植物源溶解有机物介导的银纳米颗粒在水中的冻结驱动聚集与稳定:共存离子和尺寸分异的影响

IF 4.3 Q1 ENVIRONMENTAL SCIENCES
Yanna Xue, Yu Fu, Meiru Hou, Lingli Wang, Sifan Qiu, Jinhui Cao, Jialin Chen and Zhaohui Wang*, 
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引用次数: 0

摘要

溶解有机物(DOM)介导离子银在阳光下还原为银纳米粒子(AgNPs)的能力已经得到验证,然而,关于自然发生和工程AgNPs的环境命运仍然缺乏知识。本研究系统地探讨了植物源性DOM在临界环境胁迫下合成AgNPs的聚集和稳定机制。结果表明,冻结和共存离子的存在均显著增强了AgNPs的聚集。具体而言,阴离子如Cl -和SO42 -通过静电相互作用促进聚集,而二价阳离子如Ca2+和Mg2+通过桥接效应进一步促进聚集,加速DOM的还原,间接影响AgNPs的稳定性。值得注意的是,由枇杷合成的AgNPs在各种环境胁迫下表现出显著的胶体稳定性,这一现象归因于大分子DOM (>30 kDa)中的特定成分。这些组分可能通过π-Ag配位、位阻和水化壳的形成等机制提供多功能保护。此外,蔗糖-6-乙酸酯似乎增强了介质粘度,从而减少了冻融循环中的扩散。这些发现对于理解植物源性DOM在控制富DOM地表水AgNPs命运中的不同作用具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Freezing-Driven Aggregation Versus Stabilization of Ag Nanoparticles in Water Mediated by Plant-Derived Dissolved Organic Matter: Effects of Coexisting Ions and Size Fractionation

Freezing-Driven Aggregation Versus Stabilization of Ag Nanoparticles in Water Mediated by Plant-Derived Dissolved Organic Matter: Effects of Coexisting Ions and Size Fractionation

The ability of dissolved organic matter (DOM) to mediate the reduction of ionic Ag to silver nanoparticles (AgNPs) in sunlit water has been validated, however, there remains a paucity of knowledge regarding the environmental fates of both naturally occurring and engineered AgNPs. This study systematically investigates the aggregation and stabilization mechanisms of AgNPs synthesized by plant-derived DOM under critical environmental stressors. The results indicate that both freezing and the presence of coexisting ions significantly enhance the aggregation of AgNPs. Specifically, anions such as Cl and SO42– facilitate aggregation through electrostatic interactions, while divalent cations like Ca2+ and Mg2+ further promote aggregation via bridging effects and accelerate the reduction of DOM, which indirectly compromises the stability of AgNPs. Notably, AgNPs synthesized from Eriobotrya japonica demonstrate remarkable colloidal stability under various environmental stressors, a phenomenon attributed to specific components within macromolecular DOM (>30 kDa). These components may provide multifunctional protection through mechanisms such as π-Ag coordination, steric hindrance, and the formation of hydration shells. Furthermore, sucrose-6-acetic ester appears to enhance medium viscosity, thereby reducing diffusion during freeze–thaw cycles. These findings are significant for understanding of the diverse roles of plant-derived DOM in controlling fates of AgNPs in DOM-rich surface water.

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