开发全氟辛烷磺酸物理化学特性和质量分配参数预测工具的框架

Mark L. Brusseau
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摘要

本文介绍了一个用于开发全氟辛烷磺酸物理化学特性和质量分配参数预测模型的框架。该框架的目标是开发足够简单的工具,以便快速、常规地用于初步现场调查和风险评估。这是通过使用定制的 PFAS 专用 QSPR 模型来实现的。这些模型的开发需要对目标属性或参数的测量数据集进行汇总和整理,并辅以量子化学非初始预测得出的估计值。本文以几个实例说明了定制 QSPR 模型在全氟辛烷磺酸中的应用,包括不同界面的分配、几种鱼类的吸收以及四种不同生物材料的分配。在所有系统中都观察到了与摩尔体积的合理相关性。一个值得注意的现象是,所有回归函数的斜率都很相似。这表明,所有这些系统中的分配过程在某种程度上都是由相同的机制(即疏水作用)介导的。讨论了在开发预测模型时需要考虑的特殊因素和要素,包括体相分配过程与界面分配过程的差异。
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A Framework for Developing Tools to Predict PFAS Physical–Chemical Properties and Mass-Partitioning Parameters
A framework for developing predictive models for PFAS physical–chemical properties and mass-partitioning parameters is presented. The framework is based on the objective of developing tools that are of sufficient simplicity to be used rapidly and routinely for initial site investigations and risk assessments. This is accomplished by the use of bespoke PFAS-specific QSPR models. The development of these models entails aggregation and curation of measured data sets for a target property or parameter, supplemented by estimates produced with quantum–chemical ab initio predictions. The application of bespoke QSPR models for PFAS is illustrated with several examples, including partitioning to different interfaces, uptake by several fish species, and partitioning to four different biological materials. Reasonable correlations to molar volume were observed for all systems. One notable observation is that the slopes of all of the regression functions are similar. This suggests that the partitioning processes in all of these systems are to some degree mediated by the same mechanism, namely hydrophobic interaction. Special factors and elements requiring consideration in the development of predictive models are discussed, including differences in bulk-phase versus interface partitioning processes.
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