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Insight into the formation and biological effects of natural organic matter corona on silver nanoparticles in water environment using biased cyclical electrical field-flow fractionation.

Authors :
Tan, Zhiqiang
Zhao, Weichen
Yin, Yongguang
Xu, Ming
Pan, Wenxiao
Liu, Yanwanjing
Zhang, Qinghua
Gale, Bruce K.
Rui, Yukui
Liu, Jingfu
Source :
Water Research. Jan2023:Part A, Vol. 228, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

• The same-sized AgNPs with different coatings were separated by BCyElFFF. • NOM corona on AgNPs was identified by changes in their elution times in BCyElFFF. • NOM corona structures identified were in good agreement with HRTEM results. • NOM corona significantly improved the survival rate of E. coli exposed to AgNPs. Natural organic matter (NOM) readily interacts with nanoparticles, leading to the formation of NOM corona structures on their surface. NOM corona formation is closely related to the surface coatings and bioavailability of nanoparticles. However, the mechanism underlying NOM corona formation on silver nanoparticles (AgNPs) remains largely unknown due to the lack of effective analytical methods for identifying the changes in the AgNP surface. Herein, the separation ability of biased cyclical electrical field-flow fractionation (BCyElFFF) for same-sized polyvinyl pyrrolidone-coated and poly(ethylene glycol)-coated silver nanoparticles (AgNPs) with different electrophoretic mobilities was evaluated under various electrical conditions. Then, the mechanism behind the NOM corona formation on these AgNP surfaces was elucidated based on the changes in the elution time and off-line characterization of the collected fractions during their elution time in a BCyElFFF run. Finally, the survival rates of E. coli exposed to polyvinyl pyrrolidone-coated and poly(ethylene glycol)-coated AgNPs with or without NOM collected during repeated BCyElFFF runs were observed to increase with increasing NOM concentration, clearly demonstrating the negative effect of NOM corona structures on the bioavailability of AgNPs. These findings highlight the powerful separation and isolation ability of BCyElFFF in studying the transformation and fate of nanoparticles in aqueous environments. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00431354
Volume :
228
Database :
Academic Search Index
Journal :
Water Research
Publication Type :
Academic Journal
Accession number :
160537097
Full Text :
https://doi.org/10.1016/j.watres.2022.119355