He F, Zhao D, Paul C (2010) Field assessment of carboxymethyl cellulose stabilized iron
nanoparticles for in situ destruction of chlorinated solvents in source zones. Water Res
44:2360–2370. https://doi.org/10.1016/j.watres.2009.12.041
He YT, Wilson JT, Su C, Wilkin RT (2015) Review of abiotic degradation of chlorinated solvents
by reactive iron minerals in aquifers. Groundw Monit Remediat 35:57–75. https://doi.org/10.
1111/GWMR.12111
He D, Ma J, Collins RN, Waite TD (2016) Effect of structural transformation of nanoparticulate
zero-valent iron on generation of reactive oxygen species. Environ Sci Technol 50:3820–3828.
https://doi.org/10.1021/acs.est.5b04988
He C-S, He D, Collins RN et al (2018a) Effects of good’s buffers and pH on the structural
transformation of zero valent iron and the oxidative degradation of contaminants. Environ Sci
Technol 52:3. https://doi.org/10.1021/acs.est.7b04030
He F, Li Z, Shi S et al (2018b) Dechlorination of excess trichloroethene by bimetallic and sulfidated
nanoscale zero-valent iron. Environ Sci Technol 52(15):8627–8637. https://doi.org/10.1021/
acs.est.8B0173
Heck KN, Janesko BG, Scuseria GE et al (2008) Observing metal-catalyzed chemical reactions in
situ using surface-enhanced raman spectroscopy on Pd-Au nanoshells. J Am Chem Soc
130:16592–16600. https://doi.org/10.1021/ja803556k
Henderson AD, Demond AH (2007) Long-term performance of zero-valent iron permeable reactive
barriers: a critical review. Environ Eng Sci 24:401–423. https://doi.org/10.1089/ees.2006.0071
Heron G, Christensen TH, Enfield CG (1998) Henry’s law constant for trichloroethylene between
10 and 95
C. Environ Sci Technol 32:1433–1437. https://doi.org/10.1021/es9707015
Hotze EM, Phenrat T, Lowry GV (2010) Nanoparticle aggregation: challenges to understanding
transport and reactivity in the environment. J Environ Qual 39:1909. https://doi.org/10.2134/
jeq2009.0462
Huang YH, Zhang TC (2005) Effects of dissolved oxygen on formation of corrosion products and
concomitant oxygen and nitrate reduction in zero-valent iron systems with or without aqueous
Fe2+. Water Res 39:1751–1760. https://doi.org/10.1016/j.watres.2005.03.002
Huang B, Isse AA, Durante C et al (2012) Electrocatalytic properties of transition metals toward
reductive dechlorination of polychloroethanes. Electrochim Acta 70:50–61. https://doi.org/10.
1016/J.ELECTACTA.2012.03.009
Huang B, Long J, Chen W et al (2016a) Linear free energy relationships of electrochemical and
thermodynamic parameters for the electrochemical reductive dechlorination of chlorinated
volatile organic compounds (Cl-VOCs). Electrochim Acta 208:195–201. https://doi.org/10.
1016/j.electacta.2016.04.182
Huang B, Qian W, Yu C et al (2016b) Effective catalytic hydrodechlorination of o-, p- and
m-chloronitrobenzene over Ni/Fe nanoparticles: effects of experimental parameter and molecule
structure on the reduction kinetics and mechanisms. Chem Eng J 306:607–618. https://doi.org/
10.1016/j.cej.2016.07.109
Huang L-Z, Yin Z, Cooper NGA et al (2018) Copper-mediated reductive dechlorination by green
rust intercalated with dodecanoate. J Hazard Mater 345:18–26. https://doi.org/10.1016/j.
jhazmat.2017.11.011
Hwang Y-H, Kim D-G, Shin H-S (2011) Effects of synthesis conditions on the characteristics and
reactivity of nano scale zero valent iron. Appl Catal B Environ 105:144–150. https://doi.org/10.
1016/J.APCATB.2011.04.005
Hydutsky BW, Mack EJ, Beckerman BB et al (2007) Optimization of nano- and microiron transport
through sand columns using polyelectrolyte mixtures. Environ Sci Technol 41:6418–6424.
https://doi.org/10.1021/ES0704075
Hyman M, Dupont RR (2001) Groundwater remediation using carbon adsorption. In: Groundwater
and soil remediation: process design and cost estimating of proven technologies. ASCE Press,
Reston, VA, pp 109–135
380
R. Rodrigues et al.
nanoparticles for in situ destruction of chlorinated solvents in source zones. Water Res
44:2360–2370. https://doi.org/10.1016/j.watres.2009.12.041
He YT, Wilson JT, Su C, Wilkin RT (2015) Review of abiotic degradation of chlorinated solvents
by reactive iron minerals in aquifers. Groundw Monit Remediat 35:57–75. https://doi.org/10.
1111/GWMR.12111
He D, Ma J, Collins RN, Waite TD (2016) Effect of structural transformation of nanoparticulate
zero-valent iron on generation of reactive oxygen species. Environ Sci Technol 50:3820–3828.
https://doi.org/10.1021/acs.est.5b04988
He C-S, He D, Collins RN et al (2018a) Effects of good’s buffers and pH on the structural
transformation of zero valent iron and the oxidative degradation of contaminants. Environ Sci
Technol 52:3. https://doi.org/10.1021/acs.est.7b04030
He F, Li Z, Shi S et al (2018b) Dechlorination of excess trichloroethene by bimetallic and sulfidated
nanoscale zero-valent iron. Environ Sci Technol 52(15):8627–8637. https://doi.org/10.1021/
acs.est.8B0173
Heck KN, Janesko BG, Scuseria GE et al (2008) Observing metal-catalyzed chemical reactions in
situ using surface-enhanced raman spectroscopy on Pd-Au nanoshells. J Am Chem Soc
130:16592–16600. https://doi.org/10.1021/ja803556k
Henderson AD, Demond AH (2007) Long-term performance of zero-valent iron permeable reactive
barriers: a critical review. Environ Eng Sci 24:401–423. https://doi.org/10.1089/ees.2006.0071
Heron G, Christensen TH, Enfield CG (1998) Henry’s law constant for trichloroethylene between
10 and 95
C. Environ Sci Technol 32:1433–1437. https://doi.org/10.1021/es9707015
Hotze EM, Phenrat T, Lowry GV (2010) Nanoparticle aggregation: challenges to understanding
transport and reactivity in the environment. J Environ Qual 39:1909. https://doi.org/10.2134/
jeq2009.0462
Huang YH, Zhang TC (2005) Effects of dissolved oxygen on formation of corrosion products and
concomitant oxygen and nitrate reduction in zero-valent iron systems with or without aqueous
Fe2+. Water Res 39:1751–1760. https://doi.org/10.1016/j.watres.2005.03.002
Huang B, Isse AA, Durante C et al (2012) Electrocatalytic properties of transition metals toward
reductive dechlorination of polychloroethanes. Electrochim Acta 70:50–61. https://doi.org/10.
1016/J.ELECTACTA.2012.03.009
Huang B, Long J, Chen W et al (2016a) Linear free energy relationships of electrochemical and
thermodynamic parameters for the electrochemical reductive dechlorination of chlorinated
volatile organic compounds (Cl-VOCs). Electrochim Acta 208:195–201. https://doi.org/10.
1016/j.electacta.2016.04.182
Huang B, Qian W, Yu C et al (2016b) Effective catalytic hydrodechlorination of o-, p- and
m-chloronitrobenzene over Ni/Fe nanoparticles: effects of experimental parameter and molecule
structure on the reduction kinetics and mechanisms. Chem Eng J 306:607–618. https://doi.org/
10.1016/j.cej.2016.07.109
Huang L-Z, Yin Z, Cooper NGA et al (2018) Copper-mediated reductive dechlorination by green
rust intercalated with dodecanoate. J Hazard Mater 345:18–26. https://doi.org/10.1016/j.
jhazmat.2017.11.011
Hwang Y-H, Kim D-G, Shin H-S (2011) Effects of synthesis conditions on the characteristics and
reactivity of nano scale zero valent iron. Appl Catal B Environ 105:144–150. https://doi.org/10.
1016/J.APCATB.2011.04.005
Hydutsky BW, Mack EJ, Beckerman BB et al (2007) Optimization of nano- and microiron transport
through sand columns using polyelectrolyte mixtures. Environ Sci Technol 41:6418–6424.
https://doi.org/10.1021/ES0704075
Hyman M, Dupont RR (2001) Groundwater remediation using carbon adsorption. In: Groundwater
and soil remediation: process design and cost estimating of proven technologies. ASCE Press,
Reston, VA, pp 109–135
380
R. Rodrigues et al.
