Impact of surface coating and environmental conditions on the fate and transport of silver nanoparticles in the aquatic environment

被引:45
|
作者
Ellis, Laura-Jayne A. [1 ]
Valsami-Jones, Eugenia [1 ]
Lead, Jamie R. [1 ,2 ]
Baalousha, Mohammed [2 ]
机构
[1] Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham B15 2TT, W Midlands, England
[2] Univ South Carolina, Arnold Sch Publ Hlth, Dept Environm Hlth Sci, CENR, Columbia, SC 29208 USA
基金
英国自然环境研究理事会;
关键词
Citrate and PVP AgNPs; Fate and behavior; Aquatic microcosms; Suwannee River Fulvic Acid; UV-vis; TEM; IRON-OXIDE NANOPARTICLES; ATOMIC-FORCE MICROSCOPY; DIVALENT ELECTROLYTE-SOLUTIONS; NATURAL ORGANIC-MATTER; MANUFACTURED NANOPARTICLES; SAMPLE PREPARATION; AGGREGATION KINETICS; GOLD NANOPARTICLES; DISSOLUTION RATE; FULVIC-ACID;
D O I
10.1016/j.scitotenv.2016.05.199
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The role of surface coating (polyv nylpyrrolidone (PVP) and citrate) and water chemistry on the fate and behavior of AgNPs in aquatic microcosms is reported in this study. The migration and transformation of the AgNPs was examined in low (ultrapure water-UPW) and high ionic strength (moderately hard water- MHW) preparations, and in the presence of modeled natural organic mailer (NOM) of Suwannee River Fulvic Acid (SRFA). The migration and fate of the AgNPs in the microcosms was validated using a sedimenLilion-diffusion model and the aggregalion behavior was monitored by UV-visible spectrometry (UV-vis). Dissolved and particulate Ag concentrations (% Ag) were analyzed by 0.1-affiliation methods. Imaging of the AgNPs was captured using transmission electron microscopy (TEM). Results indicate that PVP-coated AgNPs (PVP-AgNPs) remained stable for 28 days with similarly disiribulecl concentrations of the PVP-AgNPs throughout the columns in each of the water conditions after approximately 96 h (4 days). The sedimentation-diffusion model confirmed PVP-AgNP stability in each condition, by showing diffusion dominated transport by using the original unaltered AgNP sizes to fit the parameters. In comparison, citrate AgNPs were largely unstable in the more complex water preparations (MHW). In MHW, aggregation dominated behavior followed by sedimentation/dissolution controlled transport was observed. The addition of SRFA to MHW resulted in small stabilizing effects, to the citrate coated AgNPs, producing smaller sized AgNPs (TEM) and mixed sedimentation and diffusion migration compared the studies absent of SRFA. The results suggest that surface coating and solution chemistry has a major impact on AgNP stability, furthermore the corresponding modeling will support the experimental understanding of the overall fate of AgNPs in the environment. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:95 / 106
页数:12
相关论文
共 50 条
  • [1] Modelling the Release, Transport and Fate of Engineered Nanoparticles in the Aquatic Environment - A Review
    Markus, Adriaan A.
    Parsons, John R.
    Roex, Erwin W. M.
    de Voogt, Pim
    Laane, Remi W. P. M.
    REVIEWS OF ENVIRONMENTAL CONTAMINATION AND TOXICOLOGY, VOL 243, 2017, 243 : 53 - 87
  • [2] Environmental impact of biogenic silver nanoparticles in soil and aquatic organisms
    Ottoni, C. A.
    Lima Neto, M. C.
    Leo, P.
    Ortolan, B. D.
    Barbieri, E.
    De Souza, A. O.
    CHEMOSPHERE, 2020, 239
  • [3] Role of water temperature in the fate and transport of zinc oxide nanoparticles in aquatic environment
    Majedi, Seyed Mohammad
    Lee, Hian Kee
    Kelly, Barry C.
    NANOSAFE 2012: INTERNATIONAL CONFERENCES ON SAFE PRODUCTION AND USE OF NANOMATERIALS, 2013, 429
  • [4] Influences of environmental conditions on the aquatic toxicity of silver nanoparticles to Daphnia magna.
    Sofield, Ruth
    Nieman, Alayna
    Abernathy, Macon
    Gibson, Anthony
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 249
  • [5] Silver nanoparticle accumulation by aquatic organisms - neutron activation as a tool for the environmental fate of nanoparticles tracing
    Asztemborska, Monika
    Jakubiak, Malgorzata
    Ksiazyk, Malgorzata
    Steborowski, Romuald
    Polkowska-Motrenko, Halina
    Bystrzejewska-Piotrowska, Grazyna
    NUKLEONIKA, 2014, 59 (04) : 169 - 173
  • [6] Silver nanoparticles: Behaviour and effects in the aquatic environment
    Fabrega, Julia
    Luoma, Samuel N.
    Tyler, Charles R.
    Galloway, Tamara S.
    Lead, Jamie R.
    ENVIRONMENT INTERNATIONAL, 2011, 37 (02) : 517 - 531
  • [7] Mechanism of formation of silver nanoparticles in aquatic environment
    Adegboyega, Nathaniel F.
    Sharma, Virender K.
    Siskova, Karolina
    Zboril, Radek
    Schultz, Brian J.
    Banerjee, Sarbajit
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2014, 247
  • [8] Distribution of Silver (Ag) and Silver Nanoparticles (AgNPs) in Aquatic Environment
    Mat Lazim, Zainab
    Salmiati, Salmiati
    Marpongahtun, Marpongahtun
    Arman, Nor Zaiha
    Mohd Haniffah, Mohd Ridza
    Azman, Shamila
    Yong, Ee Ling
    Salim, Mohd Razman
    WATER, 2023, 15 (07)
  • [9] Special Issue: Environmental Fate of Contaminants in the Aquatic Environment
    Barra Caracciolo, Anna
    WATER, 2021, 13 (10)
  • [10] Fate and transport of silver nanoparticles in constructed wetlands
    Chand, Naveen
    Prajapati, Sanjeev Kumar
    JOURNAL OF CLEANER PRODUCTION, 2025, 489