Literature DB >> 23571111

Fate and transformation of silver nanoparticles in urban wastewater systems.

Ralf Kaegi1, Andreas Voegelin, Christoph Ort, Brian Sinnet, Basilius Thalmann, Jasmin Krismer, Harald Hagendorfer, Maline Elumelu, Elisabeth Mueller.   

Abstract

Discharge of silver nanoparticles (Ag-NP) from textiles and cosmetics, todays major application areas for metallic Ag-NP, into wastewater is inevitable. Transformation and removal processes in sewers and wastewater treatment plants (WWTP) will determine the impact of Ag-NP on aquatic and terrestrial environments, via the effluents of the WWTP and via the use of digested sludge as fertilizer. We thus conducted experiments addressing the behavior of Ag-NP in sewers and in WWTP. We spiked Ag-NP to a 5 km long main trunk sewer and collected 40 wastewater samples after 500 m, 2400 m and 5000 m each according to the expected travel times of the Ag-NP. Excellent mass closure of the Ag derived by multiplying the measured Ag concentrations times the volumetric flow rates indicate an efficient transport of the Ag-NP without substantial losses to the sewer biofilm. Ag-NP reacted with raw wastewater in batch experiments were sulfidized to roughly 15% after 5 h reaction time as revealed by X-ray absorption spectroscopy (XAS). However, acid volatile sulfide (AVS) concentrations were substantially higher in the sewer channel (100 μM) compared to the batch experiments (3 μM; still sufficient to sulfidize spiked 2 μM Ag) possibly resulting in a higher degree of sulfidation in the sewer channel. We further investigated the removal efficiency of 10 nm and 100 nm Ag- and gold (Au)-NP coated with citrate or polyvinylpyrrolidone in activated sludge batch experiments. We obtained very high removal efficiencies (≈ 99%) irrespective of size and coating for Ag- and Au-NP, the latter confirming that the particle type was of minor importance with respect to the degree of NP removal. We observed a strong size dependence of the sulfidation kinetics. We conclude that Ag-NP discharged to the wastewater stream will become sulfidized to various degrees in the sewer system and are efficiently transported to the WWTP. The sulfidation of the Ag-NP will continue in the WWTP, but primarily depending on the size the Ag-NP, may not be complete. Very high removal efficiencies in the WWTP will divert most of the Ag-NP mass flow to the digester and only a small fraction of the Ag will be released to surface waters.
Copyright © 2013 Elsevier Ltd. All rights reserved.

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Year:  2013        PMID: 23571111     DOI: 10.1016/j.watres.2012.11.060

Source DB:  PubMed          Journal:  Water Res        ISSN: 0043-1354            Impact factor:   11.236


  34 in total

1.  Substrate- and plant-mediated removal of citrate-coated silver nanoparticles in constructed wetlands.

Authors:  Hannele Auvinen; Viviana Vásquez Sepúlveda; Diederik P L Rousseau; Gijs Du Laing
Journal:  Environ Sci Pollut Res Int       Date:  2016-08-18       Impact factor: 4.223

2.  Chemical characterisation, antibacterial activity, and (nano)silver transformation of commercial personal care products exposed to household greywater.

Authors:  Maryam Khaksar; Sotirios Vasileiadis; Ryo Sekine; Gianluca Brunetti; Kirk G Scheckel; Krasimir Vasilev; Enzo Lombi; Erica Donner
Journal:  Environ Sci Nano       Date:  2019-09-13

3.  Silver near municipal wastewater discharges into western Lake Ontario, Canada.

Authors:  Chris D Metcalfe; Tamanna Sultana; Jonathan Martin; Karla Newman; Paul Helm; Sonya Kleywegt; Li Shen; Viviane Yargeau
Journal:  Environ Monit Assess       Date:  2018-08-28       Impact factor: 2.513

4.  Considerations of Environmentally Relevant Test Conditions for Improved Evaluation of Ecological Hazards of Engineered Nanomaterials.

Authors:  Patricia A Holden; Jorge L Gardea-Torresdey; Fred Klaessig; Ronald F Turco; Monika Mortimer; Kerstin Hund-Rinke; Elaine A Cohen Hubal; David Avery; Damià Barceló; Renata Behra; Yoram Cohen; Laurence Deydier-Stephan; P Lee Ferguson; Teresa F Fernandes; Barbara Herr Harthorn; W Matthew Henderson; Robert A Hoke; Danail Hristozov; John M Johnston; Agnes B Kane; Larry Kapustka; Arturo A Keller; Hunter S Lenihan; Wess Lovell; Catherine J Murphy; Roger M Nisbet; Elijah J Petersen; Edward R Salinas; Martin Scheringer; Monita Sharma; David E Speed; Yasir Sultan; Paul Westerhoff; Jason C White; Mark R Wiesner; Eva M Wong; Baoshan Xing; Meghan Steele Horan; Hilary A Godwin; André E Nel
Journal:  Environ Sci Technol       Date:  2016-06-03       Impact factor: 9.028

5.  Sublethal concentrations of silver nanoparticles affect the mechanical stability of biofilms.

Authors:  Alexandra Y Grün; Jutta Meier; George Metreveli; Gabriele E Schaumann; Werner Manz
Journal:  Environ Sci Pollut Res Int       Date:  2016-09-20       Impact factor: 4.223

6.  Analysis of metallic and metal oxide nanomaterial environmental emissions.

Authors:  Thabet Tolaymat; Amro El Badawy; Ash Genaidy; Wael Abdelraheem; Reynold Swqueria
Journal:  J Clean Prod       Date:  2017-02-01       Impact factor: 9.297

7.  The toxicity of silver nanoparticles to zebrafish embryos increases through sewage treatment processes.

Authors:  Elke Muth-Köhne; Laura Sonnack; Karsten Schlich; Florian Hischen; Werner Baumgartner; Kerstin Hund-Rinke; Christoph Schäfers; Martina Fenske
Journal:  Ecotoxicology       Date:  2013-08-22       Impact factor: 2.823

8.  Size-dependent toxicity of silver nanoparticles to Glyptotendipes tokunagai.

Authors:  Seona Choi; Soyoun Kim; Yeon-Jae Bae; June-Woo Park; Jinho Jung
Journal:  Environ Health Toxicol       Date:  2015-05-14

9.  Modeling flows and concentrations of nine engineered nanomaterials in the Danish environment.

Authors:  Fadri Gottschalk; Carsten Lassen; Jesper Kjoelholt; Frans Christensen; Bernd Nowack
Journal:  Int J Environ Res Public Health       Date:  2015-05-22       Impact factor: 3.390

10.  Nanosilver: weighing the risks and benefits.

Authors:  Nate Seltenrich
Journal:  Environ Health Perspect       Date:  2013-07       Impact factor: 9.031

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