Vulnerability of drinking water supplies to engineered nanoparticles.

The production and use of engineered nanoparticles (ENPs) inevitably leads to their release into aquatic environments, with the quantities involved expected to increase significantly in the future. Concerns therefore arise over the possibility that ENPs might pose a threat to drinking water supplies. Investigations into the vulnerability of drinking water supplies to ENPs are hampered by the absence of suitable analytical methods that are capable of detecting and quantifiying ENPs in complex aqueous matrices. Analytical data concerning the presence of ENPs in drinking water supplies is therefore scarce. The eventual fate of ENPs in the natural environment and in processes that are important for drinking water production are currently being investigated through laboratory based-experiments and modelling. Although the information obtained from these studies may not, as yet, be sufficient to allow comprehensive assessment of the complete life-cycle of ENPs, it does provide a valuable starting point for predicting the significance of ENPs to drinking water supplies. This review therefore addresses the vulnerability of drinking water supplies to ENPs. The risk of ENPs entering drinking water is discussed and predicted for drinking water produced from groundwater and from surface water. Our evaluation is based on reviewing published data concerning ENP production amounts and release patterns, the occurrence and behavior of ENPs in aquatic systems relevant for drinking water supply and ENP removability in drinking water purification processes. Quantitative predictions are made based on realistic high-input case scenarios. The results of our synthesis of current knowledge suggest that the risk probability of ENPs being present in surface water resources is generally limited, but that particular local conditions may increase the probability of raw water contamination by ENPs. Drinking water extracted from porous media aquifers are not generally considered to be prone to ENP contamination. In karstic aquifers, however, there is an increased probability that if any ENPs enter the groundwater system they will reach the extraction point of a drinking water treatment plant (DWTP). The ability to remove ENPs during water treatment depends on the specific design of the treatment process. In conventional DWTPs with no flocculation step a proportion of ENPs, if present in the raw water, may reach the final drinking water. The use of ultrafiltration techniques improves drinking water safety with respect to ENP contamination.

[1]  G. Owens,et al.  Distinguishable transport behavior of zinc oxide nanoparticles in silica sand and soil columns. , 2015, Science of the Total Environment.

[2]  Yang-hsin Shih,et al.  The effect of inorganic ions on the aggregation kinetics of lab-made TiO2 nanoparticles in water , 2012 .

[3]  Melanie Kah,et al.  Nanopesticide research: current trends and future priorities. , 2014, Environment international.

[4]  Menachem Elimelech,et al.  Colloid mobilization and transport in groundwater , 1996 .

[5]  Risto Myllylä,et al.  TiO2 nanoparticles as an effective UV-B radiation skin-protective compound in sunscreens , 2005 .

[6]  Kevin Kendall,et al.  Aggregation and surface properties of iron oxide nanoparticles: Influence of ph and natural organic matter , 2008, Environmental toxicology and chemistry.

[7]  N. O’Driscoll,et al.  Suspension of Multi-Walled Carbon Nanotubes (CNTs) in Freshwaters: Examining the Effect of CNT Size , 2010 .

[8]  Dianjun Ren,et al.  PROTEINATE-CAPPED SILVER NANOPARTICLE TRANSPORT IN WATER-SATURATED SAND , 2013 .

[9]  J. McCarthy,et al.  Influence of ionic strength and cation charge on transport of colloidal particles in fractured shale saprolite. , 2002, Environmental science & technology.

[10]  Elizabeth A. Casman,et al.  Modeling nanomaterial fate in wastewater treatment: Monte Carlo simulation of silver nanoparticles (nano-Ag). , 2013, The Science of the total environment.

[11]  Xuan Li,et al.  Aggregation and dissolution of silver nanoparticles in natural surface water. , 2012, Environmental science & technology.

[12]  Michael Burkhardt,et al.  Release of silver nanoparticles from outdoor facades. , 2010, Environmental pollution.

[13]  Mark R Wiesner,et al.  Laboratory assessment of the mobility of nanomaterials in porous media. , 2004, Environmental science & technology.

[14]  P. Vilks,et al.  Colloid and suspended particle migration experiments in a granite fracture , 1996 .

[15]  H. Sticher,et al.  Transport of Humic-Coated Iron Oxide Colloids in a Sandy Soil: Influence of Ca2+ and Trace Metals , 1997 .

[16]  Deborah Berhanu,et al.  The complexity of nanoparticle dissolution and its importance in nanotoxicological studies. , 2012, The Science of the total environment.

[17]  Fengchang Wu,et al.  Fate and transport of engineered nanomaterials in the environment. , 2010, Journal of environmental quality.

[18]  M. Baalousha,et al.  Effect of monovalent and divalent cations, anions and fulvic acid on aggregation of citrate-coated silver nanoparticles. , 2013, The Science of the total environment.

[19]  Frank von der Kammer,et al.  Assessment of the physico-chemical behavior of titanium dioxide nanoparticles in aquatic environments using multi-dimensional parameter testing. , 2010, Environmental pollution.

[20]  D. Lin,et al.  Adsorption of phenolic compounds by carbon nanotubes: role of aromaticity and substitution of hydroxyl groups. , 2008, Environmental science & technology.

[21]  C. Gerba,et al.  Fracture Aperture Measurements and Migration of Solutes, Viruses, and Immiscible Creosote in a Column of Clay‐Rich Till , 1996 .

[22]  J. Steevens,et al.  Simultaneous dispersion-dissolution behavior of concentrated silver nanoparticle suspensions in the presence of model organic solutes. , 2011, Chemosphere.

[23]  D. Bouchard,et al.  Formation of aqueous suspensions of fullerenes. , 2009, Environmental science & technology.

[24]  P. Gschwend,et al.  Effect of iron diagenesis on the transport of colloidal clay in an unconfined sand aquifer , 1992 .

[25]  T. Wagner,et al.  Size, number and chemical composition of nanosized particles in drinking water determined by analytical microscopy and LIBD. , 2008, Water research.

[26]  S. Yates,et al.  Modeling colloid attachment, straining, and exclusion in saturated porous media. , 2003, Environmental science & technology.

[27]  K. Hungerbühler,et al.  Comprehensive probabilistic modelling of environmental emissions of engineered nanomaterials. , 2014, Environmental pollution.

[28]  Gordon E. Brown,et al.  Sulfidation of copper oxide nanoparticles and properties of resulting copper sulfide , 2014 .

[29]  Serge Stoll,et al.  TiO2 nanoparticles aggregation and disaggregation in presence of alginate and Suwannee River humic acids. pH and concentration effects on nanoparticle stability. , 2013, Water research.

[30]  M. Delay,et al.  Interactions and stability of silver nanoparticles in the aqueous phase: Influence of natural organic matter (NOM) and ionic strength. , 2011, Journal of chromatography. A.

[31]  H. Abdul Aziz,et al.  Aggregation and disaggregation of ZnO nanoparticles: influence of pH and adsorption of Suwannee River humic acid. , 2014, The Science of the total environment.

[32]  Yu Wang,et al.  Dispersion and toxicity of selected manufactured nanomaterials in natural river water samples: effects of water chemical composition. , 2009, Environmental science & technology.

[33]  P. Herckes,et al.  Detection of fullerenes (C60 and C70) in commercial cosmetics. , 2011, Environmental pollution.

[34]  Baoshan Xing,et al.  Applications and implications of manufactured nanoparticles in soils: a review , 2012 .

[35]  E. Tombácz,et al.  The effect of humic acid adsorption on pH-dependent surface charging and aggregation of magnetite nanoparticles. , 2006, Journal of colloid and interface science.

[36]  Nathalie Tufenkji,et al.  Effect of particle size and natural organic matter on the migration of nano- and microscale latex particles in saturated porous media. , 2008, Journal of colloid and interface science.

[37]  Roman Ashauer,et al.  Nanopesticides: guiding principles for regulatory evaluation of environmental risks. , 2014, Journal of agricultural and food chemistry.

[38]  G. Amy,et al.  Effects of Ozone on the Colloidal Stability and Aggregation of Particles Coated with Natural Organic Matter , 1996 .

[39]  F. Lang,et al.  The fate of silver nanoparticles in soil solution--Sorption of solutes and aggregation. , 2015, The Science of the total environment.

[40]  Wei-xian Zhang,et al.  Nanoscale Iron Particles for Environmental Remediation: An Overview , 2003 .

[41]  A. Fane,et al.  Ultrafiltration of Colloidal Silver Particles: Flux, Rejection, and Fouling , 1993 .

[42]  Stephan Wagner,et al.  Spot the difference: engineered and natural nanoparticles in the environment--release, behavior, and fate. , 2014, Angewandte Chemie.

[43]  A Weir,et al.  Functionalized nanoparticle interactions with polymeric membranes. , 2012, Journal of hazardous materials.

[44]  N. Weisbrod,et al.  Impact of particle size on colloid transport in discrete fractures , 2006 .

[45]  K. Chen,et al.  Disaggregation of heteroaggregates composed of multiwalled carbon nanotubes and hematite nanoparticles. , 2014, Environmental science. Processes & impacts.

[46]  J. Xiao,et al.  Effect of dissolved organic matter on the stability of magnetite nanoparticles under different pH and ionic strength conditions. , 2010, The Science of the total environment.

[47]  Menachem Elimelech,et al.  Influence of humic acid on the aggregation kinetics of fullerene (C60) nanoparticles in monovalent and divalent electrolyte solutions. , 2007, Journal of colloid and interface science.

[48]  Eberhard Morgenroth,et al.  Sulfidation kinetics of silver nanoparticles reacted with metal sulfides. , 2014, Environmental science & technology.

[49]  Yongsheng Chen,et al.  Effect of natural organic matter on the aggregation kinetics of CeO2 nanoparticles in KCl and CaCl2 solutions: measurements and modeling. , 2012, Journal of hazardous materials.

[50]  Enzo Lombi,et al.  Fate of zinc oxide nanoparticles during anaerobic digestion of wastewater and post-treatment processing of sewage sludge. , 2012, Environmental science & technology.

[51]  S. Banerjee,et al.  Transport and deposition of Suwannee River Humic Acid/Natural Organic Matter formed silver nanoparticles on silica matrices: the influence of solution pH and ionic strength. , 2013, Chemosphere.

[52]  Mark R. Wiesner,et al.  Estimating production data for five engineered nanomaterials as a basis for exposure assessment. , 2011, Environmental science & technology.

[53]  Harry Vereecken,et al.  Limited transport of functionalized multi-walled carbon nanotubes in two natural soils. , 2013, Environmental pollution.

[54]  D. Chittleborough,et al.  Retention and dissolution of engineered silver nanoparticles in natural soils , 2012 .

[55]  R. Scholz,et al.  Modeled environmental concentrations of engineered nanomaterials (TiO(2), ZnO, Ag, CNT, Fullerenes) for different regions. , 2009, Environmental science & technology.

[56]  L. Toran,et al.  Colloid transport through fractured and unfractured laboratory sand columns , 1992 .

[57]  R. Kookana,et al.  Remobilisation of silver and silver sulphide nanoparticles in soils. , 2014, Environmental pollution.

[58]  Frank von der Kammer,et al.  Toward a comprehensive and realistic risk evaluation of engineered nanomaterials in the urban water system , 2014, Front. Chem..

[59]  M. Diallo,et al.  Nanomaterials and Water Purification: Opportunities and Challenges , 2005 .

[60]  Menachem Elimelech,et al.  Mobile Subsurface Colloids and Their Role in Contaminant Transport , 1999 .

[61]  Haiou Huang,et al.  Evaluating Nanoparticle Breakthrough during Drinking Water Treatment , 2013, Environmental health perspectives.

[62]  Xiaoping Zhou,et al.  Sorption of 243Am(III) to multiwall carbon nanotubes. , 2005, Environmental science & technology.

[63]  Jean Marie Colthurst,et al.  The Effects of Permanganate Pretreatment on Trihalomethane Formation in Drinking Water , 1980 .

[64]  Chunming Su,et al.  Distinct effects of humic acid on transport and retention of TiO2 rutile nanoparticles in saturated sand columns. , 2012, Environmental science & technology.

[65]  Kelly G Pennell,et al.  Kinetics and mechanisms of nanosilver oxysulfidation. , 2011, Environmental science & technology.

[66]  Gregory V Lowry,et al.  Effect of chloride on the dissolution rate of silver nanoparticles and toxicity to E. coli. , 2013, Environmental science & technology.

[67]  R. Tilton,et al.  Fe0 nanoparticles remain mobile in porous media after aging due to slow desorption of polymeric surface modifiers. , 2009, Environmental science & technology.

[68]  C revised by John Crittenden,et al.  Water treatment principles and design , 2012 .

[69]  Debra R Reinhart,et al.  Behavior of engineered nanoparticles in landfill leachate. , 2013, Environmental science & technology.

[70]  I. Heidmann Metal oxide nanoparticle transport in porous media – an analysis about (un)certainties in environmental research , 2013 .

[71]  Menachem Elimelech,et al.  Interaction of fullerene (C60) nanoparticles with humic acid and alginate coated silica surfaces: measurements, mechanisms, and environmental implications. , 2008, Environmental science & technology.

[72]  S. Chae,et al.  Membrane filtration of fullerene nanoparticle suspensions: effects of derivatization, pressure, electrolyte species and concentration. , 2010, Journal of colloid and interface science.

[73]  Larry D. McKay,et al.  Colloid Transport in the Subsurface: Past, Present, and Future Challenges , 2004 .

[74]  G. Schaumann,et al.  Interactions of dissolved organic matter with natural and engineered inorganic colloids: a review. , 2014, Environmental science & technology.

[75]  K. Hiscock,et al.  Hydrogeology: Principles and Practice , 2005 .

[76]  Samuel W. Bennett,et al.  Increased Mobility of Metal Oxide Nanoparticles Due to Photo and Thermal Induced Disagglomeration , 2012, PloS one.

[77]  M. M. Fidalgo de Cortalezzi,et al.  An experimental study on the aggregation of TiO2 nanoparticles under environmentally relevant conditions. , 2013, Water research.

[78]  Gordon J Fern,et al.  How important is drinking water exposure for the risks of engineered nanoparticles to consumers? , 2015, Nanotoxicology.

[79]  A. Braun,et al.  Transport of engineered silver (Ag) nanoparticles through partially fractured sandstones. , 2014, Journal of contaminant hydrology.

[80]  Boyu Zhang,et al.  Combining spatially resolved hydrochemical data with in-vitro nanoparticle stability testing: assessing environmental behavior of functionalized gold nanoparticles on a continental scale. , 2013, Environment international.

[81]  Albert A Koelmans,et al.  Potential scenarios for nanomaterial release and subsequent alteration in the environment , 2012, Environmental toxicology and chemistry.

[82]  Peng Wang,et al.  Enhanced environmental mobility of carbon nanotubes in the presence of humic acid and their removal from aqueous solution. , 2008, Small.

[83]  Yixue Chen,et al.  Adsorption of copper(II) on multiwalled carbon nanotubes in the absence and presence of humic or fulvic acids. , 2010, Journal of hazardous materials.

[84]  T. Missana,et al.  Analysis of latex, gold and smectite colloid transport and retention in artificial fractures in crystalline rock , 2013 .

[85]  F. Springer,et al.  Removal of SiO2 nanoparticles from industry wastewaters and subsurface waters by ultrafiltration: Investigation of process efficiency, deposit properties and fouling mechanism☆ , 2013 .

[86]  Gordon E. Brown,et al.  Sulfidation mechanism for zinc oxide nanoparticles and the effect of sulfidation on their solubility. , 2013, Environmental science & technology.

[87]  D van de Meent,et al.  Heteroaggregation and sedimentation rates for nanomaterials in natural waters. , 2014, Water research.

[88]  Melanie Kah,et al.  Nanopesticides: State of Knowledge, Environmental Fate, and Exposure Modeling , 2013 .

[89]  Richard J. Williams,et al.  An assessment of the fate, behaviour and environmental risk associated with sunscreen TiO₂ nanoparticles in UK field scenarios. , 2011, The Science of the total environment.

[90]  Menachem Elimelech,et al.  Particle Deposition and Aggregation: Measurement, Modelling and Simulation , 1995 .

[91]  Paul Westerhoff,et al.  Nanoparticle silver released into water from commercially available sock fabrics. , 2008, Environmental science & technology.

[92]  M. Jekel The Benefits of Ozone Treatment Prior to Flocculation Processes , 1983 .

[93]  Liping Pang,et al.  Transport of silver nanoparticles in saturated columns of natural soils. , 2013, The Science of the total environment.

[94]  S. Walker,et al.  Coupling of physical and chemical mechanisms of colloid straining in saturated porous media. , 2007, Water research.

[95]  Christoph Ort,et al.  Fate and transformation of silver nanoparticles in urban wastewater systems. , 2013, Water research.

[96]  Kun Yang,et al.  Sorption of phenanthrene by humic acid-coated nanosized TiO2 and ZnO. , 2009, Environmental science & technology.

[97]  W. P. Ball,et al.  Colloidal properties of aqueous suspensions of acid-treated, multi-walled carbon nanotubes. , 2009, Environmental science & technology.

[98]  Michael Riediker,et al.  Nanoparticle Usage and Protection Measures in the Manufacturing Industry—A Representative Survey , 2010, Journal of occupational and environmental hygiene.

[99]  Bernd Nowack,et al.  Behavior of silver nanotextiles during washing , 2009 .

[100]  Denise M Mitrano,et al.  Detecting nanoparticulate silver using single‐particle inductively coupled plasma–mass spectrometry , 2012, Environmental toxicology and chemistry.

[101]  Hansruedi Siegrist,et al.  Behavior of metallic silver nanoparticles in a pilot wastewater treatment plant. , 2011, Environmental science & technology.

[102]  John Crittenden,et al.  Impact of natural organic matter and divalent cations on the stability of aqueous nanoparticles. , 2009, Water research.

[103]  A. Hogenboom,et al.  Quantifying summed fullerene nC60 and related transformation products in water using LC LTQ Orbitrap MS and application to environmental samples. , 2011, Environment international.

[104]  Xiangyu Tang,et al.  A review of colloid transport in fractured rocks , 2012, Journal of Mountain Science.

[105]  Jamie R Lead,et al.  Nanomaterials in the environment: Behavior, fate, bioavailability, and effects , 2008, Environmental toxicology and chemistry.

[106]  Arturo A Keller,et al.  Influence of natural organic matter on the aggregation and deposition of titanium dioxide nanoparticles. , 2011, Journal of hazardous materials.

[107]  Yu Sik Hwang,et al.  UV irradiation and humic acid mediate aggregation of aqueous fullerene (nC₆₀) nanoparticles. , 2010, Environmental science & technology.

[108]  Andrew C. Johnson,et al.  Nano silver and nano zinc-oxide in surface waters – Exposure estimation for Europe at high spatial and temporal resolution , 2015, Environmental pollution.

[109]  R. Hurt,et al.  Ion release kinetics and particle persistence in aqueous nano-silver colloids. , 2010, Environmental science & technology.

[110]  Yongsheng Chen,et al.  Temperature Effect on the Aggregation Kinetics of CeO2 Nanoparticles in Monovalent and Divalent Electrolytes , 2012 .

[111]  O. Atteia,et al.  Particle size distributions in waters from a karstic aquifer: from particles to colloids , 1997 .

[112]  F. Cataldo,et al.  A GREEN SYNTHESIS OF COLLOIDAL SILVER NANOPARTICLES AND THEIR REACTION WITH OZONE , 2013 .

[113]  M. Pumera,et al.  Fate of silver nanoparticles in natural waters; integrative use of conventional and electrochemical analytical techniques , 2014 .

[114]  Tanapon Phenrat,et al.  Estimating attachment of nano- and submicrometer-particles coated with organic macromolecules in porous media: development of an empirical model. , 2010, Environmental science & technology.

[115]  Jérôme Labille,et al.  Concurrent aggregation and deposition of TiO2 nanoparticles in a sandy porous media. , 2010, Environmental science & technology.

[116]  Holger Moch,et al.  Nanoparticle cytotoxicity depends on intracellular solubility: comparison of stabilized copper metal and degradable copper oxide nanoparticles. , 2010, Toxicology letters.

[117]  B. Nichols,et al.  Effect of ozone oxidation on single-walled carbon nanotubes. , 2006, The journal of physical chemistry. B.

[118]  M. Tomson,et al.  Study of C_60 transport in porous media and the effect of sorbed C_60 on naphthalene transport , 2005 .

[119]  Thomas Kuhlbusch,et al.  Fate and Bioavailability of Engineered Nanoparticles in Soils: A Review , 2014 .

[120]  G. Schaumann,et al.  Disaggregation of silver nanoparticle homoaggregates in a river water matrix. , 2015, The Science of the total environment.

[121]  D. Barceló,et al.  Nanoparticle tracking analysis characterisation and parts-per-quadrillion determination of fullerenes in river samples from Barcelona catchment area , 2015, Analytical and Bioanalytical Chemistry.

[122]  C. Prasse,et al.  Translocation of Sb and Ti in an undisturbed floodplain soil after application of Sb2O3 and TiO2 nanoparticles to the surface. , 2011, Journal of environmental monitoring : JEM.

[123]  Mohammed Baalousha,et al.  Aggregation and disaggregation of iron oxide nanoparticles: Influence of particle concentration, pH and natural organic matter. , 2009, The Science of the total environment.

[124]  L. Chekli,et al.  Aggregation behaviour of engineered nanoparticles in natural waters: characterising aggregate structure using on-line laser light scattering. , 2015, Journal of hazardous materials.

[125]  T. Tolaymat,et al.  The impact of stabilization mechanism on the aggregation kinetics of silver nanoparticles. , 2012, The Science of the total environment.

[126]  Yongkui Yang,et al.  pH, ionic strength and dissolved organic matter alter aggregation of fullerene C60 nanoparticles suspensions in wastewater. , 2013, Journal of hazardous materials.

[127]  J. Kelly,et al.  Chemical interactions between Nano-ZnO and Nano-TiO2 in a natural aqueous medium. , 2014, Environmental science & technology.

[128]  B. Derjaguin,et al.  Theory of the stability of strongly charged lyophobic sols and of the adhesion of strongly charged particles in solutions of electrolytes , 1993 .

[129]  K. Chen,et al.  Aggregation kinetics of citrate and polyvinylpyrrolidone coated silver nanoparticles in monovalent and divalent electrolyte solutions. , 2011, Environmental science & technology.

[130]  Nathalie Tufenkji,et al.  Aggregation and deposition of engineered nanomaterials in aquatic environments: role of physicochemical interactions. , 2010, Environmental science & technology.

[131]  D. Grasso,et al.  Prediction of colloid detachment in a model porous media: Thermodynamics , 1999 .

[132]  Debra R Reinhart,et al.  Emerging contaminants: nanomaterial fate in landfills. , 2010, Waste management.

[133]  J. McCarthy,et al.  Effects of precipitation events on colloids in a karst aquifer , 2002 .

[134]  Khara D Grieger,et al.  Environmental benefits and risks of zero-valent iron nanoparticles (nZVI) for in situ remediation: risk mitigation or trade-off? , 2010, Journal of contaminant hydrology.

[135]  G. Pacey,et al.  Interaction of ozone with gold nanoparticles. , 2005, Talanta: The International Journal of Pure and Applied Analytical Chemistry.

[136]  D. Barceló,et al.  First determination of C60 and C70 fullerenes and N-methylfulleropyrrolidine C60 on the suspended material of wastewater effluents by liquid chromatography hybrid quadrupole linear ion trap tandem mass spectrometry , 2010 .

[137]  Colin R. Janssen,et al.  Aggregation and ecotoxicity of CeO₂ nanoparticles in synthetic and natural waters with variable pH, organic matter concentration and ionic strength. , 2011, Environmental pollution.

[138]  Samuel W. Bennett,et al.  Stability, metal leaching, photoactivity and toxicity in freshwater systems of commercial single wall carbon nanotubes. , 2013, Water research.

[139]  Stefan Seeger,et al.  Industrial production quantities and uses of ten engineered nanomaterials in Europe and the world , 2012, Journal of Nanoparticle Research.

[140]  N. Tufenkji,et al.  Transport of two metal oxide nanoparticles in saturated granular porous media: role of water chemistry and particle coating. , 2012, Water research.

[141]  M. Sillanpää,et al.  Aggregation and deposition of engineered TiO2 nanoparticles in natural fresh and brackish waters , 2011 .

[142]  N. Tufenkji,et al.  Mobility of functionalized quantum dots and a model polystyrene nanoparticle in saturated quartz sand and loamy sand. , 2012, Environmental science & technology.

[143]  Michael F. Hochella,et al.  Characterization and environmental implications of nano- and larger TiO(2) particles in sewage sludge, and soils amended with sewage sludge. , 2012, Journal of environmental monitoring : JEM.

[144]  Miao Zhu,et al.  The effect of humic acid on the aggregation of titanium dioxide nanoparticles under different pH and ionic strengths. , 2014, The Science of the total environment.

[145]  P. Lipp,et al.  Characterization of nanoparticulate fouling and breakthrough during low-pressure membrane filtration , 2009 .

[146]  A. Boxall,et al.  Detection and characterization of engineered nanoparticles in food and the environment , 2008, Food additives & contaminants. Part A, Chemistry, analysis, control, exposure & risk assessment.

[147]  Konrad Hungerbühler,et al.  Addressing the complexity of water chemistry in environmental fate modeling for engineered nanoparticles. , 2015, The Science of the total environment.

[148]  V. Hackley,et al.  Persistence of singly dispersed silver nanoparticles in natural freshwaters, synthetic seawater, and simulated estuarine waters. , 2011, The Science of the total environment.

[149]  Kirk J. Ziegler,et al.  High mobility of SDBS-dispersed single-walled carbon nanotubes in saturated and unsaturated porous media. , 2011, Journal of hazardous materials.

[150]  Michel Boissière,et al.  潜在的な発光および磁気2モード画像化プローブとしてのポリオール合成Zn0.9Mn0.1ナノ粒子:合成,特性評価,および毒性研究 , 2012 .

[151]  M A Kiser,et al.  Titanium nanomaterial removal and release from wastewater treatment plants. , 2009, Environmental science & technology.

[152]  M. Elimelech,et al.  The "shadow effect" in colloid transport and deposition dynamics in granular porous media: measurements and mechanisms. , 2000 .

[153]  Michael V. Liga,et al.  Antimicrobial nanomaterials for water disinfection and microbial control: potential applications and implications. , 2008, Water research.

[154]  N. Mchedlov-Petrossyan,et al.  Colloidal dispersions of fullerene C60in water: some properties and regularities of coagulation by electrolytes , 1997 .

[155]  Jae-Hong Kim,et al.  Dispersion of C(60) in natural water and removal by conventional drinking water treatment processes. , 2009, Water research.

[156]  J. Yi,et al.  Removal characteristics of engineered nanoparticles by activated sludge. , 2013, Chemosphere.

[157]  J. Sharp Fractured Rock Hydrogeology , 2014 .

[158]  L. Sigg,et al.  Colloidal stability of carbonate-coated silver nanoparticles in synthetic and natural freshwater. , 2012, Environmental science & technology.

[159]  L. Cang,et al.  Laboratory assessment of the mobility of water-dispersed engineered nanoparticles in a red soil (Ultisol) , 2014 .

[160]  Konrad Hungerbühler,et al.  Critical assessment of models for transport of engineered nanoparticles in saturated porous media. , 2014, Environmental science & technology.

[161]  Dik van de Meent,et al.  Natural colloids are the dominant factor in the sedimentation of nanoparticles , 2012, Environmental toxicology and chemistry.

[162]  J. Priem,et al.  Nano-silver in drinking water and drinking water sources: stability and influences on disinfection by-product formation , 2014, Environmental Science and Pollution Research.

[163]  Rajender S. Varma,et al.  Fate of engineered nanoparticles: Implications in the environment , 2015 .

[164]  Flemming R Cassee,et al.  Exposure, Health and Ecological Effects Review of Engineered Nanoscale Cerium and Cerium Oxide Associated with its Use as a Fuel Additive , 2011, Critical reviews in toxicology.

[165]  S. Laumann,et al.  Carbonate minerals in porous media decrease mobility of polyacrylic acid modified zero-valent iron nanoparticles used for groundwater remediation. , 2013, Environmental pollution.

[166]  G. G. Leppard,et al.  Characterization of aquatic colloids and macromolecules. 1. Structure and behavior of colloidal material. , 1995, Environmental science & technology.

[167]  R. Sierra-Alvarez,et al.  Removal of TiO2 nanoparticles by porous media: Effect of filtration media and water chemistry , 2013 .

[168]  Thilo Hofmann,et al.  Commercial titanium dioxide nanoparticles in both natural and synthetic water: comprehensive multidimensional testing and prediction of aggregation behavior. , 2011, Environmental science & technology.

[169]  Menachem Elimelech,et al.  Transport of single-walled carbon nanotubes in porous media: filtration mechanisms and reversibility. , 2008, Environmental science & technology.

[170]  Ramazan Asmatulu,et al.  Chapter 1 – Nanotechnology emerging trends, markets, and concerns , 2013 .

[171]  Benjamin Gilbert,et al.  Comparison of the mechanism of toxicity of zinc oxide and cerium oxide nanoparticles based on dissolution and oxidative stress properties. , 2008, ACS nano.

[172]  Pratim Biswas,et al.  Characterization of size, surface charge, and agglomeration state of nanoparticle dispersions for toxicological studies , 2009 .

[173]  G. Chow,et al.  Carboxyl group (–CO2H) functionalized ferrimagnetic iron oxide nanoparticles for potential bio-applications , 2004 .

[174]  Fadri Gottschalk,et al.  Environmental concentrations of engineered nanomaterials: review of modeling and analytical studies. , 2013, Environmental pollution.

[176]  T. Hofmann,et al.  Nanoparticles: structure, properties, preparation and behaviour in environmental media , 2008, Ecotoxicology.

[177]  Xuan Li,et al.  Dissolution-accompanied aggregation kinetics of silver nanoparticles. , 2010, Langmuir : the ACS journal of surfaces and colloids.

[178]  Albert A Koelmans,et al.  Spatially explicit fate modelling of nanomaterials in natural waters. , 2015, Water research.

[179]  Ijung Kim,et al.  Silver nanoparticle removal from drinking water: Flocculation/sedimentation or filtration? , 2013 .

[180]  Kiril Hristovski,et al.  Biosorption of nanoparticles to heterotrophic wastewater biomass. , 2010, Water research.

[181]  S. Stoll,et al.  Towards a better understanding on agglomeration mechanisms and thermodynamic properties of TiO₂ nanoparticles interacting with natural organic matter. , 2015, Water research.

[182]  G. Sorial,et al.  Transport of nanoparticles with dispersant through biofilm coated drinking water sand filters. , 2013, Water research.

[183]  K Hungerbühler,et al.  Characterization of silver release from commercially available functional (nano)textiles. , 2012, Chemosphere.

[184]  Kiril Hristovski,et al.  Stability of commercial metal oxide nanoparticles in water. , 2008, Water research.

[185]  G. Gicheva,et al.  Removal of citrate-coated silver nanoparticles from aqueous dispersions by using activated carbon , 2013 .

[186]  Nathalie Tufenkji,et al.  Correlation equation for predicting single-collector efficiency in physicochemical filtration in saturated porous media. , 2004, Environmental science & technology.

[187]  R. T. Yang,et al.  Adsorbents: Fundamentals and Applications , 2003 .

[188]  Yan Liang,et al.  Sensitivity of the transport and retention of stabilized silver nanoparticles to physicochemical factors. , 2013, Water research.

[189]  T. Hofmann,et al.  Release of TiO2 nanoparticles from sunscreens into surface waters: a one-year survey at the old Danube recreational Lake. , 2014, Environmental science & technology.

[190]  S. Walker,et al.  Transport and retention of fullerene nanoparticles in natural soils. , 2008, Journal of environmental quality.

[191]  Yan Jin,et al.  Coupled factors influencing detachment of nano- and micro-sized particles from primary minima. , 2012, Journal of contaminant hydrology.

[192]  J. Zhuang,et al.  Retention and transport of amphiphilic colloids under unsaturated flow conditions: effect of particle size and surface property. , 2005, Environmental science & technology.

[193]  J. Hsu,et al.  An experimental study of the stability of TiO2 particles in organic–water mixtures , 2000 .

[194]  B. Tripathi,et al.  Interaction of engineered nanoparticles with various components of the environment and possible strategies for their risk assessment. , 2011, Chemosphere.

[195]  W. Kreyling,et al.  PVP-coated, negatively charged silver nanoparticles: A multi-center study of their physicochemical characteristics, cell culture and in vivo experiments , 2014, Beilstein journal of nanotechnology.

[196]  Xuejun Wang,et al.  Aggregation kinetics of SDBS-dispersed carbon nanotubes in different aqueous suspensions , 2012 .

[197]  M Boller,et al.  Synthetic TiO2 nanoparticle emission from exterior facades into the aquatic environment. , 2008, Environmental pollution.

[198]  Yan Jin,et al.  Kinetics of coupled primary- and secondary-minimum deposition of colloids under unfavorable chemical conditions. , 2007, Environmental science & technology.

[199]  S. Bachilo,et al.  Synthesis and Characterization of the “Missing” Oxide of C60: [5,6]-Open C60O , 2001 .

[200]  D. Sabatini,et al.  Transport and retention of fullerene (nC60) nanoparticles in unsaturated porous media: effects of solution chemistry and solid phase coating. , 2012, Journal of contaminant hydrology.

[201]  Frank von der Kammer,et al.  Behavior of Ag nanoparticles in soil: effects of particle surface coating, aging and sewage sludge amendment. , 2013, Environmental pollution.

[202]  Mitchell D. Zimmerman,et al.  Lanthanide‐Labeled Clay: A New Method for Tracing Sediment Transport in Karst , 1998 .

[203]  Nanna B. Hartmann,et al.  Ecotoxicity of engineered nanoparticles to aquatic invertebrates: a brief review and recommendations for future toxicity testing , 2008, Ecotoxicology.

[204]  Thomas A. J. Kuhlbusch,et al.  A Review of the Properties and Processes Determining the Fate of Engineered Nanomaterials in the Aquatic Environment , 2015 .

[205]  S. A. Pisarev,et al.  Interaction of silver nanoparticles with ozone in aqueous solution , 2011 .

[206]  Menachem Elimelech,et al.  Aggregation kinetics of multiwalled carbon nanotubes in aquatic systems: measurements and environmental implications. , 2008, Environmental science & technology.

[207]  E. Moreno-Ostos,et al.  The residence time of river water in reservoirs , 2006 .

[208]  Jae-Hong Kim,et al.  Reaction of water-stable C60 aggregates with ozone. , 2007, Environmental science & technology.

[209]  Paul Westerhoff,et al.  Fate and biological effects of silver, titanium dioxide, and C60 (fullerene) nanomaterials during simulated wastewater treatment processes. , 2012, Journal of hazardous materials.

[210]  Wei Jiang,et al.  Colloidal stability of magnetic iron oxide nanoparticles: influence of natural organic matter and synthetic polyelectrolytes. , 2011, Langmuir : the ACS journal of surfaces and colloids.

[211]  Jae-Il Kim,et al.  Quantification of Aquatic Nano Particles after Different Steps of Bodensee Water Purification with Laser‐induced Breakdown Detection (LIBD) , 2001 .

[212]  Bernd Nowack,et al.  Behavior of TiO(2) released from Nano-TiO(2)-containing paint and comparison to pristine Nano-TiO(2). , 2014, Environmental science & technology.

[213]  Christoph Neukum,et al.  Transport of stabilized engineered silver (Ag) nanoparticles through porous sandstones. , 2014, Journal of contaminant hydrology.

[214]  G. Owens,et al.  Stability of titania nanoparticles in soil suspensions and transport in saturated homogeneous soil columns. , 2009, Environmental pollution.

[215]  Wei Chen,et al.  Transport of fullerene nanoparticles (nC60) in saturated sand and sandy soil: controlling factors and modeling. , 2012, Environmental science & technology.

[216]  Charles R. O'Melia,et al.  Water and waste water filtration. Concepts and applications , 1971 .

[217]  P. Reimus,et al.  Transport and Attenuation of Carboxylate‐Modified Latex Microspheres in Fractured Rock Laboratory and Field Tracer Tests , 1999 .

[218]  N. Musee,et al.  Fate and behavior of ZnO- and Ag-engineered nanoparticles and a bacterial viability assessment in a simulated wastewater treatment plant , 2014, Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering.

[219]  Kun Yang,et al.  Different stabilities of multiwalled carbon nanotubes in fresh surface water samples. , 2010, Environmental pollution.

[220]  Thilini P. Rupasinghe,et al.  Aggregation and dissolution of 4 nm ZnO nanoparticles in aqueous environments: influence of pH, ionic strength, size, and adsorption of humic acid. , 2011, Langmuir : the ACS journal of surfaces and colloids.

[221]  Jae-Hong Kim,et al.  Natural organic matter (NOM) adsorption to multi-walled carbon nanotubes: effect of NOM characteristics and water quality parameters. , 2008, Environmental science & technology.

[222]  J. Wan,et al.  Release of quantum dot nanoparticles in porous media: role of cation exchange and aging time. , 2013, Environmental science & technology.

[223]  Elisabeth Müller,et al.  Removal of oxide nanoparticles in a model wastewater treatment plant: influence of agglomeration and surfactants on clearing efficiency. , 2008, Environmental science & technology.

[224]  S. Bachilo,et al.  C60O3, a fullerene ozonide: synthesis and dissociation to C60O and O2 , 2000 .

[225]  Qasim Chaudhry,et al.  Review of the Risks Posed to Drinking Water by Man-Made Nanoparticels , 2012 .

[226]  Kiril Hristovski,et al.  Occurrence and removal of titanium at full scale wastewater treatment plants: implications for TiO2 nanomaterials. , 2011, Journal of environmental monitoring : JEM.

[227]  B. Sleep,et al.  Colloid transport in dolomite rock fractures: effects of fracture characteristics, specific discharge, and ionic strength. , 2012, Environmental science & technology.

[228]  Lijuan Zhao,et al.  Transport of Zn in a sandy loam soil treated with ZnO NPs and uptake by corn plants: Electron microprobe and confocal microscopy studies , 2012 .

[229]  M. Wiesner,et al.  Transport and retention of colloidal aggregates of C60 in porous media: effects of organic macromolecules, ionic composition, and preparation method. , 2007, Environmental science & technology.

[230]  D. Bouchard,et al.  Effects of humic and fulvic acids on aggregation of aqu/nC60 nanoparticles. , 2013, Water research.

[231]  D. Bouchard,et al.  Colloidal properties of aqueous fullerenes: isoelectric points and aggregation kinetics of C60 and C60 derivatives. , 2009, Environmental science & technology.

[232]  Colin R. Janssen,et al.  Effect of natural organic matter on cerium dioxide nanoparticles settling in model fresh water. , 2010, Chemosphere.

[233]  Menachem Elimelech,et al.  Single-walled carbon nanotubes exhibit limited transport in soil columns. , 2009, Environmental science & technology.

[234]  Tomihisa Iwasaki,et al.  Some Notes on Sand Filtration , 1937 .

[235]  D. Sabatini,et al.  Retention and release of TiO2 nanoparticles in unsaturated porous media during dynamic saturation change. , 2010, Journal of contaminant hydrology.

[236]  Arturo A. Keller,et al.  Global life cycle releases of engineered nanomaterials , 2013, Journal of Nanoparticle Research.

[237]  Felipe Fossati Reichert,et al.  Prevalence and associated factors with sunscreen use in Southern Brazil: A population-based study. , 2007, Journal of the American Academy of Dermatology.

[238]  K. Matyjaszewski,et al.  Microbial bioavailability of covalently bound polymer coatings on model engineered nanomaterials. , 2011, Environmental science & technology.

[239]  C. Neal,et al.  Titanium in UK rural, agricultural and urban/industrial rivers: geogenic and anthropogenic colloidal/sub-colloidal sources and the significance of within-river retention. , 2011, The Science of the total environment.

[240]  D. Bouchard,et al.  Fullerene nanoparticles exhibit greater retention in freshwater sediment than in model porous media. , 2012, Water research.

[241]  Michael Stintz,et al.  Characterization of Nanoparticle Release from Surface Coatings by the Simulation of a Sanding Process , 2010, The Annals of occupational hygiene.

[242]  Albert A Koelmans,et al.  Analysis of engineered nanomaterials in complex matrices (environment and biota): General considerations and conceptual case studies , 2012, Environmental toxicology and chemistry.

[243]  Kurt D. Pennell,et al.  Investigation of the transport and deposition of fullerene (C60) nanoparticles in quartz sands under varying flow conditions. , 2008, Environmental science & technology.

[244]  Hongtao Wang,et al.  Stability and aggregation of metal oxide nanoparticles in natural aqueous matrices. , 2010, Environmental science & technology.

[245]  Kiril Hristovski,et al.  Metal and nanoparticle occurrence in biosolid-amended soils. , 2014, The Science of the total environment.

[246]  P. Baveye,et al.  Influence of ionic strength, pH, and cation valence on aggregation kinetics of titanium dioxide nanoparticles. , 2009, Environmental science & technology.

[247]  Yang-hsin Shih,et al.  The effect of cations on the aggregation of commercial ZnO nanoparticle suspension , 2012, Journal of Nanoparticle Research.

[248]  Fikret Kačaroğlu,et al.  Review of Groundwater Pollution and Protection in Karst Areas , 1999 .

[249]  R. Kookana,et al.  Behaviour of fullerenes (C60) in the terrestrial environment: potential release from biosolids-amended soils. , 2013, Journal of hazardous materials.

[250]  A. Siripinyanond,et al.  Particle size characterization of titanium dioxide in sunscreen products using sedimentation field-flow fractionation–inductively coupled plasma–mass spectrometry , 2011, Analytical and bioanalytical chemistry.

[251]  Karluss Thomas,et al.  Research strategies for safety evaluation of nanomaterials, part V: role of dissolution in biological fate and effects of nanoscale particles. , 2006, Toxicological sciences : an official journal of the Society of Toxicology.

[252]  Wei Chen,et al.  Transport of graphene oxide nanoparticles in saturated sandy soil. , 2014, Environmental science. Processes & impacts.

[253]  N. Weisbrod,et al.  A comparison of clay colloid and artificial microsphere transport in natural discrete fractures. , 2008, Journal of colloid and interface science.

[254]  Tetsu K. Tokunaga,et al.  Kinetic stability of hematite nanoparticles: the effect of particle sizes , 2008 .

[255]  Yan Jin,et al.  Retention and transport of silica nanoparticles in saturated porous media: effect of concentration and particle size. , 2012, Environmental science & technology.

[256]  I. Godínez,et al.  Aggregation and transport of nano-TiO2 in saturated porous media: effects of pH, surfactants and flow velocity. , 2011, Water research.

[257]  B. Nowack,et al.  Review of nanomaterial aging and transformations through the life cycle of nano-enhanced products. , 2015, Environment international.

[258]  Xiaobo Chen,et al.  Titanium dioxide nanomaterials: synthesis, properties, modifications, and applications. , 2007, Chemical reviews.

[259]  Armand Masion,et al.  Structural degradation at the surface of a TiO(2)-based nanomaterial used in cosmetics. , 2010, Environmental science & technology.

[260]  Cailu Xu,et al.  Adsorption of cadmium(II) from aqueous solution by surface oxidized carbon nanotubes , 2003 .

[261]  Peng Wang,et al.  Natural and engineered nano and colloidal transport: role of zeta potential in prediction of particle deposition. , 2009, Langmuir : the ACS journal of surfaces and colloids.

[262]  Menachem Elimelech,et al.  Aggregation and deposition kinetics of fullerene (C60) nanoparticles. , 2006, Langmuir : the ACS journal of surfaces and colloids.

[263]  E. Verwey,et al.  Theory of the stability of lyophobic colloids. , 1955, The Journal of physical and colloid chemistry.

[264]  Sushil K. Gupta Modern Hydrology and Sustainable Water Development , 2010 .

[265]  Nico Goldscheider,et al.  Solute and Colloid Transport in Karst Conduits under Low‐ and High‐Flow Conditions , 2008, Ground water.

[266]  Fadri Gottschalk,et al.  The release of engineered nanomaterials to the environment. , 2011, Journal of environmental monitoring : JEM.