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

  • Yanna Xue
  • , Yu Fu
  • , Meiru Hou
  • , Lingli Wang
  • , Sifan Qiu
  • , Jinhui Cao
  • , Jialin Chen
  • , Zhaohui Wang*
  • *此作品的通讯作者
  • East China Normal University
  • Shanghai Engineering Research Center of Biotransformation of Organic Solid Waste
  • Ministry of Natural Resources of the People's Republic of China

科研成果: 期刊稿件文章同行评审

摘要

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 Cland 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.

源语言英语
页(从-至)5749-5759
页数11
期刊ACS ES and T Water
5
9
DOI
出版状态已出版 - 12 9月 2025

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