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Identifying the Structure and Fate of Wastewater Derived Organic Micropollutants by High-resolution Mass Spectrometry.

机译:通过高分辨率质谱鉴定废水衍生的有机微污染物的结构和结局。

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摘要

Human activities represent a significant burden on the global water cycle, with large and increasing demands placed on limited water resources by manufacturing, energy production and domestic water use. In addition to changing the quantity of available water resources, human activities lead to changes in water quality by introducing a large and often poorly-characterized array of chemical pollutants, which may negatively impact biodiversity in aquatic ecosystems, leading to impairment of valuable ecosystem functions and services. Domestic and industrial wastewaters represent a significant source of pollution to the aquatic environment due to inadequate or incomplete removal of chemicals introduced into waters by human activities. Currently, incomplete chemical characterization of treated wastewaters limits comprehensive risk assessment of this ubiquitous impact to water. In particular, a significant fraction of the organic chemical composition of treated industrial and domestic wastewaters remains uncharacterized at the molecular level. Efforts aimed at reducing the impacts of water pollution on aquatic ecosystems critically require knowledge of the composition of wastewaters to develop interventions capable of protecting our precious natural water resources.;The goal of this dissertation was to develop a robust, extensible and high-throughput framework for the comprehensive characterization of organic micropollutants in wastewaters by high-resolution accurate-mass mass spectrometry. High-resolution mass spectrometry provides the most powerful analytical technique available for assessing the occurrence and fate of organic pollutants in the water cycle. However, significant limitations in data processing, analysis and interpretation have limited this technique in achieving comprehensive characterization of organic pollutants occurring in natural and built environments. My work aimed to address these challenges by development of automated workflows for the structural characterization of organic pollutants in wastewater and wastewater impacted environments by high-resolution mass spectrometry, and to apply these methods in combination with novel data handling routines to conduct detailed fate studies of wastewater-derived organic micropollutants in the aquatic environment.;In Chapter 2, chemoinformatic tools were implemented along with novel non-targeted mass spectrometric analytical methods to characterize, map, and explore an environmentally-relevant "chemical space" in municipal wastewater. This was accomplished by characterizing the molecular composition of known wastewater-derived organic pollutants and substances that are prioritized as potential wastewater contaminants, using these databases to evaluate the pollutant-likeness of structures postulated for unknown organic compounds that I detected in wastewater extracts using high-resolution mass spectrometry approaches. Results showed that application of multiple computational mass spectrometric tools to structural elucidation of unknown organic pollutants arising in wastewaters improved the efficiency and veracity of screening approaches based on high-resolution mass spectrometry. Furthermore, structural similarity searching was essential for prioritizing substances sharing structural features with known organic pollutants or industrial and consumer chemicals that could enter the environment through use or disposal.;I then applied this comprehensive methodological and computational non-targeted analysis workflow to micropollutant fate analysis in domestic wastewaters (Chapter 3), surface waters impacted by water reuse activities (Chapter 4) and effluents of wastewater treatment facilities receiving wastewater from oil and gas extraction activities (Chapter 5). In Chapter 3, I showed that application of chemometric tools aided in the prioritization of non-targeted compounds arising at various stages of conventional wastewater treatment by partitioning high dimensional data into rational chemical categories based on knowledge of organic chemical fate processes, resulting in the classification of organic micropollutants based on their occurrence and/or removal during treatment. Similarly, in Chapter 4, high-resolution sampling and broad-spectrum targeted and non-targeted chemical analysis were applied to assess the occurrence and fate of organic micropollutants in a water reuse application, wherein reclaimed wastewater was applied for irrigation of turf grass. Results showed that organic micropollutant composition of surface waters receiving runoff from wastewater irrigated areas appeared to be minimally impacted by wastewater-derived organic micropollutants. Finally, Chapter 5 presents results of the comprehensive organic chemical composition of oil and gas wastewaters treated for surface water discharge. Concurrent analysis of effluent samples by complementary, broad-spectrum analytical techniques, revealed that low-levels of hydrophobic organic contaminants, but elevated concentrations of polymeric surfactants, which may effect the fate and analysis of contaminants of concern in oil and gas wastewaters.;Taken together, my work represents significant progress in the characterization of polar organic chemical pollutants associated with wastewater-impacted environments by high-resolution mass spectrometry. Application of these comprehensive methods to examine micropollutant fate processes in wastewater treatment systems, water reuse environments, and water applications in oil/gas exploration yielded new insights into the factors that influence transport, transformation, and persistence of organic micropollutants in these systems across an unprecedented breadth of chemical space.
机译:人类活动给全球水循环带来了沉重负担,制造,能源生产和生活用水对有限的水资源提出了越来越大的要求。除了改变可用水资源的数量外,人类活动还通过引入大量且往往表征不佳的化学污染物来导致水质的变化,这可能对水生生态系统中的生物多样性产生不利影响,导致宝贵的生态系统功能受损和服务。由于人类活动引入水中的化学物质的去除不充分或不完全,生活和工业废水是对水生环境的重要污染源。当前,处理过的废水的化学特征不完整,限制了这种普遍存在的对水的影响的综合风险评估。特别是,处理过的工业废水和生活废水的有机化学组成中,很大一部分在分子水平上仍未表征。旨在减少水污染对水生生态系统的影响的工作极其需要了解废水的成分,以开发能够保护我们宝贵的自然水资源的干预措施。本论文的目的是建立一个健壮,可扩展且高通量的框架高分辨率精确质量质谱法对废水中的有机微量污染物进行全面表征。高分辨率质谱法提供了最强大的分析技术,可用于评估水循环中有机污染物的发生和归宿。但是,数据处理,分析和解释的显着局限性限制了该技术在实现对自然和建筑环境中有机污染物的全面表征方面的能力。我的工作旨在通过开发自动化工作流程来解决这些挑战,以通过高分辨率质谱法对废水和废水影响的环境中的有机污染物进行结构表征,并将这些方法与新颖的数据处理程序结合起来,对在第二章中,化学信息学工具与新型非目标质谱分析方法一起使用,以表征,标测和探索市政废水中与环境相关的“化学空间”。这是通过表征已知废水来源的有机污染物和被优先考虑为潜在废水污染物的物质的分子组成来实现的,使用这些数据库评估假定的结构的污染物相似性,该结构是我在废水提取物中使用高浓度检测出的未知有机化合物的假设分辨率质谱方法。结果表明,将多种计算质谱工具应用于废水中未知有机污染物的结构解析,可以提高基于高分辨率质谱法的筛选方法的效率和准确性。此外,结构相似性搜索对于优先考虑与可能通过使用或处置进入环境的已知有机污染物或工业和消费化学品具有结构特征的物质的优先排序;然后我将这种综合的方法论和计算性非目标分析工作流程应用于微污染物的归因分析在生活废水中(第3章),受回用水活动影响的地表水(第4章)以及接收来自油气开采活动的废水的废水处理设施的废水(第5章)。在第3章中,我展示了化学计量工具的应用有助于将常规废水处理各个阶段产生的非目标化合物进行优先排序,方法是根据有机化学命运过程的知识将高维数据划分为合理的化学类别,从而进行分类根据有机微污染物在处理过程中的发生和/或清除情况而定。类似地,在第4章中,采用高分辨率采样和广谱有针对性的化学分析来评估有机微污染物在水回用应用中的发生和去向,其中再生水用于草皮灌溉。结果表明,废水灌溉区域的径流中地表水的有机微污染物组成似乎受到废水衍生有机微污染物的影响最小。最后,第5章介绍了用于地表水排放的油气废水的综合有机化学组成的结果。通过互补的广谱分析技术同时分析废水样品,表明疏水性有机污染物含量低,但聚合物表面活性剂浓度升高,这可能会影响油气废水中关注污染物的命运和分析。总的来说,我的工作代表了极性有机物表征的重大进展高分辨率质谱法分析与废水影响的环境有关的化学污染物。将这些综合方法应用于废水处理系统,水回用环境以及油气勘探中的水应用中的微量污染物归宿过程的研究,可以使人们对影响这些系统中有机微量污染物的运输,转化和持久性的各种因素产生新的见解。化学空间的广度。

著录项

  • 作者

    Getzinger, Gordon J.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Environmental science.;Environmental engineering.;Analytical chemistry.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 286 p.
  • 总页数 286
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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