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Sunlight-Induced Molecular Progression of Oil into Oxidized Oil Soluble Species, Interfacial Material, and Dissolved Organic Matter

机译:阳光诱导的油分子进展,氧化油可溶性物质,界面材料和溶解有机物

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摘要

Spilled oil is highly susceptible to sunlight-induced transformations, both as films on the surface of water and material dissolved or dispersed in the water column. We utilized ultrahigh-resolution mass spectrometry and optical spectroscopy to understand shifts in oil photoproduct distributions as a function of photo-oxygenation. Oxygenation of oil produces compounds that have increased polarity, resulting in greater partitioning to the oil-water interface and eventually greater partitioning into the aqueous phase. Such partitioning was shown to be dependent on the carbon number and oxygen content of the photoproducts, providing an empirical basis for predicting the partitioning of oil photodegradation products between the oil phase, the interfacial region, and into the aqueous phase to form petroleum-derived dissolved organic matter. While such photochemical transformations have been predicted for many years, there has not been direct evidence previously for the photodissolution process. Furthermore, the relationship of carbon number and oxygen content with progression from the oil phase to the interfacial phase to the aqueous phase has not been demonstrated. This paper details this progression and observable properties that can be used to understand oil behavior after a spill during sunlight exposure, thus providing greater predictability of oil fate, transport, impact, and effective remediation strategies.
机译:溢出的油容易受到阳光诱导的转化的影响,无论是水的表面上的薄膜和溶解在水柱中的材料。我们利用超高分辨率质谱和光学光谱,以了解油印分布的换档作为光氧合的函数。油的氧合产生具有增加极性的化合物,导致油水界面更大的分配,并最终将分配到水相中。该分配结果依赖于光调节的碳数和氧含量,为预测油相,界面区域和水相之间的油光降解产物的分配提供了经验基础,以形成石油衍生的溶解有机物。虽然这种光化学转换已经预测多年,但之前还没有直接证据进行光电分解过程。此外,尚未证实碳数与碳数和氧含量与从油相进展到水相的界面相的关系。本文详细介绍了这种进展和可观察的性质,可用于了解溢出溢出后溢出后的油行为,从而提供更大的油法,运输,影响和有效修复策略的可预测性。

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  • 来源
    《Energy & fuels》 |2020年第4期|4721-4726|共6页
  • 作者单位

    Florida State Univ Natl High Magnet Field Lab Tallahassee FL 32310 USA;

    Univ New Orleans Dept Chem New Orleans LA 70148 USA|Univ New Orleans Pontchartrain Inst Environm Sci New Orleans LA 70148 USA;

    Florida State Univ Natl High Magnet Field Lab Tallahassee FL 32310 USA;

    Univ Quebec Trois Rivires Dept Environm Sci Res Ctr Watershed Aquat Ecosyst Interact RIVE Trois Rivieres PQ G8Z 4M3 Canada;

    Florida Int Univ Southeast Environm Res Ctr Miami FL 33199 USA|Florida Int Univ Dept Chem & Biochem Miami FL 33199 USA;

    Florida State Univ Natl High Magnet Field Lab Tallahassee FL 32310 USA|Florida State Univ Dept Earth Ocean & Atmospher Sci Tallahassee FL 32310 USA;

    Florida State Univ Natl High Magnet Field Lab Tallahassee FL 32310 USA;

    Univ New Orleans Dept Chem New Orleans LA 70148 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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