References
Abazari R, Heshmatpour F, Balalaie S (2013) Pt/Pd/Fe trimetallic nanoparticle produced via reverse
micelle technique: synthesis, characterization, and its use as an efficient catalyst for reductive
hydrodehalogenation of aryl and aliphatic halides under mild conditions. ACS Catal 3:139–149.
https://doi.org/10.1021/cs300507a
Adeleye AS, Keller AA, Miller RJ, Lenihan HS (2013) Persistence of commercial nanoscaled zerovalent iron (nZVI) and by-products. J Nanopart Res 15:1418. https://doi.org/10.1007/s11051013-1418-7
Allen-King RM, Grathwohl P, Ball WP (2002) New modeling paradigms for the sorption of
hydrophobic organic chemicals to heterogeneous carbonaceous matter in soils, sediments, and
rocks. Adv Water Resour 25:985–1016. https://doi.org/10.1016/S0309-1708(02)00045-3
Al-Shamsi MA, Thomson NR (2013) Treatment of organic compounds by activated persulfate
using nanoscale zerovalent iron. Ind Eng Chem Res 52:13564–13571. https://doi.org/10.1021/
ie400387p
Alvarez PJJ, Illman WA (2005a) Bioremediation and natural attenuation: process fundamentals and
mathematical models. Wiley, Hoboken, NJ
Alvarez PJJ, Illman WA (2005b) Fundamentals of groundwater flow and contaminant transport
processes. In: Bioremediation and natural attenuation. Wiley, Hoboken, NJ, pp 115–167
Amir A, Lee W (2011) Enhanced reductive dechlorination of tetrachloroethene by nano-sized zero
valent iron with vitamin B12. Chem Eng J 170:492–497. https://doi.org/10.1016/j.cej.2011.01.
048
Amonette JE (2002) Iron redox chemistry of clays and oxydes: environmental applications. In:
Fitch A (ed) Electrochemical properties of clays, vol 10. The Clay Minerals Society, Aurora,
CO, pp 90–147
Amonette JE, Szecsody JE, Schaef HT et al (1994) Abiotic reduction of aquifer materials by
dithionite: a promising in-situ remediation technology. In: Gee GW, Wing NR (eds) In-situ
remediation: scientific basis for current and future technologies, Part 2. Battelle Press, Richland,
WA, pp 851–881
Amonette JE, Workman DJ, Kennedy DW et al (2000) Dechlorination of carbon tetrachloride by Fe
(II) associated with goethite. Environ Sci Technol 34:4606–4613. https://doi.org/10.1021/
ES9913582
Arnold WA, Roberts AL (1998) Pathways of chlorinated ethylene and chlorinated acetylene
reaction with Zn(0). Environ Sci Technol 32:3017–3025. https://doi.org/10.1021/es980252o
Arnold WA, Roberts AL (2000) Pathways and kinetics of chlorinated ethylene and chlorinated
acetylene reaction with Fe(0) particles. Environ Sci Technol 34:1794–1805. https://doi.org/10.
1021/es990884q
Arnold WA, Ball WP, Roberts AL (1999) Polychlorinated ethane reaction with zero-valent zinc:
pathways and rate control. J Contam Hydrol 40:183–200. https://doi.org/10.1016/S0169-7722
(99)00045-5
Arnold WA, Winget P, Cramer CJ (2002) Reductive dechlorination of 1,1,2,2-tetrachloroethane.
Environ Sci Technol 36:3536–3541. https://doi.org/10.1021/es025655+
Auffan M, Achouak W, Rose J et al (2008) Relation between the redox state of iron-based
nanoparticles and their cytotoxicity toward Escherichia coli. Environ Sci Technol
42:6730–6735. https://doi.org/10.1021/es800086f
Aziz CE, Wymore RA, Steffan RJ (2013) Bioaugmentation considerations. In: Bioaugmentation for
groundwater remediation. Springer, New York, NY, pp 141–169
Bae S, Hanna K (2015) Reactivity of nanoscale zero-valent iron in unbuffered systems: effect of pH
and Fe(II) dissolution. Environ Sci Technol 49:10536–10543. https://doi.org/10.1021/acs.est.
5b01298
Baer DR, Amonette JE, Engelhard MH et al (2008) Characterization challenges for nanomaterials.
Surf Interface Anal 40:529–537. https://doi.org/10.1002/sia.2726
372
R. Rodrigues et al.
Abazari R, Heshmatpour F, Balalaie S (2013) Pt/Pd/Fe trimetallic nanoparticle produced via reverse
micelle technique: synthesis, characterization, and its use as an efficient catalyst for reductive
hydrodehalogenation of aryl and aliphatic halides under mild conditions. ACS Catal 3:139–149.
https://doi.org/10.1021/cs300507a
Adeleye AS, Keller AA, Miller RJ, Lenihan HS (2013) Persistence of commercial nanoscaled zerovalent iron (nZVI) and by-products. J Nanopart Res 15:1418. https://doi.org/10.1007/s11051013-1418-7
Allen-King RM, Grathwohl P, Ball WP (2002) New modeling paradigms for the sorption of
hydrophobic organic chemicals to heterogeneous carbonaceous matter in soils, sediments, and
rocks. Adv Water Resour 25:985–1016. https://doi.org/10.1016/S0309-1708(02)00045-3
Al-Shamsi MA, Thomson NR (2013) Treatment of organic compounds by activated persulfate
using nanoscale zerovalent iron. Ind Eng Chem Res 52:13564–13571. https://doi.org/10.1021/
ie400387p
Alvarez PJJ, Illman WA (2005a) Bioremediation and natural attenuation: process fundamentals and
mathematical models. Wiley, Hoboken, NJ
Alvarez PJJ, Illman WA (2005b) Fundamentals of groundwater flow and contaminant transport
processes. In: Bioremediation and natural attenuation. Wiley, Hoboken, NJ, pp 115–167
Amir A, Lee W (2011) Enhanced reductive dechlorination of tetrachloroethene by nano-sized zero
valent iron with vitamin B12. Chem Eng J 170:492–497. https://doi.org/10.1016/j.cej.2011.01.
048
Amonette JE (2002) Iron redox chemistry of clays and oxydes: environmental applications. In:
Fitch A (ed) Electrochemical properties of clays, vol 10. The Clay Minerals Society, Aurora,
CO, pp 90–147
Amonette JE, Szecsody JE, Schaef HT et al (1994) Abiotic reduction of aquifer materials by
dithionite: a promising in-situ remediation technology. In: Gee GW, Wing NR (eds) In-situ
remediation: scientific basis for current and future technologies, Part 2. Battelle Press, Richland,
WA, pp 851–881
Amonette JE, Workman DJ, Kennedy DW et al (2000) Dechlorination of carbon tetrachloride by Fe
(II) associated with goethite. Environ Sci Technol 34:4606–4613. https://doi.org/10.1021/
ES9913582
Arnold WA, Roberts AL (1998) Pathways of chlorinated ethylene and chlorinated acetylene
reaction with Zn(0). Environ Sci Technol 32:3017–3025. https://doi.org/10.1021/es980252o
Arnold WA, Roberts AL (2000) Pathways and kinetics of chlorinated ethylene and chlorinated
acetylene reaction with Fe(0) particles. Environ Sci Technol 34:1794–1805. https://doi.org/10.
1021/es990884q
Arnold WA, Ball WP, Roberts AL (1999) Polychlorinated ethane reaction with zero-valent zinc:
pathways and rate control. J Contam Hydrol 40:183–200. https://doi.org/10.1016/S0169-7722
(99)00045-5
Arnold WA, Winget P, Cramer CJ (2002) Reductive dechlorination of 1,1,2,2-tetrachloroethane.
Environ Sci Technol 36:3536–3541. https://doi.org/10.1021/es025655+
Auffan M, Achouak W, Rose J et al (2008) Relation between the redox state of iron-based
nanoparticles and their cytotoxicity toward Escherichia coli. Environ Sci Technol
42:6730–6735. https://doi.org/10.1021/es800086f
Aziz CE, Wymore RA, Steffan RJ (2013) Bioaugmentation considerations. In: Bioaugmentation for
groundwater remediation. Springer, New York, NY, pp 141–169
Bae S, Hanna K (2015) Reactivity of nanoscale zero-valent iron in unbuffered systems: effect of pH
and Fe(II) dissolution. Environ Sci Technol 49:10536–10543. https://doi.org/10.1021/acs.est.
5b01298
Baer DR, Amonette JE, Engelhard MH et al (2008) Characterization challenges for nanomaterials.
Surf Interface Anal 40:529–537. https://doi.org/10.1002/sia.2726
372
R. Rodrigues et al.
