Environmental transformations and ecological effects of iron-based nanoparticles.
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Cheng Lei | Daniel C W Tsang | D. Lin | Cheng Lei | Yuqing Sun | Daohui Lin | Yuqing Sun
[1] Wei-xian Zhang,et al. Transformation and composition evolution of nanoscale zero valent iron (nZVI) synthesized by borohydride reduction in static water. , 2015, Chemosphere.
[2] Pedro J J Alvarez,et al. Adsorbed polymer and NOM limits adhesion and toxicity of nano scale zerovalent iron to E. coli. , 2010, Environmental science & technology.
[3] F. Guyot,et al. Extracellular Iron Biomineralization by Photoautotrophic Iron-Oxidizing Bacteria , 2009, Applied and Environmental Microbiology.
[4] L. Hansson,et al. Altered behavior, physiology, and metabolism in fish exposed to polystyrene nanoparticles. , 2015, Environmental science & technology.
[5] T. Scott,et al. The effect of aqueous corrosion on the structure and reactivity of zero-valent iron nanoparticles , 2017 .
[6] Thomas Kuhlbusch,et al. Fate and Bioavailability of Engineered Nanoparticles in Soils: A Review , 2014 .
[7] M. Zhang,et al. Stimulation of Peanut Seedling Development and Growth by Zero-Valent Iron Nanoparticles at Low Concentrations , 2015, PloS one.
[8] T. Scott,et al. Nanoscale zero-valent iron: future prospects for an emerging water treatment technology. , 2012, Journal of hazardous materials.
[9] R. Sethi,et al. Nanoscale zerovalent iron particles for groundwater remediation: a review , 2014 .
[10] Rajender S. Varma,et al. Fate of engineered nanoparticles: Implications in the environment , 2015 .
[11] Feng Zhao,et al. The dual effects of carboxymethyl cellulose on the colloidal stability and toxicity of nanoscale zero-valent iron. , 2016, Chemosphere.
[12] Alfred B. Cunningham,et al. Dissimilatory Iron-Reducing Bacteria Can Influence the Reduction of Carbon Tetrachloride by Iron Metal , 2000 .
[13] M. Yao,et al. Use of zero-valent iron nanoparticles in inactivating microbes. , 2009, Water research.
[14] A Paul Alivisatos,et al. Vacancy coalescence during oxidation of iron nanoparticles. , 2007, Journal of the American Chemical Society.
[15] Xiaohong Guan,et al. Fate of As(V)-treated nano zero-valent iron: determination of arsenic desorption potential under varying environmental conditions by phosphate extraction. , 2012, Water research.
[16] Yongsheng Chen,et al. Alpha-Fe2O3 elicits diameter-dependent effects during exposure to an in vitro model of the human placenta , 2014, Cell Biology and Toxicology.
[17] J. Xiao,et al. Physiological effects of magnetite (Fe3O4) nanoparticles on perennial ryegrass (Lolium perenne L.) and pumpkin (Cucurbita mixta) plants , 2011, Nanotoxicology.
[18] Oxana V. Kharissova,et al. Iron-containing nanomaterials: synthesis, properties, and environmental applications , 2012 .
[19] H. Karlsson,et al. Size-dependent toxicity of metal oxide particles--a comparison between nano- and micrometer size. , 2009, Toxicology letters.
[20] P. Biswas,et al. Microbial reduction of Fe(III) in hematite nanoparticles by Geobacter sulfurreducens. , 2008, Environmental science & technology.
[21] Myung-Heui Woo,et al. Fe(0) nanoparticles for nitrate reduction: stability, reactivity, and transformation. , 2006, Environmental science & technology.
[22] U. Murty,et al. Comparative study of genotoxicity and tissue distribution of nano and micron sized iron oxide in rats after acute oral treatment. , 2013, Toxicology and applied pharmacology.
[23] Eakalak Khan,et al. Role of oxidative stress in inactivation of Escherichia coli BW25113 by nanoscale zero-valent iron. , 2016, The Science of the total environment.
[24] P. Stroeve,et al. Effects of magnetite nanoparticles on soybean chlorophyll. , 2013, Environmental science & technology.
[25] L. Juillerat-Jeanneret,et al. Evaluation of uptake and transport of cationic and anionic ultrasmall iron oxide nanoparticles by human colon cells , 2012, International journal of nanomedicine.
[26] Arturo A. Keller,et al. Toxicity of Nano-Zero Valent Iron to Freshwater and Marine Organisms , 2012, PloS one.
[27] Barbara Karn,et al. Nanotechnology and in Situ Remediation: A Review of the Benefits and Potential Risks , 2009, Environmental health perspectives.
[28] F. Tanwir,et al. In vitro toxicity of iron oxide nanoparticle: oxidative damages on Hep G2 cells. , 2015, Experimental and toxicologic pathology : official journal of the Gesellschaft fur Toxikologische Pathologie.
[29] Armand Masion,et al. Relation between the redox state of iron-based nanoparticles and their cytotoxicity toward Escherichia coli. , 2008, Environmental science & technology.
[30] R. Tilton,et al. Effect of kaolinite, silica fines and pH on transport of polymer-modified zero valent iron nano-particles in heterogeneous porous media. , 2012, Journal of colloid and interface science.
[31] 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.
[32] Morteza Mahmoudi,et al. Assessing the in vitro and in vivo toxicity of superparamagnetic iron oxide nanoparticles. , 2012, Chemical reviews.
[33] B. Nowack,et al. Review of nanomaterial aging and transformations through the life cycle of nano-enhanced products. , 2015, Environment international.
[34] Ji-won Yang,et al. Magnetophoretic separation of microalgae: the role of nanoparticles and polymer binder in harvesting biofuel , 2014 .
[35] Kelvin B. Gregory,et al. Impact of nanoscale zero valent iron on geochemistry and microbial populations in trichloroethylene contaminated aquifer materials. , 2010, Environmental science & technology.
[36] Yen-Ping Peng,et al. Nano zerovalent iron particles induce pulmonary and cardiovascular toxicity in an in vitro human co-culture model , 2016, Nanotoxicology.
[37] R. Naidu,et al. Functional clay supported bimetallic nZVI/Pd nanoparticles used for removal of methyl orange from aqueous solution. , 2013, Journal of hazardous materials.
[38] Robert N Grass,et al. In vitro cytotoxicity of oxide nanoparticles: comparison to asbestos, silica, and the effect of particle solubility. , 2006, Environmental science & technology.
[39] K. Matyjaszewski,et al. Microbial bioavailability of covalently bound polymer coatings on model engineered nanomaterials. , 2011, Environmental science & technology.
[40] J. Fredrickson,et al. Kinetic analysis of the bacterial reduction of goethite. , 2001, Environmental science & technology.
[41] Yan Wu,et al. Biological responses of Gram-positive and Gram-negative bacteria to nZVI (Fe0), Fe2+ and Fe3+ , 2013 .
[42] R D Tyagi,et al. Engineered nanoparticles in wastewater and wastewater sludge--evidence and impacts. , 2010, Waste management.
[43] L. Abriola,et al. Aqueous Aggregation Behavior of Engineered Superparamagnetic Iron Oxide Nanoparticles: Effects of Oxidative Surface Aging. , 2016, Environmental science & technology.
[44] G. Lowry,et al. Effect of particle age (Fe0 content) and solution pH on NZVI reactivity: H2 evolution and TCE dechlorination. , 2006, Environmental science & technology.
[45] T. Lim,et al. Aging characteristics and reactivity of two types of nanoscale zero-valent iron particles (FeBH and FeH2) in nitrate reduction , 2012 .
[46] A. Fullana,et al. Heavy metal release due to aging effect during zero valent iron nanoparticles remediation. , 2015, Water research.
[47] Pedro J J Alvarez,et al. Effect of natural organic matter on toxicity and reactivity of nano-scale zero-valent iron. , 2011, Water research.
[48] T. Scott,et al. Synthesis and characterization of kaolinite-supported zero-valent iron nanoparticles and their application for the removal of aqueous Cu2+ and Co2+ ions , 2009 .
[49] B. Pan,et al. Formation of lepidocrocite (γ-FeOOH) from oxidation of nanoscale zero-valent iron (nZVI) in oxygenated water , 2014 .
[50] Chung-Min Liao,et al. In situ remediation-released zero-valent iron nanoparticles impair soil ecosystems health: A C. elegans biomarker-based risk assessment. , 2016, Journal of hazardous materials.
[51] Debashis Chatterjee,et al. Montmorillonite-supported nanoscale zero-valent iron for removal of arsenic from aqueous solution: Kinetics and mechanism , 2014 .
[52] G. Schaumann,et al. Interactions of dissolved organic matter with natural and engineered inorganic colloids: a review. , 2014, Environmental science & technology.
[53] Geoffrey R Mitchell,et al. Nanoscale zerovalent iron alters soil bacterial community structure and inhibits chloroaromatic biodegradation potential in Aroclor 1242-contaminated soil. , 2013, Environmental pollution.
[54] Pei-Jen Chen,et al. Toxicity assessments of nanoscale zerovalent iron and its oxidation products in medaka (Oryzias latipes) fish. , 2011, Marine pollution bulletin.
[55] M. Černík,et al. DDT degradation efficiency and ecotoxicological effects of two types of nano-sized zero-valent iron (nZVI) in water and soil. , 2016, Chemosphere.
[56] M. Mahmoudi,et al. Protein-nanoparticle interactions: opportunities and challenges. , 2011, Chemical reviews.
[57] Philippe Van Cappellen,et al. Microbial reduction of iron(III) oxyhydroxides: effects of mineral solubility and availability , 2004 .
[58] Ian P Thompson,et al. Tactic response of bacteria to zero-valent iron nanoparticles. , 2016, Environmental pollution.
[59] Jan Němeček,et al. Nanoscale zero-valent iron application for in situ reduction of hexavalent chromium and its effects on indigenous microorganism populations. , 2014, The Science of the total environment.
[60] Hongtao Wang,et al. Heteroaggregation of nanoparticles with biocolloids and geocolloids. , 2015, Advances in colloid and interface science.
[61] T. Waite,et al. Effect of Structural Transformation of Nanoparticulate Zero-Valent Iron on Generation of Reactive Oxygen Species. , 2016, Environmental science & technology.
[62] Ning Gu,et al. The impact of iron oxide magnetic nanoparticles on the soil bacterial community , 2011 .
[63] N. V. von Moos,et al. Oxidative stress induced by inorganic nanoparticles in bacteria and aquatic microalgae – state of the art and knowledge gaps , 2014, Nanotoxicology.
[64] Heechul Choi,et al. Arsenic(V) removal from groundwater using nano scale zero-valent iron as a colloidal reactive barrier material. , 2006, Environmental science & technology.
[65] 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.
[66] R. Azevedo,et al. Effects of γ-Fe2O3 nanoparticles on the survival and reproduction of Biomphalaria glabrata (Say, 1818) and their elimination from this benthic aquatic snail , 2016, Environmental Science and Pollution Research.
[67] S. Ammar,et al. Evaluation of iron oxide nanoparticle biocompatibility , 2011, International journal of nanomedicine.
[68] D. Lovley,et al. Humic substances as electron acceptors for microbial respiration , 1996, Nature.
[69] Xialin Hu,et al. Oxidation of nanoscale zero-valent iron under sufficient and limited dissolved oxygen: Influences on aggregation behaviors. , 2015, Chemosphere.
[70] David M. Cwiertny,et al. Influence of anionic cosolutes and pH on nanoscale zerovalent iron longevity: time scales and mechanisms of reactivity loss toward 1,1,1,2-tetrachloroethane and Cr(VI). , 2012, Environmental science & technology.
[71] Guibin Jiang,et al. Effects of waterborne nano-iron on medaka (Oryzias latipes): antioxidant enzymatic activity, lipid peroxidation and histopathology. , 2009, Ecotoxicology and environmental safety.
[72] L. Vékás,et al. Adsorption of organic acids on magnetite nanoparticles, pH-dependent colloidal stability and salt tolerance , 2013 .
[73] D. Altbir,et al. Nanoscale zero valent supported by Zeolite and Montmorillonite: Template effect of the removal of lead ion from an aqueous solution. , 2016, Journal of hazardous materials.
[74] Pedro J J Alvarez,et al. Effects of nano-scale zero-valent iron particles on a mixed culture dechlorinating trichloroethylene. , 2010, Bioresource technology.
[75] Jiangtao Wang,et al. Bioaccumulation of Fe2O3(magnetic) nanoparticles in Ceriodaphnia dubia. , 2012, Environmental pollution.
[76] J. Field,et al. Inorganic nanoparticles enhance the production of reactive oxygen species (ROS) during the autoxidation of L-3,4-dihydroxyphenylalanine (L-dopa). , 2011, Chemosphere.
[77] M. Zeng,et al. Reactive oxygen species-related activities of nano-iron metal and nano-iron oxides , 2014, Journal of food and drug analysis.
[78] K. Wu,et al. The zerovalent iron nanoparticle causes higher developmental toxicity than its oxidation products in early life stages of medaka fish. , 2013, Water research.
[79] Tanapon Phenrat,et al. Transport and deposition of polymer-modified Fe0 nanoparticles in 2-D heterogeneous porous media: effects of particle concentration, Fe0 content, and coatings. , 2010, Environmental science & technology.
[80] F. Liu,et al. Impact of Proteins on Aggregation Kinetics and Adsorption Ability of Hematite Nanoparticles in Aqueous Dispersions. , 2016, Environmental science & technology.
[81] Paul G Tratnyek,et al. Natural organic matter enhanced mobility of nano zerovalent iron. , 2009, Environmental science & technology.
[82] Izabela Jośko,et al. Manufactured Nanomaterials: The Connection Between Environmental Fate and Toxicity , 2013 .
[83] 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.
[84] Morteza Mahmoudi,et al. Toxicity evaluations of superparamagnetic iron oxide nanoparticles: cell "vision" versus physicochemical properties of nanoparticles. , 2011, ACS nano.
[85] J. Wong,et al. Comparison of bioleaching of heavy metals from sewage sludge using iron- and sulfur-oxidizing bacteria , 2003 .
[86] Fengchang Wu,et al. Fate and transport of engineered nanomaterials in the environment. , 2010, Journal of environmental quality.
[87] Yang Deng,et al. Phytotoxicity and uptake of nanoscale zero-valent iron (nZVI) by two plant species. , 2013, The Science of the total environment.
[88] Nastassja A. Lewinski,et al. Cytotoxicity of nanoparticles. , 2008, Small.
[89] T. Waite,et al. Depassivation of aged Fe 0 by divalent cations: correlation between contaminant degradation and surface complexation constants. , 2014, Environmental science & technology.
[90] D. R. Bond,et al. Shewanella secretes flavins that mediate extracellular electron transfer , 2008, Proceedings of the National Academy of Sciences.
[91] P. Alvarez,et al. Effect of bare and coated nanoscale zerovalent iron on tceA and vcrA gene expression in Dehalococcoides spp. , 2010, Environmental science & technology.
[92] Olivier Witschger,et al. Cytotoxicity and genotoxicity of nanosized and microsized titanium dioxide and iron oxide particles in Syrian hamster embryo cells. , 2012, The Annals of occupational hygiene.
[93] Yong Sik Ok,et al. Review on nano zerovalent iron (nZVI): From synthesis to environmental applications , 2016 .
[94] Hua Ai,et al. Applications and potential toxicity of magnetic iron oxide nanoparticles. , 2013, Small.
[95] Damià Barceló,et al. Considerations of Environmentally Relevant Test Conditions for Improved Evaluation of Ecological Hazards of Engineered Nanomaterials. , 2016, Environmental science & technology.
[96] Paul G Tratnyek,et al. Characterization and properties of metallic iron nanoparticles: spectroscopy, electrochemistry, and kinetics. , 2005, Environmental science & technology.
[97] Eakalak Khan,et al. Impact of nanoscale zero valent iron on bacteria is growth phase dependent. , 2016, Chemosphere.
[98] R. Nisbet,et al. Influence of Phytoplankton on Fate and Effects of Modified Zerovalent Iron Nanoparticles. , 2016, Environmental science & technology.
[99] Tibor Füzik,et al. Mitigation of Fe(0) nanoparticles toxicity to Trichosporon cutaneum by humic substances. , 2016, New biotechnology.
[100] Yongsheng Chen,et al. Size effects on adsorption of hematite nanoparticles on E. coli cells. , 2011, Environmental science & technology.
[101] Xinhua Xu,et al. Effects of co-existing ions and natural organic matter on removal of chromium (VI) from aqueous solution by nanoscale zero valent iron (nZVI)-Fe3O4 nanocomposites , 2013 .
[102] K. Weber,et al. Microorganisms pumping iron: anaerobic microbial iron oxidation and reduction , 2006, Nature Reviews Microbiology.
[103] E. Joner,et al. Effects of nano-sized zero-valent iron (nZVI) on DDT degradation in soil and its toxicity to collembola and ostracods. , 2013, Chemosphere.
[104] E. Joner,et al. Ecotoxicological effects on earthworms of fresh and aged nano-sized zero-valent iron (nZVI) in soil. , 2012, Chemosphere.
[105] M. Elimelech,et al. Influence of natural organic matter and ionic composition on the kinetics and structure of hematite colloid aggregation: implications to iron depletion in estuaries. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[106] R. Tilton,et al. Adsorbed polyelectrolyte coatings decrease Fe(0) nanoparticle reactivity with TCE in water: conceptual model and mechanisms. , 2009, Environmental science & technology.
[107] L. Ma,et al. Biocatalytic Synthesis Pathways, Transformation, and Toxicity of Nanoparticles in the Environment , 2014 .
[108] Kun Yang,et al. Heteroagglomeration of oxide nanoparticles with algal cells: effects of particle type, ionic strength and pH. , 2015, Environmental science & technology.
[109] Awadhesh N Jha,et al. Stabilization of engineered zero-valent nanoiron with Na-acrylic copolymer enhances spermiotoxicity. , 2011, Environmental science & technology.
[110] Xuming Zheng,et al. Enhanced removal of nitrate by a novel composite: Nanoscale zero valent iron supported on pillared clay , 2011 .
[111] J. Lead,et al. Transformations of nanomaterials in the environment. , 2012, Environmental science & technology.
[112] Arturo A. Keller,et al. Emerging patterns for engineered nanomaterials in the environment: a review of fate and toxicity studies , 2014, Journal of Nanoparticle Research.
[113] G. Zeng,et al. The interactions between nanoscale zero-valent iron and microbes in the subsurface environment: A review. , 2017, Journal of hazardous materials.
[114] Jae-hwan Kim,et al. Exposure of iron nanoparticles to Arabidopsis thaliana enhances root elongation by triggering cell wall loosening. , 2014, Environmental science & technology.
[115] G. Zeng,et al. Aging study on carboxymethyl cellulose-coated zero-valent iron nanoparticles in water: Chemical transformation and structural evolution. , 2016, Journal of hazardous materials.
[116] Guangchao Li,et al. Kinetics of chromate reduction by ferrous iron , 1996 .
[117] Dongye Zhao,et al. Ageing decreases the phytotoxicity of zero-valent iron nanoparticles in soil cultivated with Oryza sativa , 2016, Ecotoxicology.
[118] M. C. Lobo,et al. Assessing the impact of zero-valent iron (ZVI) nanotechnology on soil microbial structure and functionality: a molecular approach. , 2012, Chemosphere.
[119] B. Wang,et al. Physicochemical Origin for Free Radical Generation of Iron Oxide Nanoparticles in Biomicroenvironment: Catalytic Activities Mediated by Surface Chemical States , 2013 .
[120] C. Fajardo,et al. Integrating classical and molecular approaches to evaluate the impact of nanosized zero-valent iron (nZVI) on soil organisms. , 2014, Chemosphere.
[121] G. Batley,et al. Fate and risks of nanomaterials in aquatic and terrestrial environments. , 2013, Accounts of chemical research.
[122] D. O’Carroll,et al. Long-Term Field Study of Microbial Community and Dechlorinating Activity Following Carboxymethyl Cellulose-Stabilized Nanoscale Zero-Valent Iron Injection. , 2016, Environmental science & technology.
[123] S. Ghoshal,et al. Effects of Rhamnolipid and Carboxymethylcellulose Coatings on Reactivity of Palladium-Doped Nanoscale Zerovalent Iron Particles. , 2016, Environmental science & technology.
[124] Gregory V. Lowry,et al. Chemical transformations during aging of zerovalent iron nanoparticles in the presence of common groundwater dissolved constituents. , 2010, Environmental science & technology.
[125] T. Scott,et al. The effect of common groundwater anions on the aqueous corrosion of zero-valent iron nanoparticles and associated removal of aqueous copper and zinc , 2017 .
[126] B. Xing,et al. Environmental processes and toxicity of metallic nanoparticles in aquatic systems as affected by natural organic matter , 2016 .
[127] M. Davranche,et al. How does organic matter constrain the nature, size and availability of Fe nanoparticles for biological reduction? , 2011, Journal of colloid and interface science.
[128] Alice Dohnalkova,et al. Electrically conductive bacterial nanowires produced by Shewanella oneidensis strain MR-1 and other microorganisms. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[129] N. Chung,et al. Rod‐shaped iron oxide nanoparticles are more toxic than sphere‐shaped nanoparticles to murine macrophage cells , 2014, Environmental toxicology and chemistry.
[130] W. Lu,et al. Where does the toxicity of metal oxide nanoparticles come from: The nanoparticles, the ions, or a combination of both? , 2016, Journal of hazardous materials.
[131] D. White,et al. The effect of engineered iron nanoparticles on growth and metabolic status of marine microalgae cultures. , 2012, The Science of the total environment.
[132] M. Černík,et al. Activation process of air stable nanoscale zero-valent iron particles , 2017 .
[133] R. Zepp,et al. Role of the photo-Fenton reaction in the production of hydroxyl radicals and photobleaching of colored dissolved organic matter in a coastal river of the southeastern United States , 2003, Aquatic Sciences.
[134] Dongye Zhao,et al. Higher concentrations of nanoscale zero-valent iron (nZVI) in soil induced rice chlorosis due to inhibited active iron transportation. , 2016, Environmental pollution.
[135] T. Waite,et al. Depassivation of aged Fe0 by inorganic salts: implications to contaminant degradation in seawater. , 2013, Environmental science & technology.
[136] E. Roden. Fe(III) Oxide Reactivity Toward Biological versus Chemical Reduction , 2003 .
[137] Mélanie Auffan,et al. Molecular insights of oxidation process of iron nanoparticles: spectroscopic, magnetic, and microscopic evidence. , 2014, Environmental science & technology.
[138] Daniel C W Tsang,et al. Nanoscale zero-valent iron for metal/metalloid removal from model hydraulic fracturing wastewater. , 2017, Chemosphere.
[139] Helge Stanjek,et al. The ecotoxic potential of a new zero-valent iron nanomaterial, designed for the elimination of halogenated pollutants, and its effect on reductive dechlorinating microbial communities. , 2016, Environmental pollution.
[140] P Stroeve,et al. Cell toxicity of superparamagnetic iron oxide nanoparticles. , 2009, Journal of colloid and interface science.
[141] David Emerson,et al. Iron-oxidizing bacteria: an environmental and genomic perspective. , 2010, Annual review of microbiology.
[142] G. Pojana,et al. Coating-dependent induction of cytotoxicity and genotoxicity of iron oxide nanoparticles , 2015, Nanotoxicology.
[143] T. Waite,et al. Depassivation of aged Fe0 by ferrous ions: implications to contaminant degradation. , 2013, Environmental science & technology.
[144] D. O’Carroll,et al. The influence of humic acid and clay content on the transport of polymer-coated iron nanoparticles through sand. , 2014, The Science of the total environment.
[145] M. Elimelech,et al. Aggregation kinetics of alginate-coated hematite nanoparticles in monovalent and divalent electrolytes. , 2006, Environmental science & technology.
[146] Wei-xian Zhang,et al. Iron nanoparticles for environmental clean-up: recent developments and future outlook. , 2013, Environmental science. Processes & impacts.
[147] Donald Lucas,et al. Oxidative stress induced by zero-valent iron nanoparticles and Fe(II) in human bronchial epithelial cells. , 2009, Environmental science & technology.
[148] Shijian Ge,et al. Heteroaggregation between PEI-coated magnetic nanoparticles and algae: effect of particle size on algal harvesting efficiency. , 2015, ACS applied materials & interfaces.
[149] A. Smirnov,et al. Surface-mediated production of hydroxyl radicals as a mechanism of iron oxide nanoparticle biotoxicity. , 2011, Journal of the American Chemical Society.
[150] W. P. Ball,et al. Longevity of granular iron in groundwater treatment processes: solution composition effects on reduction of organohalides and nitroaromatic compounds. , 2003, Environmental science & technology.
[151] D. O’Carroll,et al. Contributions of Abiotic and Biotic Dechlorination Following Carboxymethyl Cellulose Stabilized Nanoscale Zero Valent Iron Injection. , 2015, Environmental science & technology.
[152] Cheng Lei,et al. Toxicity of iron-based nanoparticles to green algae: Effects of particle size, crystal phase, oxidation state and environmental aging. , 2016, Environmental pollution.
[153] Jae-hwan Kim,et al. Carboxymethyl cellulose coating decreases toxicity and oxidizing capacity of nanoscale zerovalent iron. , 2014, Chemosphere.
[154] I. Lo,et al. Influence of humic acid on the colloidal stability of surface-modified nano zero-valent iron. , 2013, Water research.
[155] Paul G Tratnyek,et al. Aging of Iron Nanoparticles in Aqueous Solution: Effects on Structure and Reactivity , 2008 .
[156] J. Prosser,et al. The impact of zero-valent iron nanoparticles on a river water bacterial community. , 2010, Journal of hazardous materials.
[157] Jing-fu Liu,et al. Coating Fe3O4 magnetic nanoparticles with humic acid for high efficient removal of heavy metals in water. , 2008, Environmental science & technology.
[158] Navid B. Saleh,et al. Aggregation and sedimentation of aqueous nanoscale zerovalent iron dispersions. , 2007, Environmental science & technology.
[159] B. Berkowitz,et al. Effects of metal oxide nanoparticles on soil properties. , 2013, Chemosphere.
[160] John M. Zachara,et al. Microbial Reduction of Crystalline Iron(III) Oxides: Influence of Oxide Surface Area and Potential for Cell Growth , 1996 .
[161] Kun Yang,et al. Systematic and quantitative investigation of the mechanism of carbon nanotubes' toxicity toward algae. , 2012, Environmental science & technology.
[162] Tao Wang,et al. Effects of Metal Nanoparticles on Methane Production from Waste-Activated Sludge and Microorganism Community Shift in Anaerobic Granular Sludge , 2016, Scientific Reports.
[163] Li Mu,et al. Knowledge gaps between nanotoxicological research and nanomaterial safety. , 2016, Environment international.
[164] Kevin Kendall,et al. Aggregation and surface properties of iron oxide nanoparticles: Influence of ph and natural organic matter , 2008, Environmental toxicology and chemistry.
[165] Am Jang,et al. Reduction of highly concentrated nitrate using nanoscale zero-valent iron: Effects of aggregation and catalyst on reactivity , 2011 .
[166] Miroslav Mashlan,et al. Multimodal action and selective toxicity of zerovalent iron nanoparticles against cyanobacteria. , 2012, Environmental science & technology.
[167] D. Sholl,et al. TCE dechlorination rates, pathways, and efficiency of nanoscale iron particles with different properties. , 2005, Environmental science & technology.
[168] Yan Jin,et al. Uptake, translocation, and accumulation of manufactured iron oxide nanoparticles by pumpkin plants. , 2008, Journal of environmental monitoring : JEM.
[169] E. Roden,et al. Potential for Microscale Bacterial Fe Redox Cycling at the Aerobic-Anaerobic Interface , 2004 .
[170] E. Joner,et al. Impact of Fe and Ag nanoparticles on seed germination and differences in bioavailability during exposure in aqueous suspension and soil , 2012, Environmental toxicology.
[171] M. Gil-Díaz,et al. Residual impact of aged nZVI on heavy metal-polluted soils. , 2015, The Science of the total environment.
[172] D. Shi,et al. Synthesis-Dependent Surface Defects and Morphology of Hematite Nanoparticles and Their Effect on Cytotoxicity in Vitro. , 2016, ACS applied materials & interfaces.
[173] Amitava Mukherjee,et al. Toxicity, accumulation, and trophic transfer of chemically and biologically synthesized nano zero valent iron in a two species freshwater food chain. , 2017, Aquatic toxicology.
[174] T. Hofmann,et al. Nanosized Iron Oxide Colloids Strongly Enhance Microbial Iron Reduction , 2009, Applied and Environmental Microbiology.
[175] E. Gazzano,et al. Hematite nanoparticles larger than 90 nm show no sign of toxicity in terms of lactate dehydrogenase release, nitric oxide generation, apoptosis, and comet assay in murine alveolar macrophages and human lung epithelial cells. , 2012, Chemical research in toxicology.
[176] G Libralato,et al. Phytotoxicity of ionic, micro- and nano-sized iron in three plant species. , 2016, Ecotoxicology and environmental safety.
[177] Tanapon Phenrat,et al. Partial oxidation ("aging") and surface modification decrease the toxicity of nanosized zerovalent iron. , 2009, Environmental science & technology.
[178] J. Gescher,et al. Dissimilatory Reduction of Extracellular Electron Acceptors in Anaerobic Respiration , 2011, Applied and Environmental Microbiology.
[179] B. Men,et al. Investigation of heavy metals release from sediment with bioturbation/bioirrigation. , 2017, Chemosphere.
[180] Fritjof Fagerlund,et al. Particle size distribution, concentration, and magnetic attraction affect transport of polymer-modified Fe(0) nanoparticles in sand columns. , 2009, Environmental science & technology.
[181] Michelle Sergent,et al. Assessment of potential positive effects of nZVI surface modification and concentration levels on TCE dechlorination in the presence of competing strong oxidants, using an experimental design. , 2014, The Science of the total environment.
[182] Meng Wang,et al. Neurotoxicity of low-dose repeatedly intranasal instillation of nano- and submicron-sized ferric oxide particles in mice , 2009 .
[183] Li Li,et al. Bioleaching mechanism of Co and Li from spent lithium-ion battery by the mixed culture of acidophilic sulfur-oxidizing and iron-oxidizing bacteria. , 2009, Bioresource technology.
[184] Pei-Jen Chen,et al. Stabilization or oxidation of nanoscale zerovalent iron at environmentally relevant exposure changes bioavailability and toxicity in medaka fish. , 2012, Environmental science & technology.
[185] 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 .
[186] Heechul Choi,et al. Removal of arsenic(III) from groundwater by nanoscale zero-valent iron. , 2005, Environmental science & technology.
[187] Tinglin Huang,et al. The influences of iron characteristics, operating conditions and solution chemistry on contaminants removal by zero-valent iron: A review. , 2016, Water research.
[188] Tetsu K. Tokunaga,et al. Kinetic stability of hematite nanoparticles: the effect of particle sizes , 2008 .
[189] Yingying Xie,et al. Effects of Ni/Fe bimetallic nanoparticles on phytotoxicity and translocation of polybrominated diphenyl ethers in contaminated soil. , 2016, Chemosphere.
[190] Xiao-qin Li,et al. Structural evolution of Pd-doped nanoscale zero-valent iron (nZVI) in aqueous media and implications for particle aging and reactivity. , 2010, Environmental science & technology.
[191] Falong Jia,et al. Iron oxide shell mediated environmental remediation properties of nano zero-valent iron , 2017 .
[192] Kara L Nelson,et al. Bactericidal effect of zero-valent iron nanoparticles on Escherichia coli. , 2008, Environmental science & technology.
[193] Mark R Wiesner,et al. A review of the environmental implications of in situ remediation by nanoscale zero valent iron (nZVI): Behavior, transport and impacts on microbial communities. , 2016, The Science of the total environment.
[194] Tanapon Phenrat,et al. Nanoparticle aggregation: challenges to understanding transport and reactivity in the environment. , 2010, Journal of environmental quality.
[195] Kairong Lin,et al. Chemical stability and toxicity of nanoscale zero-valent iron in the remediation of chromium-contaminated watershed , 2013 .
[196] Heechul Choi,et al. Aging Study on the Structure of Fe0-Nanoparticles: Stabilization, Characterization, and Reactivity , 2010 .
[197] Arturo A. Keller,et al. Persistence of commercial nanoscaled zero-valent iron (nZVI) and by-products , 2013, Journal of Nanoparticle Research.
[198] Ning Gu,et al. Dual enzyme-like activities of iron oxide nanoparticles and their implication for diminishing cytotoxicity. , 2012, ACS nano.
[199] 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.
[200] Lin-zhang Yang,et al. Different responses of soil microbial metabolic activity to silver and iron oxide nanoparticles. , 2016, Chemosphere.
[201] Di Liu,et al. Aqueous aggregation and surface deposition processes of engineered superparamagnetic iron oxide nanoparticles for environmental applications. , 2014, Environmental science & technology.
[202] L. Lv,et al. Heavy metal removal from water/wastewater by nanosized metal oxides: a review. , 2012, Journal of hazardous materials.
[203] Karl Ritz,et al. The impact of zero-valent iron nanoparticles upon soil microbial communities is context dependent , 2013, Environmental Science and Pollution Research.
[204] J. Bosch,et al. Iron oxide nanoparticles in geomicrobiology: from biogeochemistry to bioremediation. , 2013, New biotechnology.
[205] Youzhi Feng,et al. Iron oxide magnetic nanoparticles deteriorate the mutual interaction between arbuscular mycorrhizal fungi and plant , 2017, Journal of Soils and Sediments.
[206] M. Otyepka,et al. Anaerobic Reaction of Nanoscale Zerovalent Iron with Water: Mechanism and Kinetics , 2014 .
[207] V. H. Liao,et al. Nanoscale zerovalent iron (nZVI) at environmentally relevant concentrations induced multigenerational reproductive toxicity in Caenorhabditis elegans. , 2016, Chemosphere.
[208] Jun-young Ahn,et al. Atmospherically stable nanoscale zero-valent iron particles formed under controlled air contact: characteristics and reactivity. , 2010, Environmental science & technology.
[209] Kenneth A. Dawson,et al. Protein–Nanoparticle Interactions , 2008, Nano-Enabled Medical Applications.
[210] M. Schlömann,et al. The iron-oxidizing proteobacteria. , 2011, Microbiology.
[211] H. Byrne,et al. Comparison of micro- and nanoscale Fe⁺³-containing (Hematite) particles for their toxicological properties in human lung cells in vitro. , 2012, Toxicological sciences : an official journal of the Society of Toxicology.