Johnson TL, Fish W, Gorby YA, Tratnyek PG (1998) Degradation of carbon tetrachloride by iron
metal: complexation effects on the oxide surface. J Contam Hydrol 29:379–398. https://doi.org/
10.1016/S0169-7722(97)00063-6
Johnson RL, Nurmi JT, O’Brien Johnson GS et al (2013) Field-scale transport and transformation
of carboxymethylcellulose-stabilized nano zero-valent iron. Environ Sci Technol
47:1573–1580. https://doi.org/10.1021/es304564q
Kaifas D (2014) Déchloration réductive par les nanoparticules de fer zéro-valent : une solution
innovante pour la réhabilitation des aquifères souterrains contaminés par le trichloroéthylène.
Aix-Marseille Université
Kaifas D, Malleret L, Kumar N et al (2014) 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. Sci Total Environ 481:335–342. https://doi.org/
10.1016/j.scitotenv.2014.02.043
Karn B, Kuiken T, Otto M (2009) Nanotechnology and in situ remediation: a review of the benefits
and potential risks. Environ Health Perspect 117:1813–1831. https://doi.org/10.1289/ehp.
0900793
Keenan CR, Sedlak DL (2008) Factors affecting the yield of oxidants from the reaction of
nanoparticulate zero-valent iron and oxygen. Environ Sci Technol 42:1262–1267. https://doi.
org/10.1021/es7025664
Keenan CR, Goth-Goldstein R, Lucas D, Sedlak DL (2009) Oxidative stress induced by zero-valent
iron nanoparticles and Fe(II) in human bronchial epithelial cells. Environ Sci Technol
43:4555–4560. https://doi.org/10.1021/es9006383
Kharissova OV, Dias HVR, Kharisov BI et al (2013) The greener synthesis of nanoparticles. Trends
Biotechnol 31:240–248. https://doi.org/10.1016/j.tibtech.2013.01.003
Kim YH, Carraway ER (2003) Reductive dechlorination of TCE by zero valent bimetals. Environ
Technol 24:69–75. https://doi.org/10.1080/09593330309385537
Kim JY, Park H-J, Lee C et al (2010) Inactivation of Escherichia coli by nanoparticulate zerovalent
iron and ferrous ion. Appl Environ Microbiol 76:7668–7670. https://doi.org/10.1128/AEM.
01009-10
Kim E-J, Kim J-H, Azad A-M, Chang Y-S (2011) Facile synthesis and characterization of Fe/FeS
nanoparticles for environmental applications. ACS Appl Mater Interfaces 3:1457–1462. https://
doi.org/10.1021/am200016v
Kim H-S, Kim T, Ahn J-Y et al (2012) Aging characteristics and reactivity of two types of
nanoscale zero-valent iron particles (FeBH and FeH2) in nitrate reduction. Chem Eng J
197:16–23. https://doi.org/10.1016/J.CEJ.2012.05.018
Kim H-H, Kim MS, Kim H-E et al (2017) Nanoparticulate zero-valent iron coupled with
polyphosphate: the sequential redox treatment of organic compounds and its stability and
bacterial toxicity. Environ Sci Nano 4:396–405. https://doi.org/10.1039/C6EN00502K
Kingston JLT, Johnson PC, Kueper BH, Mumford KG (2014) In situ thermal treatment of
chlorinated solvent source zones. In: Kueper BH, Stroo HF, Vogel CM, Ward CH (eds)
Chlorinated solvent source zone remediation. Springer, New York, NY, pp 509–557
Kirschling TL, Gregory KB, Minkley EG Jr et al (2010) Impact of nanoscale zero valent iron on
geochemistry and microbial populations in trichloroethylene contaminated aquifer materials.
Environ Sci Technol 44:3474–3480. https://doi.org/10.1021/es903744f
Kirschling TL, Golas PL, Unrine JM et al (2011) Microbial bioavailability of covalently bound
polymer coatings on model engineered nanomaterials. Environ Sci Technol 45:5253–5259.
https://doi.org/10.1021/es200770z
Klečka GM, Gonsior SJ (1984) Reductive dechlorination of chlorinated methanes and ethanes by
reduced iron (II) porphyrins. Chemosphere 13:391–402. https://doi.org/10.1016/0045-6535(84)
90097-3
Knauss KG, Dibley MJ, Leif RN et al (2000) The aqueous solubility of trichloroethene (TCE) and
tetrachloroethene (PCE) as a function of temperature. Appl Geochem 15:501–512. https://doi.
org/10.1016/S0883-2927(99)00058-X
382
R. Rodrigues et al.
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