工程氧化铜纳米粒子在地表水中的转化。

IF 6.8 Q1 TOXICOLOGY
Patrice Turcotte, Christian Gagnon
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引用次数: 0

摘要

纳米氧化铜粒子(CuO-NPs)因其催化特性、导电能力以及在超导体、合金和太阳能传感器领域的创新而被广泛应用。为了更好地了解水化学对氧化铜纳米粒子稳定性的影响,我们对悬浮在纯水、天然水和富含天然有机物富勒酸(FA)的水中的纳米粒子进行了一系列测量。在单颗粒模式(SP-ICP-MS)下进行了 ICP-MS 表征,以确定纳米颗粒在不同水质条件下的稳定性或转化。我们首先观察到,颗粒在 Milli-Q 纯水中的沉降速度非常快。添加 FA 后,随着溶解铜浓度的增加,CuO-NPs 的溶解速度加快,Milli-Q 水和天然水都是如此。FA 的存在还减小了 CuO-NPs 的尺寸(即减少了聚集)。通过比较单个颗粒的信号,FA 也减少了纳米颗粒的数量,这证实了随着时间的推移,CuO-NPs 的溶解度在增加。CuO-NPs 的转化产物对生态环境非常重要,因为母体纳米粒子的吸收和毒性与溶液中的化学物种不同。需要进一步考虑释放的 NPs 的归宿,以更好地评估它们对水生生物的暴露途径和潜在的环境风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transformation of Engineered Copper Oxide Nanoparticles in Surface Waters.

Copper oxide nanoparticles (CuO-NPs) are widely used for their catalytic properties, conductive capacity, and innovations in the fields of superconductors, alloys, and solar energy sensors. To better understand the impact of water chemistry on the stability of CuO nanoparticles, a series of measurements were carried out on nanoparticles suspended in pure water, natural water, and water enriched with natural organic matter fulvic acid (FA). ICP-MS characterization in single-particle mode (SP-ICP-MS) was performed to determine the stability or transformation of nanoparticles in contrasting water conditions. We first observed that particle sedimentation was very fast in pure Milli-Q water. The addition of FA favored the dissolution of CuO-NPs with an increase in the dissolved copper concentration, for both Milli-Q water and natural water. The presence of FA also reduced the size of CuO-NPs (i.e., less aggregation) measured in natural water. By comparing signals of single particles, FA decreased nanoparticle numbers as well, confirming the increase in dissolution of CuO-NPs over time. The transformation products of CuO-NPs are important in the ecological context since the uptake and toxicity of parent nanoparticles differ from those of the chemical species in solution. Further considerations are needed on the fate of released NPs to better assess their exposure pathways to aquatic organisms and potential environmental risks.

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来源期刊
CiteScore
5.30
自引率
1.70%
发文量
21
审稿时长
10 weeks
期刊介绍: The Journal of Xenobiotics publishes original studies concerning the beneficial (pharmacology) and detrimental effects (toxicology) of xenobiotics in all organisms. A xenobiotic (“stranger to life”) is defined as a chemical that is not usually found at significant concentrations or expected to reside for long periods in organisms. In addition to man-made chemicals, natural products could also be of interest if they have potent biological properties, special medicinal properties or that a given organism is at risk of exposure in the environment. Topics dealing with abiotic- and biotic-based transformations in various media (xenobiochemistry) and environmental toxicology are also of interest. Areas of interests include the identification of key physical and chemical properties of molecules that predict biological effects and persistence in the environment; the molecular mode of action of xenobiotics; biochemical and physiological interactions leading to change in organism health; pathophysiological interactions of natural and synthetic chemicals; development of biochemical indicators including new “-omics” approaches to identify biomarkers of exposure or effects for xenobiotics.
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