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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Aggregation and dissolution of 4 nm ZnO nanoparticles in aqueous environments: Influence of pH, ionic strength, size, and adsorption of humic acid
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Aggregation and dissolution of 4 nm ZnO nanoparticles in aqueous environments: Influence of pH, ionic strength, size, and adsorption of humic acid

机译:4 nm ZnO纳米粒子在水性环境中的聚集和溶解:pH,离子强度,大小和腐殖酸的吸附的影响

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Metal oxide nanoparticles are used in a wide range of commercial products, leading to an increased interest in the behavior of these materials in the aquatic environment. The current study focuses on the stability of some of the smallest ZnO nanomaterials, 4 ± 1 nm in diameter nanoparticles, in aqueous solutions as a function of pH and ionic strength as well as upon the adsorption of humic acid. Measurements of nanoparticle aggregation due to attractive particle-particle interactions show that ionic strength, pH, and adsorption of humic acid affect the aggregation of ZnO nanoparticles in aqueous solutions, which are consistent with the trends expected from Derjaguin-Landau-Verwey-Overbeek (DLVO) theory. Measurements of nanoparticle dissolution at both low and high pH show that zinc ions can be released into the aqueous phase and that humic acid under certain, but not all, conditions can increase Zn~(2+)(aq) concentrations. Comparison of the dissolution of ZnO nanoparticles of different nanoparticle diameters, including those near 15 and 240 nm, shows that the smallest nanoparticles dissolve more readily. Although qualitatively this enhancement in dissolution can be predicted by classical thermodynamics, quantitatively it does not describe the dissolution behavior very well.
机译:金属氧化物纳米颗粒被广泛用于商业产品中,导致人们对这些材料在水生环境中的行为越来越感兴趣。当前的研究集中在直径最小为4±1 nm的一些最小的ZnO纳米材料在水溶液中的稳定性,该稳定性是pH和离子强度以及腐殖酸吸附的函数。由于有吸引力的颗粒间相互作用而对纳米颗粒聚集进行的测量表明,离子强度,pH和腐殖酸的吸附会影响水溶液中ZnO纳米颗粒的聚集,这与Derjaguin-Landau-Verwey-Overbeek(DLVO)预期的趋势一致)理论。在低pH和高pH下纳米颗粒溶解度的测量结果表明,锌离子可以释放到水相中,腐殖酸在某些(但不是全部)条件下可以增加Zn〜(2 +)(aq)的浓度。比较不同纳米直径(包括15和240 nm附近)的ZnO纳米颗粒的溶出度,可以看出最小的纳米颗粒更容易溶解。尽管定性上溶出度的提高可以通过经典的热力学来预测,但从数量上讲,它并不能很好地描述溶出行为。

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