Sun X, Yan Y, Wang M, Han Z (2017) Effect of nanoscale zero-valent iron confined in
mesostructure on Escherichia coli. Environ Sci Pollut Res 24:24038–24045. https://doi.org/
10.1007/s11356-017-0101-4
Suthersan SS (2002) Natural and enhanced remediation systems. CRC Press, Boca Raton, FL
Sweeny KH (1980) Treatment of reducible halohydrocarbon containing aqueous stream
Szecsody J, Williams M, Fruchter J, et al (2000) Influence of sediment reduction on TCE
degradation, remediation of chlorinated and recalcitrant compounds. In: Chemical oxidation
and reactive barriers: remediation of chlorinated and recalcitrant compounds. Battelle, Columbus, OH, pp 369–376
Tang F, Xin J, Zheng T et al (2017a) Individual and combined effects of humic acid, bicarbonate
and calcium on TCE removal kinetics, aging behavior and electron efficiency of mZVI particles.
Chem Eng J 324:324–335. https://doi.org/10.1016/j.cej.2017.04.144
Tang F, Xin J, Zheng X et al (2017b) Effect of solution pH on aging dynamics and surface structural
evolution of mZVI particles: H2 production and spectroscopic/microscopic evidence. Environ
Sci Pollut Res:1–11. https://doi.org/10.1007/s11356-017-9976-3
Tee Y-H, Grulke E, Bhattacharyya D (2005) Role of Ni/Fe nanoparticle composition on the
degradation of trichloroethylene from water. Ind Eng Chem Res 44:7062–7070. https://doi.
org/10.1021/ie050086a
Tiraferri A, Chen KL, Sethi R, Elimelech M (2008) Reduced aggregation and sedimentation of
zero-valent iron nanoparticles in the presence of guar gum. J Colloid Interface Sci 324:71–79.
https://doi.org/10.1016/j.jcis.2008.04.064
Tosco T, Papini MP, Cruz Viggi C, Sethi R (2014) nanoscale zerovalent iron particles for
groundwater remediation: a review. J Clean Prod 77:10–21. https://doi.org/10.1016/j.jclepro.
2013.12.026
Tratnyek PG, Johnson RL (2006) Nanotechnologies for environmental cleanup. Nano Today
1:44–48. https://doi.org/10.1016/S1748-0132(06)70048-2
Tratnyek PG, Macalady DL (2000) Oxidation-reduction reactions in the aquatic environment. In:
Boethling RS, Mackay D (eds) Handbook of property estimation methods for chemicals:
environmental health sciences. CRC Press, Boca Raton, FL, pp 383–415
Tratnyek PG, Scherer MM, Deng B, Hu S (2001) Effects of natural organic matter, anthropogenic
surfactants, and model quinones on the reduction of contaminants by zero-valent iron. Water
Res 35:4435–4443. https://doi.org/10.1016/S0043-1354(01)00165-8
Tratnyek PG, Weber EJ, Schwarzenbach RP (2003) Quantitative structure – activity relationships
for chemical reductions of organic contaminants. Environ Toxicol Chem 22:1733. https://doi.
org/10.1897/01-236
Tratnyek PG, Salter AJ, Nurmi JT, Sarathy V (2010) Environmental applications of zerovalent
metals: iron vs. zinc. Nanoscale Mater Chem Environ Appl Am Chem Soc 1045:165–178
Tratnyek PG, Johnson RL, Lowry GV, Brown RA (2014) In situ chemical reduction for source
remediation. In: Kueper BH, Stroo HF, Vogel CM, Ward CH (eds) Chlorinated solvent source
zone remediation. Springer, New York, NY, pp 307–351
Travis C, Doty C (1990) ES&T views: can contaminated aquifers at superfund sites be remediated?
Environ Sci Technol 24:1464–1466. https://doi.org/10.1021/es00080a600
Uegami M, Kawano J, Okita T, et al (2002) Iron particles for purifying contaminated soil or ground
water, process for producing the iron particles, purifying agent comprising the iron particles,
process for producing the purifying agent and method of purifying contaminated soil or ground
water
Velimirovic M, Chen H, Simons Q, Bastiaens L (2012) Reactivity recovery of guar gum coupled
mZVI by means of enzymatic breakdown and rinsing. J Contam Hydrol 142–143:1–10. https://
doi.org/10.1016/J.JCONHYD.2012.09.003
Velimirovic M, Larsson P-O, Simons Q, Bastiaens L (2013a) Impact of carbon, oxygen and sulfur
content of microscale zerovalent iron particles on its reactivity towards chlorinated aliphatic
hydrocarbons. Chemosphere 93:2040–2045. https://doi.org/10.1016/J.CHEMOSPHERE.2013.
07.034
394
R. Rodrigues et al.
mesostructure on Escherichia coli. Environ Sci Pollut Res 24:24038–24045. https://doi.org/
10.1007/s11356-017-0101-4
Suthersan SS (2002) Natural and enhanced remediation systems. CRC Press, Boca Raton, FL
Sweeny KH (1980) Treatment of reducible halohydrocarbon containing aqueous stream
Szecsody J, Williams M, Fruchter J, et al (2000) Influence of sediment reduction on TCE
degradation, remediation of chlorinated and recalcitrant compounds. In: Chemical oxidation
and reactive barriers: remediation of chlorinated and recalcitrant compounds. Battelle, Columbus, OH, pp 369–376
Tang F, Xin J, Zheng T et al (2017a) Individual and combined effects of humic acid, bicarbonate
and calcium on TCE removal kinetics, aging behavior and electron efficiency of mZVI particles.
Chem Eng J 324:324–335. https://doi.org/10.1016/j.cej.2017.04.144
Tang F, Xin J, Zheng X et al (2017b) Effect of solution pH on aging dynamics and surface structural
evolution of mZVI particles: H2 production and spectroscopic/microscopic evidence. Environ
Sci Pollut Res:1–11. https://doi.org/10.1007/s11356-017-9976-3
Tee Y-H, Grulke E, Bhattacharyya D (2005) Role of Ni/Fe nanoparticle composition on the
degradation of trichloroethylene from water. Ind Eng Chem Res 44:7062–7070. https://doi.
org/10.1021/ie050086a
Tiraferri A, Chen KL, Sethi R, Elimelech M (2008) Reduced aggregation and sedimentation of
zero-valent iron nanoparticles in the presence of guar gum. J Colloid Interface Sci 324:71–79.
https://doi.org/10.1016/j.jcis.2008.04.064
Tosco T, Papini MP, Cruz Viggi C, Sethi R (2014) nanoscale zerovalent iron particles for
groundwater remediation: a review. J Clean Prod 77:10–21. https://doi.org/10.1016/j.jclepro.
2013.12.026
Tratnyek PG, Johnson RL (2006) Nanotechnologies for environmental cleanup. Nano Today
1:44–48. https://doi.org/10.1016/S1748-0132(06)70048-2
Tratnyek PG, Macalady DL (2000) Oxidation-reduction reactions in the aquatic environment. In:
Boethling RS, Mackay D (eds) Handbook of property estimation methods for chemicals:
environmental health sciences. CRC Press, Boca Raton, FL, pp 383–415
Tratnyek PG, Scherer MM, Deng B, Hu S (2001) Effects of natural organic matter, anthropogenic
surfactants, and model quinones on the reduction of contaminants by zero-valent iron. Water
Res 35:4435–4443. https://doi.org/10.1016/S0043-1354(01)00165-8
Tratnyek PG, Weber EJ, Schwarzenbach RP (2003) Quantitative structure – activity relationships
for chemical reductions of organic contaminants. Environ Toxicol Chem 22:1733. https://doi.
org/10.1897/01-236
Tratnyek PG, Salter AJ, Nurmi JT, Sarathy V (2010) Environmental applications of zerovalent
metals: iron vs. zinc. Nanoscale Mater Chem Environ Appl Am Chem Soc 1045:165–178
Tratnyek PG, Johnson RL, Lowry GV, Brown RA (2014) In situ chemical reduction for source
remediation. In: Kueper BH, Stroo HF, Vogel CM, Ward CH (eds) Chlorinated solvent source
zone remediation. Springer, New York, NY, pp 307–351
Travis C, Doty C (1990) ES&T views: can contaminated aquifers at superfund sites be remediated?
Environ Sci Technol 24:1464–1466. https://doi.org/10.1021/es00080a600
Uegami M, Kawano J, Okita T, et al (2002) Iron particles for purifying contaminated soil or ground
water, process for producing the iron particles, purifying agent comprising the iron particles,
process for producing the purifying agent and method of purifying contaminated soil or ground
water
Velimirovic M, Chen H, Simons Q, Bastiaens L (2012) Reactivity recovery of guar gum coupled
mZVI by means of enzymatic breakdown and rinsing. J Contam Hydrol 142–143:1–10. https://
doi.org/10.1016/J.JCONHYD.2012.09.003
Velimirovic M, Larsson P-O, Simons Q, Bastiaens L (2013a) Impact of carbon, oxygen and sulfur
content of microscale zerovalent iron particles on its reactivity towards chlorinated aliphatic
hydrocarbons. Chemosphere 93:2040–2045. https://doi.org/10.1016/J.CHEMOSPHERE.2013.
07.034
394
R. Rodrigues et al.
