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On the exposure assessment of engineered nanoparticles in aquatic environments

机译:关于工程纳米粒子在水生环境中的暴露评估

摘要

The socio-economic benefits anticipated with the use and production of nanomaterial and nanoparticles in consumer products are linked to the fulfillment of the requirement for sustainability during the whole material life cycle. Engineered nanoparticles (ENP) can be of environmental concern, both due to the possible hazardous effects but also due to the differences in properties compared to regular chemicals, e.g. elevated surface area per mass of nanoparticle, the possibility for enhanced mobility and trespassing biological membranes and other emerging novel properties at the nanoscale. There is a scientific consensus that nanoparticles, nanomaterials and their transformation products have a high probability to be released in the environment. ENP in the aquatic environment present a very dynamic behavior that has to be understood in order to perform a physicochemical-based risk assessment that elucidates their transformation and transport leading to the possibility to predict environmental concentrations and exposure. Therefore, there is a need for adequate theoretical and experimental platforms that can be used for supporting the adequate assessment of fate processes of ENP in the environment.The main results achieved in the thesis were reflected in: 1) identification of theoretical platforms that can provide solutions for the evaluation of fate processes of ENP in aquatic environments 2) improvement in the application of a novel particle tracking method for characterizing natural nanoparticles and ENP in different matrices; 3) identification of the effects of well-characterized NOM and counterion valence on the aggregation rates of TiO2 nanoparticles 4) developing a geographically distributed water classification for Europe based on river water chemistry, 5) use the geographical water classification to evaluate the aggregation and sedimentation of Au NP in in-situ quiescent-water microcosms.The physicochemical characteristics of the receiving water were found to be very influential on the fate of the ENP tested. The ionic concentration, presence of divalent counter ions (specifically calcium), the type of NOM and mass-ratio between NOM and the particles are among the most important parameters. NP coating, surface charge, material properties and shape will also play very important roles. NP number concentrations determine the degree of transport and transformation due to the different dynamic processes in the environment.
机译:在消费产品中使用和生产纳米材料和纳米颗粒所带来的预期社会经济效益与整个材料生命周期中对可持续性要求的满足有关。工程纳米颗粒(ENP)可能与环境有关,这不仅是由于可能的危险影响,而且还因为与常规化学药品(例如化学药品)相比,其性能有所不同。纳米颗粒每单位质量的表面积增加,提高的迁移率和侵入生物膜的可能性以及其他在纳米级出现的新特性。科学共识认为,纳米颗粒,纳米材料及其转化产物极有可能在环境中释放。 ENP在水生环境中呈现出非常动态的行为,必须执行基于行为的理化评估,以阐明其转化和迁移,从而预测环境浓度和暴露的可能性。因此,需要有足够的理论和实验平台来支持对环境中ENP命运过程的充分评估。论文所取得的主要成果体现在:1)确定可以提供理论依据的理论平台用于评估水生环境中ENP命运过程的解决方案2)改进了用于在不同基质中表征天然纳米颗粒和ENP的新型粒子追踪方法的应用; 3)确定特征明确的NOM和抗衡离子化合价对TiO2纳米颗粒聚集速率的影响4)根据河流水化学方法开发欧洲地理分布的水分类,5)使用地理水分类评估聚集和沉积原位静态水微观世界中的金纳米颗粒。接受水的理化特性对所测试的ENP的命运有很大影响。离子浓度,二价抗衡离子(特别是钙)的存在,NOM的类型以及NOM与颗粒之间的质量比是最重要的参数。 NP涂层,表面电荷,材料性质和形状也将起非常重要的作用。由于环境中不同的动态过程,NP浓度决定了运输和转化的程度。

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