首页> 外文期刊>The Science of the Total Environment >Understanding the fate and biological effects of Ag-and TiO_2-nanoparticles in the environment: The quest for advanced analytics and interdisciplinary concepts
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Understanding the fate and biological effects of Ag-and TiO_2-nanoparticles in the environment: The quest for advanced analytics and interdisciplinary concepts

机译:了解Ag和TiO_2纳米粒子在环境中的命运和生物效应:对高级分析和跨学科概念的追求

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摘要

Engineered inorganic nanoparticles (EINP) from consumers' products and industrial applications, especially silver and titanium dioxide nanoparticles (NP), are emitted into the aquatic and terrestrial environments in increasing amounts. However, the current knowledge on their environmental fate and biological effects is diverse and renders reliable predictions complicated. This review critically evaluates existing knowledge on colloidal aging mechanisms, biological functioning and transport of Ag NP and TiO_2 NP in water and soil and it discusses challenges for concepts, experimental approaches and analytical methods in order to obtain a comprehensive understanding of the processes linking NP fate and effects. Ag NP undergo dissolution and oxidation with Ag_2S as a thermodynamically determined endpoint. Nonetheless, Ag NP also undergo colloidal transformations in the nanoparticulate state and may act as carriers for other substances. Ag NP and TiO_2 NP can have adverse biological effects on organisms. Whereas Ag NP reveal higher colloidal stability and mobility, the efficiency of NOM as a stabilizing agent is greater towards TiO_2 NP than towards Ag NP, and multivalent cations can dominate the colloidal behavior over NOM. Many of the past analytical obstacles have been overcome just recently. Single particle ICP-MS based methods in combination with field flow fractionation techniques and hydrodynamic chromatography have the potential to fill the gaps currently hampering a comprehensive understanding of fate and effects also at a low field relevant concentrations. These analytical developments will allow for mechanistically orientated research and transfer to a larger set of EINP. This includes separating processes driven by NP specific properties and bulk chemical properties, categorization of effect-triggering pathways directing the EINP effects towards specific recipients, and identification of dominant environmental parameters triggering fate and effect of EINP in specific ecosystems (e.g. soil, lake, or riverine systems).
机译:来自消费者产品和工业应用的工程无机纳米粒子(EINP),尤其是银和二氧化钛纳米粒子(NP),越来越多地排放到水生和陆地环境中。但是,目前关于它们的环境命运和生物影响的知识是多种多样的,并使可靠的预测变得复杂。这篇评论评论性地评估了关于胶体衰老机制,Ag NP和TiO_2 NP在水和土壤中的生物学功能和运输的现有知识,并讨论了概念,实验方法和分析方法的挑战,以便对连接NP命运的过程获得全面的了解。和效果。 Ag NP经历溶解和氧化反应,并以Ag_2S作为热力学确定的终点。尽管如此,Ag NP还在纳米颗粒状态下发生胶体转变,并可能充当其他物质的载体。 Ag NP和TiO_2 NP会对生物产生不利的生物学影响。尽管Ag NP显示出更高的胶体稳定性和迁移率,但NOM作为稳定剂对TiO_2 NP的效率要比对Ag NP更高,并且多价阳离子可以主导NOM的胶体行为。过去的许多分析障碍已在最近克服。基于单颗粒ICP-MS的方法与场流分馏技术和流体动力学色谱法相结合,有可能填补目前的空白,从而妨碍了在低场相关浓度下对命运和影响的全面理解。这些分析方法的发展将允许以机械为导向的研究,并转移到更大的EINP中。这包括分离由NP特定特性和整体化学特性驱动的过程,将EINP效应引向特定受体的效应触发途径的分类,以及识别触发EINP在特定生态系统(如土壤,湖泊或湖泊)中的命运和效应的主要环境参数。河流系统)。

著录项

  • 来源
    《The Science of the Total Environment》 |2015年第1期|3-19|共17页
  • 作者单位

    Universitaet Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany;

    Universitaet Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany;

    Universitaet Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany,Swedish University of Agricultural Sciences, Department of Aquatic Sciences and Assessment, Lennart Hjelms vaeg 9, SE-75007 Uppsala, Sweden;

    Universitaet Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany;

    Albert-Ludwigs-Universitaet Freiburg, Institute of Forest Sciences, Chair of Soil Ecology, 79085 Freiburg i.Br., Germany,Berlin University of Technology, Institute of Ecology, Department of Soil Science, Ernst-Reuter-Platz 1, D-10587 Berlin, Germany;

    Universitaet Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany;

    Universitaet Koblenz-Landau, Institute for Integrated Natural Sciences, Dept. of Biology, Universitaetsstr. 1, D-56070 Koblenz, Germany;

    Helmholtz Centre for Environmental Research-UFZ, Department of Soil Physics, Theodor-Lieser-Strasse 4, D-06120 Halle, Germany;

    Technische Universitaet Muenchen, Institute of Hydrochemistry, Marchioninistr. 17, D-81377 Munich, Germany;

    Technische Universitaet Muenchen, Institute of Hydrochemistry, Marchioninistr. 17, D-81377 Munich, Germany;

    Albert-Ludwigs-Universitaet Freiburg, Institute of Forest Sciences, Chair of Soil Ecology, 79085 Freiburg i.Br., Germany;

    Universitaet Koblenz-Landau, Institute for Integrated Natural Sciences, Dept. of Biology, Universitaetsstr. 1, D-56070 Koblenz, Germany;

    Universitaet Koblenz-Landau, Institute for Environmental Sciences, Group of Ecotoxicology and Environment, Fortstr. 7, D-76829 Landau, Germany;

    Helmholtz Centre for Environmental Research-UFZ, Department of Soil Physics, Theodor-Lieser-Strasse 4, D-06120 Halle, Germany,Martin-Luther-University Halle-Wittenberg, Institute of Soil Science and Plant Nutrition, Von-Seckendorff-Platz 3,06120 Halle/Saale, Germany;

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

    Transport; Aggregation; Analytics; Environment; Aging; Ecotoxicology;

    机译:运输;聚合;分析;环境;老化;生态毒理学;

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