内没有观察到与水合的伦纳石腐殖酸的吸附行为有关的玻璃化转变;我们的实验数据与来自各种文献来源的实验分配系数非常吻合。

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