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How soil organic matter composition controls hexachlorobenzene-soil-interactions: Adsorption isotherms and quantum chemical modeling

机译:土壤有机物成分如何控制六氯苯与土壤的相互作用:吸附等温线和量子化学模型

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摘要

Hazardous persistent organic pollutants (POPs) interact in soil with the soil organic matter (SOM) but this interaction is insufficiently understood at the molecular level. We investigated the adsorption of hexachlorobenzene (HCB) on soil samples with systematically modified SOM. These samples included the original soil, the soil modified by adding a hot water extract (HWE) fraction (soil + 3HWE and soil + 6HWE),and the pyrolyzed soil.The SOM contents increased in the order pyrolyzed soil < original soil < soil + 3 HWE < soil + 6 HWE. For the latter three samples this order was also valid for the HCB adsorption. The pyrolyzed soil adsorbed more HCB than the other samples at low initial concentrations, but at higher concentrations the HCB adsorption became weaker than in the samples with HWE addition. This adsorption combined with the differences in the chemical composition between the soil samples suggested that alkylated aromatic, phenol, and lignin monomer compounds contributed most to the HCB adsorption. To obtain a molecular level understanding, a test set has been developed on the basis of elemental analysis which comprises 32 representative soil constituents. The calculated binding energy for HCB with each representative system shows that HCB binds to SOM stronger than to soil minerals. For SOM, HCB binds to alkylated aromatic, phenols, lignin monomers, and hydrophobic aliphatic compounds stronger than to polar aliphatic compounds confirming the above adsorption isotherms. Moreover, quantitative structure-activity relationship (QSAR) of the binding energy with independent physical properties of the test set systems for the first time indicated that the polarizability, the partial charge on the carbon atoms, and the molar volume are the most important properties controlling HCB-SOM interactions.
机译:有害的持久性有机污染物(POPs)在土壤中与土壤有机质(SOM)相互作用,但是这种相互作用在分子水平上还不够充分。我们调查了六氯苯(HCB)在土壤样品上的吸附量与系统修饰的SOM的关系。这些样品包括原始土壤,通过添加热水提取物(HWE)组分(土壤+ 3HWE和土壤+ 6HWE)改性的土壤以及热解土壤。SOM含量按热解土壤<原土壤<土壤+的顺序增加。 3 HWE <土壤+ 6 HWE。对于后三个样品,此顺序对于HCB吸附也是有效的。在低初始浓度下,热解土壤比其他样品吸附更多的HCB,但在较高浓度下,HCB的吸附变得比添加HWE的样品弱。这种吸附与土壤样品之间化学成分的差异相结合,表明烷基化的芳族化合物,苯酚和木质素单体化合物对HCB的吸附作用最大。为了获得对分子水平的了解,已经在元素分析的基础上开发了一套包含32种代表性土壤成分的测试仪。计算得出的六氯代苯与每种代表性系统的结合能表明,六氯代苯与SOM的结合要强于土壤矿物质。对于SOM,HCB与烷基化的芳香族化合物,酚类,木质素单体和疏水性脂肪族化合物的结合要强于极性脂肪族化合物,从而证实了上述吸附等温线。此外,结合能的定量构效关系(QSAR)与测试装置系统的独立物理性质首次表明,极化率,碳原子上的部分电荷和摩尔体积是最重要的控制性质。 HCB-SOM相互作用。

著录项

  • 来源
    《Science of the total environment》 |2014年第1期|98-106|共9页
  • 作者单位

    University of Rostock, Institute of Physics, D-18051 Rostock, Germany,University of Cairo, Faculty of Science, Department of Chemistry, 12613 Giza, Egypt,University of Rostock, Interdisciplinary Faculty, Department of Life, Light and Matter, D-18051 Rostock, Germany;

    University of Rostock, Institute of Physics, D-18051 Rostock, Germany,University of Rostock, Interdisciplinary Faculty, Department of Life, Light and Matter, D-18051 Rostock, Germany;

    King Abdulaziz University, Faculty of Science, Chemistry Department, Jeddah 21589, Saudi Arabia;

    University of Cairo, Faculty of Science, Department of Chemistry, 12613 Giza, Egypt,King Abdulaziz University, Faculty of Science, Chemistry Department, Jeddah 21589, Saudi Arabia;

    University of Rostock, Soil Science, D-18051 Rostock, Germany,University of Rostock, Interdisciplinary Faculty, Department of Life, Light and Matter, D-18051 Rostock, Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Soil organic matter (SOM); Persistent organic pollutants; Hexachlorobenzene adsorption; SOM modeling; Quantum chemical calculations; QSAR;

    机译:土壤有机质(SOM);持久性有机污染物;六氯苯吸附;SOM建模;量子化学计算;QSAR;

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