Department of Civil and Environmental Engineering, Duke University , Box 90287, Durham, North Carolina 27708, United States.
Environ Sci Technol. 2011 Apr 15;45(8):3217-23. doi: 10.1021/es1029798. Epub 2011 Feb 3.
Nanoparticulate metal sulfides such as ZnS can influence the transport and bioavailability of pollutant metals in anaerobic environments. The aim of this work was to investigate how the composition of dissolved natural organic matter (NOM) influences the stability of zinc sulfide nanoparticles as they nucleate and aggregate in water with dissolved NOM. We compared NOM fractions that were isolated from several surface waters and represented a range of characteristics including molecular weight, type of carbon, and ligand density. Dynamic light scattering was employed to monitor the growth and aggregation of Zn-S-NOM nanoparticles in supersaturated solutions containing dissolved aquatic humic substances. The NOM was observed to reduce particle growth rates, depending on solution variables such as type and concentration of NOM, monovalent electrolyte concentration, and pH. The rates of growth increased with increasing ionic strength, indicating that observed growth rates primarily represented aggregation of charged Zn-S-NOM particles. Furthermore, the observed rates decreased with increasing molecular weight and aromatic content of the NOM fractions, while carboxylate and reduced sulfur content had little effect. Differences between NOM were likely due to properties that increased electrosteric hindrances for aggregation. Overall, results of this study suggest that the composition and source of NOM are key factors that contribute to the stabilization and persistence of zinc sulfide nanoparticles in the aquatic environment.
纳米级金属硫化物,如 ZnS,可以影响污染物金属在厌氧环境中的迁移和生物可利用性。本研究旨在探讨在含有溶解态天然有机物(NOM)的水中,NOM 的组成如何影响硫化锌纳米颗粒成核和聚集时的稳定性。我们比较了从几种地表水分离出的 NOM 馏分,这些馏分具有不同的特性,包括分子量、碳类型和配体密度。动态光散射用于监测在含有溶解水合腐殖质的过饱和溶液中 Zn-S-NOM 纳米颗粒的生长和聚集。结果表明,NOM 降低了颗粒的生长速率,这取决于溶液变量,如 NOM 的类型和浓度、单价电解质浓度和 pH 值。生长速率随离子强度的增加而增加,表明观察到的生长速率主要代表带电荷的 Zn-S-NOM 颗粒的聚集。此外,观察到的速率随 NOM 馏分的分子量和芳香族含量的增加而降低,而羧酸盐和还原硫含量的影响较小。NOM 之间的差异可能归因于增加聚集的空间位阻的特性。总之,本研究结果表明,NOM 的组成和来源是影响锌硫化物纳米颗粒在水环境中稳定性和持久性的关键因素。