8 Reappraisal of Permeable Reactive Barrier as a Sustainable …
203
Human health effects of trichloroethylene: key findings and scientific issues. Environ Health
Perspect 121(3):303–311
Choi H, Giasuddin AB, Kanel SR (2007) Adsorption of humic acid onto nanoscale zero-valent iron
and its effect on arsenic removal. Environ Sci Technol 41:2022–2027
Cocos IA, Zagury GJ, Clément B, Samson R (2002) Multiple factor design for reactive mixture
selection for use in reactive walls in mine drainage treatment. Water Research 36(1):167–177
Conca JL (1997) Phosphate-induced metal stabilization (PIMS). Final Report to the U.S.
Environmental Protection Agency #68D60023
Conca JL, Wright J (2006) An Apatite II permeable reactive barrier to remediate groundwater
containing Zn, Pb and Cd. Appl Geochem 21:1288–1300
Courcelles B, Farahmand-Razavi AM, Gouvenot D, Filet AE (2011) Influence of precipitates on
hydraulic performance of permeable reactive barrier filters. Int J Geomech 11(2)
Daldrup T, Haarhoff K, Szathmary SC (1983) Toedliche nickel sulfate-intoxikation. Berichte zur
Gerichtlichen Medizin 41:141–144
Das N, Patel AK, Deka G, Das A, Sarma KP, Kumar M (2015) Geochemical controls and future perspective of arsenic mobilization for sustainable groundwater management: a study from Northeast
India. Groundw Sustain Dev 1(1–2):92–104
Deka BJ, Guo J, Jeong S, Kumar M, An AK (2020) Emerging investigator series: control of membrane fouling by dissolved algal organic matter using pre-oxidation with coagulation as seawater
pretreatment. Environ Sci: Water Res Technol 6(4):935–944
De Pourcq K, Ayora C, García-Gutiérrez M, Missana T, Carrera J (2015) A clay permeable reactive
barrier to remove Cs-137 from groundwater: column experiments. J Environ Radioactiv 149:36–
42
Ekong EB, Jaar BG, Weaver VM (2006) Lead-related nephrotoxicity: a review of the epidemiologic
evidence. J Int Soc Nephrol 70(12), 2074–2084
Elshkaki A, Graedel TE, Ciacci L, Reck BK (2018) Resource demand scenarios for the major
metals. Environ Sci Technol 52(5):2491–2497
Evanko CR, Dzombak DA (1997) Remediation of metals-contaminated soils and groundwater.
Pittsburgh, PA: Ground-water remediation technologies analysis center
Falck FY, Ricci A Jr, Wolff MS, Godbold J, Deckers J (1992) Pesticides and polychlorinated
biphenyl residues in human breast lipids and their relation to breast cancer. Arch Environ Health
47:143–146
Field Applications of In Situ Remediation Technologies: Permeable Reactive Barriers U.S. Environmental Protection Agency Office of Solid Waste and Emergency Response Technology Innovation
Office Washington, DC
Frost RL, Xi Y, He H (2010) Synthesis, characterization of palygorskite supported zero-valent iron
and its application for methylene blue adsorption. J Colloid Interface Sci 341(1):153–161
Gautam C Injoor (1999) Thesis on modeling of a permeable reactive barrier. New Jersey Institute
of Technology
Gavaskar AR (1999) Design and construction techniques for permeable reactive barriers. J Hazard
Mater 68(1–2):41–71
Geller JT, Holman HY, Su G, Conrad ME, Pruess K, Hunter-Cevera JC (2000) Flow dynamics and
potential for biodegradation of organic contaminants in fractured rock vadose zones. J Contam
Hydrology 43(1):63–90
Gibert O, Assal A, Devlin H, Elliot T, Kalin RM (2019) Performance of a field-scale biological
permeable reactive barrier for in-situ remediation of nitrate-contaminated groundwater. Sci Total
Environ 659:211–220
Gibert O, De Pablo J, Cortina JL, Ayora C (2004) Chemical characterisation of natural organic
substrates for biological mitigation of acid mine drainage. Water Res 38(19):4186–4196
Gillham RW, O’Hannesin SF (1994) Enhanced degradation of halogenated aliphatics by zero-valent
iron. Groundwater 32(6):958–967
203
Human health effects of trichloroethylene: key findings and scientific issues. Environ Health
Perspect 121(3):303–311
Choi H, Giasuddin AB, Kanel SR (2007) Adsorption of humic acid onto nanoscale zero-valent iron
and its effect on arsenic removal. Environ Sci Technol 41:2022–2027
Cocos IA, Zagury GJ, Clément B, Samson R (2002) Multiple factor design for reactive mixture
selection for use in reactive walls in mine drainage treatment. Water Research 36(1):167–177
Conca JL (1997) Phosphate-induced metal stabilization (PIMS). Final Report to the U.S.
Environmental Protection Agency #68D60023
Conca JL, Wright J (2006) An Apatite II permeable reactive barrier to remediate groundwater
containing Zn, Pb and Cd. Appl Geochem 21:1288–1300
Courcelles B, Farahmand-Razavi AM, Gouvenot D, Filet AE (2011) Influence of precipitates on
hydraulic performance of permeable reactive barrier filters. Int J Geomech 11(2)
Daldrup T, Haarhoff K, Szathmary SC (1983) Toedliche nickel sulfate-intoxikation. Berichte zur
Gerichtlichen Medizin 41:141–144
Das N, Patel AK, Deka G, Das A, Sarma KP, Kumar M (2015) Geochemical controls and future perspective of arsenic mobilization for sustainable groundwater management: a study from Northeast
India. Groundw Sustain Dev 1(1–2):92–104
Deka BJ, Guo J, Jeong S, Kumar M, An AK (2020) Emerging investigator series: control of membrane fouling by dissolved algal organic matter using pre-oxidation with coagulation as seawater
pretreatment. Environ Sci: Water Res Technol 6(4):935–944
De Pourcq K, Ayora C, García-Gutiérrez M, Missana T, Carrera J (2015) A clay permeable reactive
barrier to remove Cs-137 from groundwater: column experiments. J Environ Radioactiv 149:36–
42
Ekong EB, Jaar BG, Weaver VM (2006) Lead-related nephrotoxicity: a review of the epidemiologic
evidence. J Int Soc Nephrol 70(12), 2074–2084
Elshkaki A, Graedel TE, Ciacci L, Reck BK (2018) Resource demand scenarios for the major
metals. Environ Sci Technol 52(5):2491–2497
Evanko CR, Dzombak DA (1997) Remediation of metals-contaminated soils and groundwater.
Pittsburgh, PA: Ground-water remediation technologies analysis center
Falck FY, Ricci A Jr, Wolff MS, Godbold J, Deckers J (1992) Pesticides and polychlorinated
biphenyl residues in human breast lipids and their relation to breast cancer. Arch Environ Health
47:143–146
Field Applications of In Situ Remediation Technologies: Permeable Reactive Barriers U.S. Environmental Protection Agency Office of Solid Waste and Emergency Response Technology Innovation
Office Washington, DC
Frost RL, Xi Y, He H (2010) Synthesis, characterization of palygorskite supported zero-valent iron
and its application for methylene blue adsorption. J Colloid Interface Sci 341(1):153–161
Gautam C Injoor (1999) Thesis on modeling of a permeable reactive barrier. New Jersey Institute
of Technology
Gavaskar AR (1999) Design and construction techniques for permeable reactive barriers. J Hazard
Mater 68(1–2):41–71
Geller JT, Holman HY, Su G, Conrad ME, Pruess K, Hunter-Cevera JC (2000) Flow dynamics and
potential for biodegradation of organic contaminants in fractured rock vadose zones. J Contam
Hydrology 43(1):63–90
Gibert O, Assal A, Devlin H, Elliot T, Kalin RM (2019) Performance of a field-scale biological
permeable reactive barrier for in-situ remediation of nitrate-contaminated groundwater. Sci Total
Environ 659:211–220
Gibert O, De Pablo J, Cortina JL, Ayora C (2004) Chemical characterisation of natural organic
substrates for biological mitigation of acid mine drainage. Water Res 38(19):4186–4196
Gillham RW, O’Hannesin SF (1994) Enhanced degradation of halogenated aliphatics by zero-valent
iron. Groundwater 32(6):958–967
