Aggregation and disaggregation of iron oxide nanoparticles: Influence of particle concentration, pH and natural organic matter.
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[1] Xuewu Liu,et al. The solubility of iron hydroxide in sodium chloride solutions , 1999 .
[2] J. Lead,et al. Characterization of natural aquatic colloids (<5 nm) by flow-field flow fractionation and atomic force microscopy. , 2007, Environmental science & technology.
[3] H. Ohshima. Electrophoresis of soft particles , 1995 .
[4] Joseph J. Pignatello,et al. Mechanisms of Slow Sorption of Organic Chemicals to Natural Particles , 1996 .
[5] M. Elimelech,et al. Surface interaction potentials , 1995 .
[6] Bruce E. Logan,et al. Collision frequencies of microbial aggregates with small particles by differential sedimentation. , 1997 .
[7] Jamie R. Lead,et al. Aquatic Colloids and Nanoparticles: Current Knowledge and Future Trends , 2006 .
[8] Xiao-yan Li,et al. Permeability of fractal aggregates. , 2001, Water research.
[9] A. Franchi,et al. Effects of natural organic matter and solution chemistry on the deposition and reentrainment of colloids in porous media. , 2003, Environmental science & technology.
[10] J. Bayona,et al. Langmuir-Derived Model for Diffusion- and Reaction-Limited Adsorption of Organic Compounds on Fractal Aggregates , 1997 .
[11] D. Sparks,et al. Kinetic controls on Cu and Pb sorption by ferrihydrite. , 2001, Environmental science & technology.
[12] E. Pefferkorn. The role of polyelectrolytes in the stabilisation and destabilisation of colloids , 1995 .
[13] Charles R. O'Melia,et al. ES Features: Aquasols: the behavior of small particles in aquatic systems , 1980 .
[14] Jae-Hong Kim,et al. Natural organic matter stabilizes carbon nanotubes in the aqueous phase. , 2007, Environmental science & technology.
[15] Richard D Handy,et al. Toxicity of single walled carbon nanotubes to rainbow trout, (Oncorhynchus mykiss): respiratory toxicity, organ pathologies, and other physiological effects. , 2007, Aquatic toxicology.
[16] Krzysztof Matyjaszewski,et al. Ionic strength and composition affect the mobility of surface-modified Fe0 nanoparticles in water-saturated sand columns. , 2008, Environmental science & technology.
[17] Navid B. Saleh,et al. Stabilization of aqueous nanoscale zerovalent iron dispersions by anionic polyelectrolytes: adsorbed anionic polyelectrolyte layer properties and their effect on aggregation and sedimentation , 2008 .
[18] M. Baalousha,et al. Size-based speciation of natural colloidal particles by flow field flow fractionation, inductively coupled plasma-mass spectroscopy, and transmission electron microscopy/X-ray energy dispersive spectroscopy: colloids-trace element interaction. , 2006, Environmental science & technology.
[19] Kevin Kendall,et al. Aggregation and surface properties of iron oxide nanoparticles: Influence of ph and natural organic matter , 2008, Environmental toxicology and chemistry.
[20] Clive J Roberts,et al. Quantifying the dimensions of nanoscale organic surface layers in natural waters. , 2007, Environmental science & technology.
[21] Werner Stumm,et al. Particle transport in lakes: models and measurements , 1989 .
[22] Navid B. Saleh,et al. Aggregation and sedimentation of aqueous nanoscale zerovalent iron dispersions. , 2007, Environmental science & technology.
[23] Pelton,et al. Micromechanics: A New Approach to Studying the Strength and Breakup of Flocs , 1996, Journal of colloid and interface science.
[24] 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.
[25] B Jefferson,et al. A review of floc strength and breakage. , 2005, Water research.
[26] Ronald J. Gibbs,et al. Estuarine flocs: Their size, settling velocity and density , 1985 .
[27] H. Walker,et al. Stability of particle flocs upon addition of natural organic matter under quiescent conditions. , 2001, Water research.
[28] Olli Dahl,et al. Environmental implications of aggregation phenomena: Current understanding , 2006 .
[29] J. Duran,et al. Interfacial and rheological properties of humic acid/hematite suspensions. , 2003, Journal of colloid and interface science.
[30] J. Giddings,et al. Field-flow fractionation handbook , 2000 .
[31] 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.
[32] T. Hofmann,et al. Nanoparticles: structure, properties, preparation and behaviour in environmental media , 2008, Ecotoxicology.
[33] J. Lead,et al. Characterization of freshwater natural aquatic colloids by atomic force microscopy (AFM). , 2005, Environmental science & technology.
[34] E. Giffaut,et al. Physico-chemical characterization of the colloidal hematite/water interface: experimentation and modelling , 2002 .
[35] N. Wagner,et al. Electrosteric Stabilization of Colloidal Dispersions , 2002 .
[36] Kevin J. Wilkinson,et al. Different roles of pedogenic fulvic acids and aquagenic biopolymers on colloid aggregation and stability in freshwaters , 1997 .
[37] J. Giddings,et al. Determination of molecular weight distributions of fulvic and humic acids using flow field-flow fractionation. , 1987, Environmental science & technology.
[38] E. Tipping,et al. The effect of adsorbed humic substances on the colloid stability of haematite particles , 1982 .
[39] E. Pefferkorn,et al. Polymer Induced Stabilization of Colloids Mechanism and Kinetics , 1993 .
[40] Jacques Buffle,et al. Submicron particles in the rhine river—I. Physico-chemical characterization , 1994 .
[41] H. Ohshima. Electrophoretic mobility of soft particles , 1995 .
[42] J. J. Morgan,et al. Aquatic Chemistry: Chemical Equilibria and Rates in Natural Waters , 1970 .
[43] B. Nowack,et al. Occurrence, behavior and effects of nanoparticles in the environment. , 2007, Environmental pollution.
[44] Pedro J J Alvarez,et al. Comparative eco-toxicity of nanoscale TiO2, SiO2, and ZnO water suspensions. , 2006, Water research.
[45] Qasim Chaudhry,et al. Engineered nanomaterials in soils and water: how do they behave and could they pose a risk to human health? , 2007, Nanomedicine.
[46] Serge Stoll,et al. A Generalized Description of Aquatic Colloidal Interactions: The Three-colloidal Component Approach , 1998 .
[47] P. Warwick,et al. Application of the Schulze–Hardy rule to haematite and haematite/humate colloid stability , 1999 .
[48] J. Buffle,et al. Kinetics of hematite aggregation by polyacrylic acid: effect of polymer molecular weights , 1997 .
[49] J. Raper,et al. Effect of fulvic acid adsorption on the aggregation kinetics and structure of hematite particles , 1992 .