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在水生环境中,工程纳米材料的聚集和沉积:物理化学相互作用的作用。

Aggregation and deposition of engineered nanomaterials in aquatic environments: role of physicochemical interactions.

机构信息

Department of Chemical Engineering, McGill University, Montreal, Quebec H3A 2B2, Canada.

出版信息

Environ Sci Technol. 2010 Sep 1;44(17):6532-49. doi: 10.1021/es100598h.

Abstract

The ever-increasing use of engineered nanomaterials will lead to heightened levels of these materials in the environment. The present review aims to provide a comprehensive overview of current knowledge regarding nanoparticle transport and aggregation in aquatic environments. Nanoparticle aggregation and deposition behavior will dictate particle transport potential and thus the environmental fate and potential ecotoxicological impacts of these materials. In this review, colloidal forces governing nanoparticle deposition and aggregation are outlined. Essential equations used to assess particle-particle and particle-surface interactions, along with Hamaker constants for specific nanoparticles and the attributes exclusive to nanoscale particle interactions, are described. Theoretical and experimental approaches for evaluating nanoparticle aggregation and deposition are presented, and the major findings of laboratory studies examining these processes are also summarized. Finally, we describe some of the challenges encountered when attempting to quantify the transport of nanoparticles in aquatic environments.

摘要

随着工程纳米材料使用的不断增加,这些材料在环境中的含量也将增加。本综述旨在全面概述当前关于纳米颗粒在水生环境中迁移和聚集的知识。纳米颗粒的聚集和沉积行为将决定颗粒的迁移潜力,从而决定这些材料的环境归宿和潜在的生态毒理学影响。在本综述中,概述了控制纳米颗粒沉积和聚集的胶体力。描述了用于评估颗粒-颗粒和颗粒-表面相互作用的基本方程,以及特定纳米颗粒的哈默常数和纳米级颗粒相互作用特有的属性。提出了评估纳米颗粒聚集和沉积的理论和实验方法,并总结了实验室研究中检查这些过程的主要发现。最后,我们描述了在尝试量化纳米颗粒在水生环境中的迁移时遇到的一些挑战。

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