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碳酸盐包覆的银纳米粒子在合成和天然淡水中的胶体稳定性。

Colloidal stability of carbonate-coated silver nanoparticles in synthetic and natural freshwater.

机构信息

Eawag, Swiss Federal Institute of Aquatic Science and Technology, CH-8600 Dübendorf, Switzerland.

出版信息

Environ Sci Technol. 2012 Jan 17;46(2):818-25. doi: 10.1021/es202843h. Epub 2011 Dec 14.

Abstract

To gain important information on fate, mobility, and bioavailability of silver nanoparticles (AgNP) in aquatic systems, the influence of pH, ionic strength, and humic substances on the stability of carbonate-coated AgNP (average diameter 29 nm) was systematically investigated in 10 mM carbonate and 10 mM MOPS buffer, and in filtered natural freshwater. Changes in the physicochemical properties of AgNP were measured using nanoparticle tracking analysis, dynamic light scattering, and ultraviolet-visible spectroscopy. According to the pH-dependent carbonate speciation, below pH 4 the negatively charged surface of AgNP became positive and increased agglomeration was observed. Electrolyte concentrations above 2 mM Ca(2+) and 100 mM Na(+) enhanced AgNP agglomeration in the synthetic media. In the considered concentration range of humic substances, no relevant changes in the AgNP agglomeration state were measured. Agglomeration of AgNP exposed in filtered natural freshwater was observed to be primarily controlled by the electrolyte type and concentration. Moreover, agglomerated AgNP were still detected after 7 days of exposure. Consequently, slow sedimentation and high mobility of agglomerated AgNP could be expected under the considered natural conditions. A critical evaluation of the different methods used is presented as well.

摘要

为了在水生态系统中获取关于银纳米粒子(AgNP)命运、迁移性和生物可利用性的重要信息,本研究系统地考察了 pH 值、离子强度和腐殖质对碳酸盐包覆的 AgNP(平均直径 29nm)稳定性的影响,实验在 10mM 碳酸盐和 10mM MOPS 缓冲液以及过滤后的天然淡水中进行。使用纳米颗粒跟踪分析、动态光散射和紫外-可见光谱法来测量 AgNP 的物理化学性质变化。根据 pH 依赖的碳酸盐形态,在 pH 值低于 4 时,AgNP 的带负电荷表面变为正电荷,观察到团聚体的增加。在合成介质中,电解质浓度高于 2mM Ca(2+)和 100mM Na(+)时,AgNP 团聚体增强。在所考虑的腐殖质浓度范围内,AgNP 团聚状态没有发生明显变化。在过滤后的天然淡水中暴露的 AgNP 的团聚主要受电解质类型和浓度的控制。此外,暴露 7 天后仍检测到团聚的 AgNP。因此,在考虑的自然条件下,可能会出现团聚的 AgNP 的缓慢沉降和高迁移性。本研究还对所使用的不同方法进行了批判性评估。

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