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微生物风化对生物固体中全氟和多氟烷基物质(PFAS)分配的影响。

Influence of microbial weathering on the partitioning of per- and polyfluoroalkyl substances (PFAS) in biosolids.

作者信息

Lewis Asa J, Ebrahimi Farshad, McKenzie Erica R, Suri Rominder, Sales Christopher M

机构信息

Department of Civil, Architectural, and Environmental Engineering, Drexel University, 3100 Market St., Philadelphia, PA, 19104, USA.

Department of Civil and Environmental Engineering, Temple University, 1947 N 12th St., Philadelphia, PA, 19122, USA.

出版信息

Environ Sci Process Impacts. 2023 Mar 22;25(3):415-431. doi: 10.1039/d2em00350c.

Abstract

Per- and polyfluoroalkyl substances (PFAS) are a large group of man-made fluorinated organic chemicals that can accumulate in the environment. In water resource recovery facilities (WRRFs), some commonly detected PFAS tend to partition to and concentrate in biosolids where they can act as a source to ecological receptors and may leach to groundwater when land-applied. Although biosolids undergo some stabilization to reduce pathogens before land application, they still contain many microorganisms, contributing to the eventual decomposition of different components of the biosolids. This work demonstrates ways in which microbial weathering can influence biosolids decomposition, degrade PFAS, and impact PFAS partitioning in small-scale, controlled laboratory experiments. In the microbial weathering experiments, compound-specific PFAS biosolids-water partitioning coefficients () were demonstrated to decrease, on average, 0.4 logs over the course of the 91 day study, with the most rapid changes occurring during the first 10 days. Additionally, the highest rates of lipid, protein, and organic matter removal occurred during the same time. Among the evaluated independent variables, statistical analyses demonstrated that the most significant solids characteristics that impacted PFAS partitioning were organic matter, proteins, lipids, and molecular weight of organics. A multiple linear regression model was built to predict PFAS partitioning behavior in biosolids based on solid characteristics of the biosolids and PFAS characteristics with a value of 0.7391 when plotting predicted and measured log . The findings from this work reveal that microbial weathering can play a significant role in the eventual fate and transport of PFAS and their precursors from biosolids.

摘要

全氟和多氟烷基物质(PFAS)是一大类人造氟化有机化学品,可在环境中累积。在水资源回收设施(WRRFs)中,一些常见的PFAS往往会分配并浓缩在生物固体中,在那里它们可以作为生态受体的来源,并且在土地施用时可能会渗入地下水。尽管生物固体在土地施用前会进行一些稳定化处理以减少病原体,但它们仍然含有许多微生物,这有助于生物固体不同成分的最终分解。这项工作通过小规模、可控的实验室实验,展示了微生物风化影响生物固体分解、降解PFAS以及影响PFAS分配的方式。在微生物风化实验中,特定化合物的PFAS生物固体 - 水分配系数()在91天的研究过程中平均下降了0.4个对数单位,最快速的变化发生在前10天。此外,脂质、蛋白质和有机物的去除率最高也发生在同一时期。在评估的自变量中,统计分析表明,影响PFAS分配的最显著固体特性是有机物、蛋白质、脂质和有机物的分子量。基于生物固体的固体特性和PFAS特性建立了多元线性回归模型,用于预测生物固体中PFAS的分配行为,绘制预测值与测量值的对数时,值为0.7391。这项工作的结果表明,微生物风化在PFAS及其前体从生物固体的最终归宿和迁移中可以发挥重要作用。

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