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Volumn 9781118496978, Issue , 2015, Pages 1-25

Groundwater Water Remediation by Static Diffusion Using Nano-Zero Valent Metals (Fe0, Cu0, Al0), n-FeHn+, n-Fe(OH)x, n-FeOOH, n-Fe-[OxHy](n+/-)

Author keywords

Groundwater; TCE; Water treatment; Zero valent metal (ZVM)

Indexed keywords

FREE ENERGY; GIBBS FREE ENERGY; GROUNDWATER POLLUTION; HYDROCARBONS; NEGATIVE IONS; ORGANIC POLLUTANTS; OXIDATION; POSITIVE IONS; WATER TREATMENT;

EID: 84927577619     PISSN: None     EISSN: None     Source Type: Book    
DOI: 10.1002/9781118845530.ch1     Document Type: Chapter
Times cited : (3)

References (179)
  • 1
    • 79952708665 scopus 로고    scopus 로고
    • Assessment of influence of magnetic forces on aggregation of zero-valent iron nanoparticles
    • Rosicka D, Sembera J. Assessment of influence of magnetic forces on aggregation of zero-valent iron nanoparticles. Nanoscale Res Lett 2010;6 (10):6.
    • (2010) Nanoscale Res Lett , vol.6 , Issue.10 , pp. 6
    • Rosicka, D.1    Sembera, J.2
  • 2
    • 79960192317 scopus 로고    scopus 로고
    • Effect of magnetic field on the zero valent iron induced oxidation reaction
    • Kim DH, Kim J, Choi W. Effect of magnetic field on the zero valent iron induced oxidation reaction. J Hazard Mater 2011;192:928-931.
    • (2011) J Hazard Mater , vol.192 , pp. 928-931
    • Kim, D.H.1    Kim, J.2    Choi, W.3
  • 3
    • 67649171593 scopus 로고    scopus 로고
    • Magnetic characterisation and interaction modelling of zerovalent iron nanoparticles for the remediation of contaminated aquifers
    • Dalla VE, Coisson M, Appino C, Vinai F, Sethi R. Magnetic characterisation and interaction modelling of zerovalent iron nanoparticles for the remediation of contaminated aquifers. J Nanosci Nanotechnol 2009;9:3210-3218.
    • (2009) J Nanosci Nanotechnol , vol.9 , pp. 3210-3218
    • Dalla, V.E.1    Coisson, M.2    Appino, C.3    Vinai, F.4    Sethi, R.5
  • 4
    • 61449173823 scopus 로고    scopus 로고
    • Controllable synthesis, characterisation, and magnetic properties of nano-scale zerovalent iron with high Brunauer-Emmett-Teller surface area
    • Wang Q, Kanei SR, Park H, Ryu A, Choi H. Controllable synthesis, characterisation, and magnetic properties of nano-scale zerovalent iron with high Brunauer-Emmett-Teller surface area. J Nanopart Res 2009;11:749-755.
    • (2009) J Nanopart Res , vol.11 , pp. 749-755
    • Wang, Q.1    Kanei, S.R.2    Park, H.3    Ryu, A.4    Choi, H.5
  • 5
    • 0032146653 scopus 로고    scopus 로고
    • Nitrate reduction by metallic iron
    • Huang CP, Wang HW, Chiu PC. Nitrate reduction by metallic iron. Water Res 1998;32:2257-2264.
    • (1998) Water Res , vol.32 , pp. 2257-2264
    • Huang, C.P.1    Wang, H.W.2    Chiu, P.C.3
  • 6
    • 26244453389 scopus 로고    scopus 로고
    • Effects of iron surface pre-treatment on kinetics of aqueous nitrate reduction
    • Liou YH, Lo S-L, Lin C-J, Kuan WH, Weng SC. Effects of iron surface pre-treatment on kinetics of aqueous nitrate reduction. J Hazard Mater 2005;B126:189-195.
    • (2005) J Hazard Mater , vol.B126 , pp. 189-195
    • Liou, Y.H.1    Lo, S.-L.2    Lin, C.-J.3    Kuan, W.H.4    Weng, S.C.5
  • 8
    • 84858279484 scopus 로고    scopus 로고
    • Nanoscale zero-valent iron: future prospects for an emerging water treatment technology
    • Crane RA, Scott TB. Nanoscale zero-valent iron: future prospects for an emerging water treatment technology. J Hazard Mater 2012;211-212:112-125.
    • (2012) J Hazard Mater , vol.211-212 , pp. 112-125
    • Crane, R.A.1    Scott, T.B.2
  • 9
    • 79960880279 scopus 로고    scopus 로고
    • Aqueous contaminant removal by metallic iron: is the paradigm shifting?
    • Noubactep C. Aqueous contaminant removal by metallic iron: is the paradigm shifting? Water SA 2011;37:419-426.
    • (2011) Water SA , vol.37 , pp. 419-426
    • Noubactep, C.1
  • 10
    • 79959293542 scopus 로고    scopus 로고
    • Sustainable zero-valent metal (ZVM) water treatment associated with diffusion, infiltration, abstraction and recirculation
    • Antia DDJ. Sustainable zero-valent metal (ZVM) water treatment associated with diffusion, infiltration, abstraction and recirculation. Sustainability 2010;2:2988-3073.
    • (2010) Sustainability , vol.2 , pp. 2988-3073
    • Antia, D.D.J.1
  • 11
    • 84855602756 scopus 로고    scopus 로고
    • Use of zero-valent iron for waste water treatment
    • Junyapoon S. Use of zero-valent iron for waste water treatment. KMITL Sci Technol J 2005;5:587-595.
    • (2005) KMITL Sci Technol J , vol.5 , pp. 587-595
    • Junyapoon, S.1
  • 12
    • 0041375359 scopus 로고    scopus 로고
    • Nanoscale iron particles for environmental remediation: an overview
    • Zhang W-X. Nanoscale iron particles for environmental remediation: an overview. J Nanopart Res 2003;5:323-332.
    • (2003) J Nanopart Res , vol.5 , pp. 323-332
    • Zhang, W.-X.1
  • 13
    • 48749122982 scopus 로고    scopus 로고
    • Enhanced biological treatment of industrial waste water with bi-metallic zero-valent iron
    • Ma L, Zhang W-X. Enhanced biological treatment of industrial waste water with bi-metallic zero-valent iron. Environ Sci Technol 2008;42:5384-5389.
    • (2008) Environ Sci Technol , vol.42 , pp. 5384-5389
    • Ma, L.1    Zhang, W.-X.2
  • 14
  • 15
    • 0036160321 scopus 로고    scopus 로고
    • Mass transfer effects on kinetics of dibromoethane reduction by zero valent iron in packed-bed reactors
    • Loraine G, Burris D, Li L, Schoolfield J. Mass transfer effects on kinetics of dibromoethane reduction by zero valent iron in packed-bed reactors. J Environ Eng 2002;128:85-93.
    • (2002) J Environ Eng , vol.128 , pp. 85-93
    • Loraine, G.1    Burris, D.2    Li, L.3    Schoolfield, J.4
  • 16
    • 79953195600 scopus 로고    scopus 로고
    • A built-in zerovalent iron anaerobic reactor to enhance treatment of azo dye waste water
    • Zang Y, Jing Y, Quan X, Liu Y, Onu P. A built-in zerovalent iron anaerobic reactor to enhance treatment of azo dye waste water. J Water Sci Technol 2011;63:741-746.
    • (2011) J Water Sci Technol , vol.63 , pp. 741-746
    • Zang, Y.1    Jing, Y.2    Quan, X.3    Liu, Y.4    Onu, P.5
  • 17
    • 33749381483 scopus 로고    scopus 로고
    • Cost and performance report: nanoscale zero-valent iron technologies for source remediation
    • NAVFAC Naval Facilities Engineering Command, Port Hueneme: Engineering Service Center
    • Gavaskar A, Tatar L, Condit W. Cost and performance report: nanoscale zero-valent iron technologies for source remediation. NAVFAC Naval Facilities Engineering Command. Contract Report CR-05-007-ENV. Port Hueneme: Engineering Service Center; 2005. p 44.
    • (2005) , pp. 44
    • Gavaskar, A.1    Tatar, L.2    Condit, W.3
  • 18
    • 80051752889 scopus 로고    scopus 로고
    • Impact of solids formation and gas production on the permeability of ZVI PRBs
    • Henderson AD, Demond AH. Impact of solids formation and gas production on the permeability of ZVI PRBs. J Environ Sci 2011;137:689-696.
    • (2011) J Environ Sci , vol.137 , pp. 689-696
    • Henderson, A.D.1    Demond, A.H.2
  • 19
    • 84862513343 scopus 로고    scopus 로고
    • Modelling gas formation and mineral precipitation in a granular iron column
    • Jeen SW, Amos RT, Blowes DW. Modelling gas formation and mineral precipitation in a granular iron column. Environ Sci Technol 2012;46:6742-6749.
    • (2012) Environ Sci Technol , vol.46 , pp. 6742-6749
    • Jeen, S.W.1    Amos, R.T.2    Blowes, D.W.3
  • 20
    • 84863104997 scopus 로고    scopus 로고
    • Formation and control of self-sealing high permeability groundwater mounds in impermeable sediment: implications for SUDS and sustainable pressure mound management
    • Antia DDJ. Formation and control of self-sealing high permeability groundwater mounds in impermeable sediment: implications for SUDS and sustainable pressure mound management. Sustainability 2009;1:855-923.
    • (2009) Sustainability , vol.1 , pp. 855-923
    • Antia, D.D.J.1
  • 21
    • 84927574741 scopus 로고    scopus 로고
    • 2: parts I to IV
    • 2009;17(1):49-86; 2009;17(2):11-70; 2010;18(1):1-50
    • 2: parts I to IV. Indian J Petrol Geol 2009;17(1):49-86; 2009;17(2):11-70; 2010;18(1):1-50; 2011;18(2):1-45.
    • (2011) Indian J Petrol Geol , vol.18 , Issue.2 , pp. 1-45
    • Antia, D.D.J.1
  • 22
    • 84895374759 scopus 로고    scopus 로고
    • Interpretation of overland flow associated with infiltration devices placed in boulder clay and construction fill
    • Wong TSW, editor, New York: Nova Science Publishers
    • Antia DDJ. Interpretation of overland flow associated with infiltration devices placed in boulder clay and construction fill. In: Wong TSW, editor. Overland flow and surface runoff. New York: Nova Science Publishers; 2012. p 211-285.
    • (2012) Overland flow and surface runoff , pp. 211-285
    • Antia, D.D.J.1
  • 23
    • 84866446717 scopus 로고    scopus 로고
    • Interacting infiltration devices (field analysis, experimental observation and numerical modeling): prediction of seepage (overland flow) locations, mechanisms and volumes-implications for SUDS, groundwater raising projects and carbon sequestration projects
    • Hirsch G, Kappel B, editors, New York: Nova Science Publishers
    • Antia DDJ. Interacting infiltration devices (field analysis, experimental observation and numerical modeling): prediction of seepage (overland flow) locations, mechanisms and volumes-implications for SUDS, groundwater raising projects and carbon sequestration projects. In: Hirsch G, Kappel B, editors. Hydraulic Engineering: Structural Applications, Numerical Modeling and Environmental Impacts. New York: Nova Science Publishers; 2011. p 85-156.
    • (2011) Hydraulic Engineering: Structural Applications, Numerical Modeling and Environmental Impacts , pp. 85-156
    • Antia, D.D.J.1
  • 24
    • 0037385318 scopus 로고    scopus 로고
    • Nitrate removal in zero-valent iron packed columns
    • Westerhof P, James J. Nitrate removal in zero-valent iron packed columns. Water Res 2003;37:1818-1830.
    • (2003) Water Res , vol.37 , pp. 1818-1830
    • Westerhof, P.1    James, J.2
  • 25
    • 16244385331 scopus 로고    scopus 로고
    • Fluidized zero valent iron bed for nitrate removal
    • Chen YM, Li CW, Chen SS. Fluidized zero valent iron bed for nitrate removal. Chemosphere 2005;59:753-759.
    • (2005) Chemosphere , vol.59 , pp. 753-759
    • Chen, Y.M.1    Li, C.W.2    Chen, S.S.3
  • 26
    • 84901269232 scopus 로고    scopus 로고
    • Nitrate removal by synthetic nanoscale zero-valent iron in aqueous recirculated reactor
    • Hsu J-C, Liao C-H, Wei Y-L. Nitrate removal by synthetic nanoscale zero-valent iron in aqueous recirculated reactor. Sustain Environ Res 2011;21:353-359.
    • (2011) Sustain Environ Res , vol.21 , pp. 353-359
    • Hsu, J.-C.1    Liao, C.-H.2    Wei, Y.-L.3
  • 27
    • 84859343361 scopus 로고    scopus 로고
    • Nitrate and ammonium ions removal from groundwater by a hybrid system of zero-valent iron combined with absorbents
    • Ji MK, Park WB, Khan MA, Abou-Shanab RA, Kim Y, Cho Y, Choi J, Song H, Jeon BH. Nitrate and ammonium ions removal from groundwater by a hybrid system of zero-valent iron combined with absorbents. J Environ Monit 2012;14:1153-1158.
    • (2012) J Environ Monit , vol.14 , pp. 1153-1158
    • Ji, M.K.1    Park, W.B.2    Khan, M.A.3    Abou-shanab, R.A.4    Kim, Y.5    Cho, Y.6    Choi, J.7    Song, H.8    Jeon, B.H.9
  • 29
    • 84978501889 scopus 로고    scopus 로고
    • Enhanced reduction of nitrate in groundwater by zero-valent iron with activated red mud
    • Cho D-W, Abou-Shnab RAI, Kim Y, Jeon B-H, Song H. Enhanced reduction of nitrate in groundwater by zero-valent iron with activated red mud. Geosyst Eng 2011;14:65-70.
    • (2011) Geosyst Eng , vol.14 , pp. 65-70
    • Cho, D.-W.1    Abou-shnab, R.A.I.2    Kim, Y.3    Jeon, B.-H.4    Song, H.5
  • 31
    • 57249089396 scopus 로고    scopus 로고
    • Reduction of nitrite by ultrasound-dispersed nanoscale zero-valent iron particles
    • Liang F, Fan J, Guo Y, Fan M, Wang J, Yang H. Reduction of nitrite by ultrasound-dispersed nanoscale zero-valent iron particles. Ind Eng Chem Res 2008;47:8550-8554.
    • (2008) Ind Eng Chem Res , vol.47 , pp. 8550-8554
    • Liang, F.1    Fan, J.2    Guo, Y.3    Fan, M.4    Wang, J.5    Yang, H.6
  • 32
    • 77951103914 scopus 로고    scopus 로고
    • Reductive denitrification kinetics of nitrate by zero-valent iron
    • Zhang Z, Hao Z, Yang Y, Zhang J, Wang Q, Xu X. Reductive denitrification kinetics of nitrate by zero-valent iron. Desalination 2010;257:158-162.
    • (2010) Desalination , vol.257 , pp. 158-162
    • Zhang, Z.1    Hao, Z.2    Yang, Y.3    Zhang, J.4    Wang, Q.5    Xu, X.6
  • 33
    • 33745888410 scopus 로고    scopus 로고
    • Nitrite reduction and formation of corrosion coatings in zerovalent iron systems
    • Huang YH, Zhang TC. Nitrite reduction and formation of corrosion coatings in zerovalent iron systems. Chemosphere 2006;64:937-943.
    • (2006) Chemosphere , vol.64 , pp. 937-943
    • Huang, Y.H.1    Zhang, T.C.2
  • 34
    • 78349237270 scopus 로고    scopus 로고
    • Perchlorate removal using granular activated carbon supported iron compounds: synthesis, characterisation, and reactivity
    • Xu J, Gao N, Tang Y, Deng Y, Sui M. Perchlorate removal using granular activated carbon supported iron compounds: synthesis, characterisation, and reactivity. J Environ Sci 2010;23:1807-1813.
    • (2010) J Environ Sci , vol.23 , pp. 1807-1813
    • Xu, J.1    Gao, N.2    Tang, Y.3    Deng, Y.4    Sui, M.5
  • 35
    • 34848911672 scopus 로고    scopus 로고
    • Perchlorate remediation in aquatic systems by zero valent iron
    • Huang H, Sorial GA. Perchlorate remediation in aquatic systems by zero valent iron. Environ Eng Sci 2007;24:917-926.
    • (2007) Environ Eng Sci , vol.24 , pp. 917-926
    • Huang, H.1    Sorial, G.A.2
  • 37
    • 77954956599 scopus 로고    scopus 로고
    • Perchlorate removal by acidified zero-valent aluminium and aluminium hydroxide
    • Lien H-L, Yi CC, Lee Y-C. Perchlorate removal by acidified zero-valent aluminium and aluminium hydroxide. Chemosphere 2010;80:888-893.
    • (2010) Chemosphere , vol.80 , pp. 888-893
    • Lien, H.-L.1    Yi, C.C.2    Lee, Y.-C.3
  • 38
    • 0021335691 scopus 로고
    • The Mossbauer spectra of hydroxycarbonate green rusts
    • Murad E, Taylor RM. The Mossbauer spectra of hydroxycarbonate green rusts. Clay Min 1984;19:77-83.
    • (1984) Clay Min , vol.19 , pp. 77-83
    • Murad, E.1    Taylor, R.M.2
  • 39
    • 57249111700 scopus 로고    scopus 로고
    • Formation of hydroxysulphate and hydroxycarbonate green rusts in the presence of zinc using time-resolved in situ small and wide angle X-ray scattering
    • Ahmed IAM, Shaw S, Benning LG. Formation of hydroxysulphate and hydroxycarbonate green rusts in the presence of zinc using time-resolved in situ small and wide angle X-ray scattering. Min Mag 2008;72:159-162.
    • (2008) Min Mag , vol.72 , pp. 159-162
    • Ahmed, I.A.M.1    Shaw, S.2    Benning, L.G.3
  • 40
    • 4944257657 scopus 로고    scopus 로고
    • Significance of Iron (11,111) hydroxycarbonate green rust in arsenic remediation using zerovalent iron in laboratory column tests
    • Su C, Puls RW. Significance of Iron (11,111) hydroxycarbonate green rust in arsenic remediation using zerovalent iron in laboratory column tests. Environ Sci Technol 2004;38:5224-5231.
    • (2004) Environ Sci Technol , vol.38 , pp. 5224-5231
    • Su, C.1    Puls, R.W.2
  • 41
    • 0346098290 scopus 로고    scopus 로고
    • Reduction of halogenated ethanes by green rust
    • O'Loughlin EJ, Burris DR. Reduction of halogenated ethanes by green rust. Environ Toxicol Chem 2004;23:41-48.
    • (2004) Environ Toxicol Chem , vol.23 , pp. 41-48
    • O'Loughlin, E.J.1    Burris, D.R.2
  • 42
    • 0028165460 scopus 로고
    • The formation of green rust and its transformation to lepidocrocite
    • Schwertmann U, Fechter H. The formation of green rust and its transformation to lepidocrocite. Clay Min 1994;29:87-92.
    • (1994) Clay Min , vol.29 , pp. 87-92
    • Schwertmann, U.1    Fechter, H.2
  • 43
    • 0025583604 scopus 로고
    • Formation of synthetic analogues of double metal-hydroxy carbonate minerals under controlled pH conditions: I. synthesis of pyroaurite and reevesitie
    • Hansen HCB, Taylor RM. Formation of synthetic analogues of double metal-hydroxy carbonate minerals under controlled pH conditions: I. synthesis of pyroaurite and reevesitie. Clay Min 1990;25:161-179.
    • (1990) Clay Min , vol.25 , pp. 161-179
    • Hansen, H.C.B.1    Taylor, R.M.2
  • 44
    • 0026312728 scopus 로고
    • Formation of synthetic analogues of double metal-hydroxy carbonate minerals under controlled pH conditions: II. synthesis of desautelsite
    • Hansen HCB, Taylor RM. Formation of synthetic analogues of double metal-hydroxy carbonate minerals under controlled pH conditions: II. synthesis of desautelsite. Clay Min 1991;26:507-525.
    • (1991) Clay Min , vol.26 , pp. 507-525
    • Hansen, H.C.B.1    Taylor, R.M.2
  • 46
    • 0032855172 scopus 로고    scopus 로고
    • Interaction of synthetic sulphate green rust with phosphate and the crystallization of vivianite
    • Hansen HCB, Poulsen IF. Interaction of synthetic sulphate green rust with phosphate and the crystallization of vivianite. Clays Clay Min 1999;47:312-318.
    • (1999) Clays Clay Min , vol.47 , pp. 312-318
    • Hansen, H.C.B.1    Poulsen, I.F.2
  • 47
    • 77951670212 scopus 로고    scopus 로고
    • Formation of green rust sulphate: a combined in situ time-resolved X-ray scattering and electrochemical study
    • Ahmed IAM, Benning LG, Kakonyi G, Sumoondur AD, Terrill NJ, Shaw S. Formation of green rust sulphate: a combined in situ time-resolved X-ray scattering and electrochemical study. Langmuir 2010;26:6593-6603.
    • (2010) Langmuir , vol.26 , pp. 6593-6603
    • Ahmed, I.A.M.1    Benning, L.G.2    Kakonyi, G.3    Sumoondur, A.D.4    Terrill, N.J.5    Shaw, S.6
  • 48
    • 0642311224 scopus 로고    scopus 로고
    • Laboratory evaluation of zero-valent iron to treat water impacted by acid mine drainage
    • Wilkin R, McNeil MS. Laboratory evaluation of zero-valent iron to treat water impacted by acid mine drainage. Chemosphere 2003;53:715-725.
    • (2003) Chemosphere , vol.53 , pp. 715-725
    • Wilkin, R.1    McNeil, M.S.2
  • 49
    • 85192430661 scopus 로고    scopus 로고
    • Wander MCF Environmental redox reactions of iron [PhD thesis]
    • New York: Stoney Brook University
    • Wander MCF Environmental redox reactions of iron [PhD thesis]. New York: Stoney Brook University; 2007.
    • (2007)
  • 51
    • 85192398121 scopus 로고    scopus 로고
    • Removal of hydrogen sulphide with nanoscale zero-valent iron from piggery waste water [MSc thesis]
    • Taiwan: National University Kaoshiung
    • Yang C-W. Removal of hydrogen sulphide with nanoscale zero-valent iron from piggery waste water [MSc thesis]. Taiwan: National University Kaoshiung; 2011.
    • (2011)
    • Yang, C.-W.1
  • 52
    • 39649108197 scopus 로고    scopus 로고
    • Factors affecting the yield of oxidants from the reaction of nanoparticulate zero-valent iron and oxygen
    • Keenan CR, Sedlak DL. Factors affecting the yield of oxidants from the reaction of nanoparticulate zero-valent iron and oxygen. Environ Sci Technol 2008;42:1262-1267.
    • (2008) Environ Sci Technol , vol.42 , pp. 1262-1267
    • Keenan, C.R.1    Sedlak, D.L.2
  • 54
    • 0028535136 scopus 로고
    • Enhanced degradation of halogenated aliphatics by zero valent iron
    • Gillham RW, O'Hannesian SF. Enhanced degradation of halogenated aliphatics by zero valent iron. Ground Water 1994;32:958-967.
    • (1994) Ground Water , vol.32 , pp. 958-967
    • Gillham, R.W.1    O'Hannesian, S.F.2
  • 55
    • 1642517072 scopus 로고    scopus 로고
    • Kinetic models for volatile chlorinated hydrocarbons removal by zero-valent iron
    • Janda V, Vasek P, Bizova J, Belohlav Z. Kinetic models for volatile chlorinated hydrocarbons removal by zero-valent iron. Chemosphere 2004;54:917-925.
    • (2004) Chemosphere , vol.54 , pp. 917-925
    • Janda, V.1    Vasek, P.2    Bizova, J.3    Belohlav, Z.4
  • 56
    • 14744306930 scopus 로고    scopus 로고
    • TCE dechlorination rates, pathways, and efficiency of nanoscale iron particles with different properties
    • Liu Y, Majetich SA, Tilton RD, Sholl DS, Lowry GV. TCE dechlorination rates, pathways, and efficiency of nanoscale iron particles with different properties. Environ Sci Technol 2005;39:1338-1345.
    • (2005) Environ Sci Technol , vol.39 , pp. 1338-1345
    • Liu, Y.1    Majetich, S.A.2    Tilton, R.D.3    Sholl, D.S.4    Lowry, G.V.5
  • 57
    • 84865556539 scopus 로고    scopus 로고
    • A model to characterize the kinetics of dechlorination of tetrachloroethylene and trichloroethylene by a zero valent iron permeable reactive barrier [MSc thesis]
    • USA: Worcester Polytechnic Institute
    • Ulsamer S. A model to characterize the kinetics of dechlorination of tetrachloroethylene and trichloroethylene by a zero valent iron permeable reactive barrier [MSc thesis]. USA: Worcester Polytechnic Institute; 2011.
    • (2011)
    • Ulsamer, S.1
  • 58
    • 84927576995 scopus 로고    scopus 로고
    • Safe, in situ methodologies for the destruction of triacetone triperoxide and other explosive peroxides
    • November 22
    • Clausen III C, Geiger CL, Sigman M, Fidler R. Safe, in situ methodologies for the destruction of triacetone triperoxide and other explosive peroxides. US Patent 8062442 B1. November 22, 2011.
    • (2011)
    • Clausen, C.1    Geiger, C.L.2    Sigman, M.3    Fidler, R.4
  • 59
    • 0033957101 scopus 로고    scopus 로고
    • Reduction of azo dyes with zero valent iron
    • Nam S, Tratnyek PG. Reduction of azo dyes with zero valent iron. Water Res 2000;34:1837-1845.
    • (2000) Water Res , vol.34 , pp. 1837-1845
    • Nam, S.1    Tratnyek, P.G.2
  • 60
    • 84907686430 scopus 로고    scopus 로고
    • Rapid degradation of methyl orange with nanoscale zerovalent iron particles
    • Shih Y-H, Tso C-P, Tung L-Y. Rapid degradation of methyl orange with nanoscale zerovalent iron particles. J Environ Eng Manage 2010;20:137-143.
    • (2010) J Environ Eng Manage , vol.20 , pp. 137-143
    • Shih, Y.-H.1    Tso, C.-P.2    Tung, L.-Y.3
  • 61
    • 80052622370 scopus 로고    scopus 로고
    • Removal of methyl orange from aqueous solution using bentonite-supported nanoscale zero-valent iron
    • Chen ZX, Jin XY, Chen Z, Megharai M, Naidu R. Removal of methyl orange from aqueous solution using bentonite-supported nanoscale zero-valent iron. J Colloid Interface Sci 2011;15:601-607.
    • (2011) J Colloid Interface Sci , vol.15 , pp. 601-607
    • Chen, Z.X.1    Jin, X.Y.2    Chen, Z.3    Megharai, M.4    Naidu, R.5
  • 62
    • 0002352103 scopus 로고    scopus 로고
    • Rapid reductive dechlorination of atrazine by zero valent iron under acidic conditions
    • Dombek T, Dolan E, Schultz J, Klarup D. Rapid reductive dechlorination of atrazine by zero valent iron under acidic conditions. Environ Pollut 2001;111:21-27.
    • (2001) Environ Pollut , vol.111 , pp. 21-27
    • Dombek, T.1    Dolan, E.2    Schultz, J.3    Klarup, D.4
  • 64
    • 33845308290 scopus 로고    scopus 로고
    • Zero-valent iron treatment of RDX-containing and perchlorate containing wastewaters from an ammunition-manufacturing plant elevated temperatures
    • Oh SY, Cha DK, Chiu PC, Kim BJ. Zero-valent iron treatment of RDX-containing and perchlorate containing wastewaters from an ammunition-manufacturing plant elevated temperatures. Water Sci Technol 2006;54:47-53.
    • (2006) Water Sci Technol , vol.54 , pp. 47-53
    • Oh, S.Y.1    Cha, D.K.2    Chiu, P.C.3    Kim, B.J.4
  • 65
    • 42749087639 scopus 로고    scopus 로고
    • Single-step treatment of 2,4-dinitrotoluene via zero-valent metal reduction and chemical oxidation
    • Thomas JM, Hernandez R, Kuo CH. Single-step treatment of 2,4-dinitrotoluene via zero-valent metal reduction and chemical oxidation. J Hazard Mater 2008;155:193-198.
    • (2008) J Hazard Mater , vol.155 , pp. 193-198
    • Thomas, J.M.1    Hernandez, R.2    Kuo, C.H.3
  • 66
    • 77953716952 scopus 로고    scopus 로고
    • Degradation of 2,4-dinitrotoluene by persulphate activated with zero-valent iron
    • Oh SY, Kang SG, Chiu PC. Degradation of 2,4-dinitrotoluene by persulphate activated with zero-valent iron. Sci Total Environ 2010;408:3464-3468.
    • (2010) Sci Total Environ , vol.408 , pp. 3464-3468
    • Oh, S.Y.1    Kang, S.G.2    Chiu, P.C.3
  • 67
    • 34047128700 scopus 로고    scopus 로고
    • Effectiveness of zerovalent iron and nickel catalysts for degrading chlorinated solvents and n-nitrosodimethylamine in natural groundwater
    • Schaefer CE, Topoleski C, Fuller ME. Effectiveness of zerovalent iron and nickel catalysts for degrading chlorinated solvents and n-nitrosodimethylamine in natural groundwater. Water Environ Res 2007;79:57-62.
    • (2007) Water Environ Res , vol.79 , pp. 57-62
    • Schaefer, C.E.1    Topoleski, C.2    Fuller, M.E.3
  • 69
    • 85192427572 scopus 로고    scopus 로고
    • Degradation of TATP, TNT, and RDX using mechanically alloyed metals
    • January 10
    • Clausen C, Geiger C, Sigman M, Fidler R. Degradation of TATP, TNT, and RDX using mechanically alloyed metals. US Patent 8092622 B1. January 10, 2012.
    • (2012)
    • Clausen, C.1    Geiger, C.2    Sigman, M.3    Fidler, R.4
  • 70
    • 0041430726 scopus 로고    scopus 로고
    • Enhancing Fenton oxidation of TNT and RDX through pretreatment with zero-valent iron
    • Oh S-Y, Chiu PC, Kim BJ, Cha DK. Enhancing Fenton oxidation of TNT and RDX through pretreatment with zero-valent iron. Water Res 2003;37:4275-4283.
    • (2003) Water Res , vol.37 , pp. 4275-4283
    • Oh, S.-Y.1    Chiu, P.C.2    Kim, B.J.3    Cha, D.K.4
  • 71
    • 33846230951 scopus 로고    scopus 로고
    • Degradation of explosives-related compounds using nickel catalysts
    • Fuller ME, Schafer CE, Lowey JM. Degradation of explosives-related compounds using nickel catalysts. Chemosphere 2007;67:419-427.
    • (2007) Chemosphere , vol.67 , pp. 419-427
    • Fuller, M.E.1    Schafer, C.E.2    Lowey, J.M.3
  • 72
    • 27144509198 scopus 로고    scopus 로고
    • Transformation of hexahydro 1,3, 5-trinitro-1,3,5-triazine (RDX), octahydroxo-1,3,5,7-tetranitro-1,3,5,7-tetrazocine (HMX), and methylenedinitramine (MDNA) with elemental iron
    • Oh SY, Cha DK, Kim BJ, Chin PC. Transformation of hexahydro 1,3, 5-trinitro-1,3,5-triazine (RDX), octahydroxo-1,3,5,7-tetranitro-1,3,5,7-tetrazocine (HMX), and methylenedinitramine (MDNA) with elemental iron. Environ Toxicol Chem 2005;24:2812-2819.
    • (2005) Environ Toxicol Chem , vol.24 , pp. 2812-2819
    • Oh, S.Y.1    Cha, D.K.2    Kim, B.J.3    Chin, P.C.4
  • 73
    • 84927577172 scopus 로고    scopus 로고
    • Environmental remediation of TNT using nanoscale zero-valent iron [MSc thesis]
    • Florida: University of South Florida
    • Echols E. Environmental remediation of TNT using nanoscale zero-valent iron [MSc thesis]. Florida: University of South Florida; 2009.
    • (2009)
    • Echols, E.1
  • 74
    • 84899113410 scopus 로고    scopus 로고
    • Enhanced degradation of TNT and RDX by bio-reduced iron bearing soil minerals
    • Cho C, Bae S, Lee W. Enhanced degradation of TNT and RDX by bio-reduced iron bearing soil minerals. Adv Environ Res 2012;1:1-14.
    • (2012) Adv Environ Res , vol.1 , pp. 1-14
    • Cho, C.1    Bae, S.2    Lee, W.3
  • 75
    • 64549120610 scopus 로고    scopus 로고
    • Combined zero-valent iron and Fenton processes for the treatment of Brazilian TNT industry wastewater
    • Barreto-Rodrigues M, Silva FT, Paiva TCB. Combined zero-valent iron and Fenton processes for the treatment of Brazilian TNT industry wastewater. J Hazard Mater 2009;165:1224-1228.
    • (2009) J Hazard Mater , vol.165 , pp. 1224-1228
    • Barreto-rodrigues, M.1    Silva, F.T.2    Paiva, T.C.B.3
  • 76
    • 84927576996 scopus 로고    scopus 로고
    • Mitigation of irrigation water using zero-valent iron treatment
    • June 22
    • Jin Y, Chiu P. Mitigation of irrigation water using zero-valent iron treatment. Patent WO/2011/163346. June 22, 2011.
    • (2011)
    • Jin, Y.1    Chiu, P.2
  • 77
    • 33847630742 scopus 로고    scopus 로고
    • Degradation of disinfection byproducts by carbonate green rust
    • Chun CL, Hozalski RM, Arnold WA. Degradation of disinfection byproducts by carbonate green rust. Environ Sci Technol 2007;41:1615-1621.
    • (2007) Environ Sci Technol , vol.41 , pp. 1615-1621
    • Chun, C.L.1    Hozalski, R.M.2    Arnold, W.A.3
  • 78
    • 48449103739 scopus 로고    scopus 로고
    • Fine structure characterisation of zero-valent iron nano-particles for decontamination of nitrites and nitrates in waste water and ground water
    • 025015 9
    • Lin K-S, Chang N-B, Chuang T-D. Fine structure characterisation of zero-valent iron nano-particles for decontamination of nitrites and nitrates in waste water and ground water. Sci Technol Adv Mater 2008;9:025015 9.
    • (2008) Sci Technol Adv Mater , vol.9
    • Lin, K.-S.1    Chang, N.-B.2    Chuang, T.-D.3
  • 79
    • 33846618256 scopus 로고    scopus 로고
    • Overview of in-situ applicable nitrate removal processes
    • Rocca CD, Belgiorno V, Meric S. Overview of in-situ applicable nitrate removal processes. Desalination 2007;204:46-62.
    • (2007) Desalination , vol.204 , pp. 46-62
    • Rocca, C.D.1    Belgiorno, V.2    Meric, S.3
  • 80
    • 33846844942 scopus 로고    scopus 로고
    • Degradation of obsolete DDT by Fenton oxidation with zero-valent iron
    • Boussahel R, Harik D, Mammar M, Lamara-Mohamed S. Degradation of obsolete DDT by Fenton oxidation with zero-valent iron. Desalination 2007;206:369-372.
    • (2007) Desalination , vol.206 , pp. 369-372
    • Boussahel, R.1    Harik, D.2    Mammar, M.3    Lamara-mohamed, S.4
  • 81
    • 79957760604 scopus 로고    scopus 로고
    • Degradation of lindane contaminated soil using zero-valent iron, nanoparticles
    • Singh R, Singh A, Misra V, Singh RP. Degradation of lindane contaminated soil using zero-valent iron, nanoparticles. J Biomed Nanotechnol 2011;7:175-176.
    • (2011) J Biomed Nanotechnol , vol.7 , pp. 175-176
    • Singh, R.1    Singh, A.2    Misra, V.3    Singh, R.P.4
  • 82
    • 77953697477 scopus 로고    scopus 로고
    • Reductive dechlorination of organochlorine pesticides in soils from an abandoned manufacturing facility by zero-valent iron
    • Cong X, Xue N, Wang S, Li K, Li F. Reductive dechlorination of organochlorine pesticides in soils from an abandoned manufacturing facility by zero-valent iron. Sci Total Environ 2010;408:3418-3423.
    • (2010) Sci Total Environ , vol.408 , pp. 3418-3423
    • Cong, X.1    Xue, N.2    Wang, S.3    Li, K.4    Li, F.5
  • 83
    • 39849096852 scopus 로고    scopus 로고
    • Rapid removal of flutriafol in water by zero-valent iron powder
    • Ghauch A. Rapid removal of flutriafol in water by zero-valent iron powder. Chemosphere 2008;71:816-826.
    • (2008) Chemosphere , vol.71 , pp. 816-826
    • Ghauch, A.1
  • 84
    • 77949861588 scopus 로고    scopus 로고
    • Reductive dechlorination of chloroacetanilide herbicide (alachor) using zero-valent iron nanoparticles
    • Thompson JM, Chislom BJ, Bezbaruah AN. Reductive dechlorination of chloroacetanilide herbicide (alachor) using zero-valent iron nanoparticles. Environ Eng Sci 2010;27:227-232.
    • (2010) Environ Eng Sci , vol.27 , pp. 227-232
    • Thompson, J.M.1    Chislom, B.J.2    Bezbaruah, A.N.3
  • 85
    • 84909981702 scopus 로고    scopus 로고
    • Application of nano-zerovalent iron for treating metolachor in aqueous solution
    • Suntornchot P, Satapanajaru T, Comfort SD. Application of nano-zerovalent iron for treating metolachor in aqueous solution. World Acad Sci Eng Technol 2010;72:625-628.
    • (2010) World Acad Sci Eng Technol , vol.72 , pp. 625-628
    • Suntornchot, P.1    Satapanajaru, T.2    Comfort, S.D.3
  • 86
    • 0035012219 scopus 로고    scopus 로고
    • Degradation of benomyl, picloram, and dicamba in a conical apparatus by zero-valent iron powder
    • Ghauch A. Degradation of benomyl, picloram, and dicamba in a conical apparatus by zero-valent iron powder. Chemosphere 2001;43:1109-1117.
    • (2001) Chemosphere , vol.43 , pp. 1109-1117
    • Ghauch, A.1
  • 87
    • 0348252206 scopus 로고    scopus 로고
    • Fenton's oxidation of MTBE with zero valent iron
    • Berendahl JA, Thies TP. Fenton's oxidation of MTBE with zero valent iron. Water Res 2004;38:327-334.
    • (2004) Water Res , vol.38 , pp. 327-334
    • Berendahl, J.A.1    Thies, T.P.2
  • 88
    • 26944499083 scopus 로고    scopus 로고
    • Using nanoscale zero-valent iron for the remediation of polycyclic aromatic hydrocarbons contaminated soil
    • Chang M-C, Shu H-Y, Hsieh W-P, Wang M-C. Using nanoscale zero-valent iron for the remediation of polycyclic aromatic hydrocarbons contaminated soil. J Air Waste Manage Assoc 2005;55:1200-1207.
    • (2005) J Air Waste Manage Assoc , vol.55 , pp. 1200-1207
    • Chang, M.-C.1    Shu, H.-Y.2    Hsieh, W.-P.3    Wang, M.-C.4
  • 89
    • 33847727540 scopus 로고    scopus 로고
    • Remediation of soil contaminated with pyrene using ground nanoscale zero-valent iron
    • Chang M-C, Shu H-Y, Hsieh W-P, Wang M-C. Remediation of soil contaminated with pyrene using ground nanoscale zero-valent iron. J Air Waste Manage Assoc 2007;57:221-227.
    • (2007) J Air Waste Manage Assoc , vol.57 , pp. 221-227
    • Chang, M.-C.1    Shu, H.-Y.2    Hsieh, W.-P.3    Wang, M.-C.4
  • 90
    • 2442552811 scopus 로고    scopus 로고
    • Reduction of aromatic hydrocarbons by zero-valent iron and palladium catalyst
    • Zachry T, editor, March 28-April 1, American Chemical Society; 2004, Available at, Accessed June 2, 2014
    • Kim Y-H, Shin WS, Ko S-O, Kim M-C. Reduction of aromatic hydrocarbons by zero-valent iron and palladium catalyst. In: Zachry T, editor, Environmental and Waste Management Symposium; March 28-April 1, 2004; American Chemical Society; 2004. 5 pp. Available at http://ersdprojects.science.doe.gov/ersd/workshop_pdfs/california_2004/p132.pdf. Accessed June 2, 2014.
    • (2004) Environmental and Waste Management Symposium , pp. 5
    • Kim, Y.-H.1    Shin, W.S.2    Ko, S.-O.3    Kim, M.-C.4
  • 91
    • 34047241294 scopus 로고    scopus 로고
    • Elimination of phenol and aromatic compounds by zero valent iron and EDTA at low temperature and atmospheric pressure
    • Sanchez I, Stuber F, Font J, Fortuny A, Fabregat A, Bengoa C. Elimination of phenol and aromatic compounds by zero valent iron and EDTA at low temperature and atmospheric pressure. Chemosphere 2007;68:338-344.
    • (2007) Chemosphere , vol.68 , pp. 338-344
    • Sanchez, I.1    Stuber, F.2    Font, J.3    Fortuny, A.4    Fabregat, A.5    Bengoa, C.6
  • 92
    • 0040296767 scopus 로고
    • Formation of hydrocarbons in the electrochemical reduction of carbon dioxide at a copper electrode in aqueous solution
    • Hori Y, Murata A, Takahashi R. Formation of hydrocarbons in the electrochemical reduction of carbon dioxide at a copper electrode in aqueous solution. J Chem Soc Faraday Trans 1 1985;85:2309-2326.
    • (1985) J Chem Soc Faraday Trans 1 , vol.85 , pp. 2309-2326
    • Hori, Y.1    Murata, A.2    Takahashi, R.3
  • 94
    • 0030890059 scopus 로고    scopus 로고
    • Hydrocarbon formation in metallic iron/water systems
    • Deng B, Cambell TJ, Burris DR. Hydrocarbon formation in metallic iron/water systems. Environ Sci Technol 1997;31:1185-1190.
    • (1997) Environ Sci Technol , vol.31 , pp. 1185-1190
    • Deng, B.1    Cambell, T.J.2    Burris, D.R.3
  • 95
    • 47649102608 scopus 로고    scopus 로고
    • Oil polymerisation and fluid expulsion from low temperature, low maturity, over pressured sediments
    • Antia DDJ. Oil polymerisation and fluid expulsion from low temperature, low maturity, over pressured sediments. J Petrol Geol 2008;31:263-282.
    • (2008) J Petrol Geol , vol.31 , pp. 263-282
    • Antia, D.D.J.1
  • 96
    • 84927573763 scopus 로고    scopus 로고
    • Hydrocarbon formation in immature sediments
    • Antia DDJ. Hydrocarbon formation in immature sediments. Adv Petrol Expl Dev 2011;1:1-13.
    • (2011) Adv Petrol Expl Dev , vol.1 , pp. 1-13
    • Antia, D.D.J.1
  • 97
    • 85192400071 scopus 로고    scopus 로고
    • Polymerisation theory for a low temperature catalytic formation of petroleum hydrocarbons involving carbon dioxide, methane and hydrogen in sedimentary rocks
    • Antia DDJ. Polymerisation theory for a low temperature catalytic formation of petroleum hydrocarbons involving carbon dioxide, methane and hydrogen in sedimentary rocks. J Appl Geochem 2011;13:142-148.
    • (2011) J Appl Geochem , vol.13 , pp. 142-148
    • Antia, D.D.J.1
  • 98
    • 84927574741 scopus 로고    scopus 로고
    • Oil reserves attributable to low temperature and high pressure catalytic processes
    • Antia DDJ. Oil reserves attributable to low temperature and high pressure catalytic processes. Indian J Petrol Geol 2011; 19 (1):1-44.
    • (2011) Indian J Petrol Geol , vol.19 , Issue.1 , pp. 1-44
    • Antia, D.D.J.1
  • 100
    • 26444556437 scopus 로고
    • Colloidal iron dispersions prepared via the polymer catalysed decomposition of iron pentacarbonyl
    • Smith T, Wychick D. Colloidal iron dispersions prepared via the polymer catalysed decomposition of iron pentacarbonyl. J Phys Chem 1980;84:1621-1629.
    • (1980) J Phys Chem , vol.84 , pp. 1621-1629
    • Smith, T.1    Wychick, D.2
  • 101
    • 69949133579 scopus 로고    scopus 로고
    • Basic concepts of environmental geochemistry of sulphide mine-waste
    • XXIV Curso Latino de Metalogina, August22-September 2, 2005, Lima, Peru Colorado: UNESCO-SEG, SEG
    • Dold B. Basic concepts of environmental geochemistry of sulphide mine-waste. Mineralogia, geoquimica y geomicrobiologia para el manejo ambiental de desechos mineros. XXIV Curso Latino de Metalogina, August22-September 2, 2005, Lima, Peru Colorado: UNESCO-SEG, SEG; 2005. 36 pp.
    • (2005) Mineralogia, geoquimica y geomicrobiologia para el manejo ambiental de desechos mineros , pp. 36
    • Dold, B.1
  • 102
    • 79956021945 scopus 로고    scopus 로고
    • Basic concepts in environmental geochemistry of sulfidic mine-waste management
    • Kumar ES, editor, Croatia: Intech
    • Dold B. Basic concepts in environmental geochemistry of sulfidic mine-waste management. In: Kumar ES, editor. Waste Management. Croatia: Intech; 2010. p 173-198.
    • (2010) Waste Management , pp. 173-198
    • Dold, B.1
  • 104
    • 84886136730 scopus 로고    scopus 로고
    • Simplified procedure for constructing Porbaix diagrams
    • Revie RW, editor, 3rd ed. Hoboken: John Wiley & Sons Inc
    • Verink ED. Simplified procedure for constructing Porbaix diagrams. In: Revie RW, editor. Uhlig's Corrosion Handbook. 3rd ed. Hoboken: John Wiley & Sons Inc; 2011.
    • (2011) Uhlig's Corrosion Handbook
    • Verink, E.D.1
  • 105
    • 0038518251 scopus 로고    scopus 로고
    • Arsenic removal from drinking water using granular ferric hydroxide
    • Thirunavukkarasu OS, Viraraghavan T, Subramanian KS. Arsenic removal from drinking water using granular ferric hydroxide. Water SA 2003;29:161-170.
    • (2003) Water SA , vol.29 , pp. 161-170
    • Thirunavukkarasu, O.S.1    Viraraghavan, T.2    Subramanian, K.S.3
  • 106
    • 80052881996 scopus 로고    scopus 로고
    • Iron and aluminium based adsorption strategies for removing arsenic from water
    • Giles DE, Mohapatra M, Issa TB, Anad S, Singh P. Iron and aluminium based adsorption strategies for removing arsenic from water. J Environ Manage 2011;92:3011-3022.
    • (2011) J Environ Manage , vol.92 , pp. 3011-3022
    • Giles, D.E.1    Mohapatra, M.2    Issa, T.B.3    Anad, S.4    Singh, P.5
  • 107
    • 80054865110 scopus 로고    scopus 로고
    • Arsenic (V) adsorption from aqueous solution onto goethite, hematite, magnetite and zero-valent iron: effects of pH, concentration and reversibility
    • Mamindy-Pajany Y, Hurel C, Marmier N, Romeo M. Arsenic (V) adsorption from aqueous solution onto goethite, hematite, magnetite and zero-valent iron: effects of pH, concentration and reversibility. Desalination 2011;281:93-99.
    • (2011) Desalination , vol.281 , pp. 93-99
    • Mamindy-pajany, Y.1    Hurel, C.2    Marmier, N.3    Romeo, M.4
  • 108
    • 84856210438 scopus 로고    scopus 로고
    • Background species effect on aqueous arsenic removal by nano-zero-valent iron using fractional factorial design
    • Tanbooncuy V, Grisdanurak N, Liao CH. Background species effect on aqueous arsenic removal by nano-zero-valent iron using fractional factorial design. J Hazard Mater 2012;205-206:40-46.
    • (2012) J Hazard Mater , vol.205-206 , pp. 40-46
    • Tanbooncuy, V.1    Grisdanurak, N.2    Liao, C.H.3
  • 109
    • 84866469736 scopus 로고    scopus 로고
    • Emerging and innovative techniques for arsenic removal applied to a small water supply system
    • Duarte AALS, Cardoso SJA, Alcada AJ. Emerging and innovative techniques for arsenic removal applied to a small water supply system. Sustainability 2009;1:1288-1304.
    • (2009) Sustainability , vol.1 , pp. 1288-1304
    • Duarte, A.A.L.S.1    Cardoso, S.J.A.2    Alcada, A.J.3
  • 110
    • 0037366689 scopus 로고    scopus 로고
    • Arsenic removal by zero-valent iron: field, laboratory and modelling studies
    • Nikolaidis NP, Dobbs GM, Lackovic JA. Arsenic removal by zero-valent iron: field, laboratory and modelling studies. Water Res 2003;37:1417-1425.
    • (2003) Water Res , vol.37 , pp. 1417-1425
    • Nikolaidis, N.P.1    Dobbs, G.M.2    Lackovic, J.A.3
  • 111
    • 85192418774 scopus 로고    scopus 로고
    • Arsenic removal using adsorptive media treatment process
    • India Water Week. Water Energy and Food Security: Call for Solutions, April 10-14, 2012 New Delhi: Ministry of Water Resources
    • Jain CK, Singh RD. Arsenic removal using adsorptive media treatment process. India Water Week. Water Energy and Food Security: Call for Solutions, April 10-14, 2012 New Delhi: Ministry of Water Resources; 2012.
    • (2012)
    • Jain, C.K.1    Singh, R.D.2
  • 112
    • 84856798191 scopus 로고    scopus 로고
    • Development of an iron-amended biofilter for removal of arsenic from rural Canadian prairie potable water
    • NRCC-53267. Ottawa: National Research Council Canada
    • Gottinger AM, Wild DJ, McMartin D, Moldovan B, Wang D. Development of an iron-amended biofilter for removal of arsenic from rural Canadian prairie potable water. NRCC-53267. Ottawa: National Research Council Canada; 2010. 14 pp.
    • (2010) , pp. 14
    • Gottinger, A.M.1    Wild, D.J.2    McMartin, D.3    Moldovan, B.4    Wang, D.5
  • 113
    • 84930473284 scopus 로고    scopus 로고
    • 2O systems by long-term column experiments
    • 2O systems by long-term column experiments. Water SA 2012;38:511-518.
    • (2012) Water SA , vol.38 , pp. 511-518
    • Noubactep, C.1
  • 114
    • 83955165916 scopus 로고    scopus 로고
    • On the mechanism of microbe inactivation by metallic iron
    • Noubactep C. On the mechanism of microbe inactivation by metallic iron. J Hazard Mater 2011;198:383-386.
    • (2011) J Hazard Mater , vol.198 , pp. 383-386
    • Noubactep, C.1
  • 116
    • 84865580001 scopus 로고    scopus 로고
    • Toxicity of nano-zero valent iron to freshwater and marine species
    • Keller AA, Garner K, Miller RJ, Leniham HS. Toxicity of nano-zero valent iron to freshwater and marine species. PLoS One 2012;7 (8):e43983.
    • (2012) PLoS One , vol.7 , Issue.8 , pp. e43983
    • Keller, A.A.1    Garner, K.2    Miller, R.J.3    Leniham, H.S.4
  • 118
    • 84873732602 scopus 로고    scopus 로고
    • Inactivation of bacteria using chemically fabricated zerovalent iron nanoparticles
    • Prema P, Selvarani M. Inactivation of bacteria using chemically fabricated zerovalent iron nanoparticles. Int Res J Pharm Sci 2012;3 (1):37-41.
    • (2012) Int Res J Pharm Sci , vol.3 , Issue.1 , pp. 37-41
    • Prema, P.1    Selvarani, M.2
  • 119
    • 70649103949 scopus 로고    scopus 로고
    • Use of zero-valent iron nano-particles in inactivating microbes
    • Diao M, Yao M. Use of zero-valent iron nano-particles in inactivating microbes. Water Res 2009;43:5243-5251.
    • (2009) Water Res , vol.43 , pp. 5243-5251
    • Diao, M.1    Yao, M.2
  • 120
    • 82955203150 scopus 로고    scopus 로고
    • Removal of viruses and bacteriophages from drinking water using zero-valent iron
    • Chunjian S, Jie W, Yan J, Kniel KE, Chiu PC. Removal of viruses and bacteriophages from drinking water using zero-valent iron. Sep Purif Technol 2012;84:72-78.
    • (2012) Sep Purif Technol , vol.84 , pp. 72-78
    • Chunjian, S.1    Jie, W.2    Yan, J.3    Kniel, K.E.4    Chiu, P.C.5
  • 121
    • 84927569631 scopus 로고    scopus 로고
    • Filtration media coated with zero-valent metals, their process of making and use
    • June 16
    • Jin Y, Chiu P. Filtration media coated with zero-valent metals, their process of making and use. Patent US 2011/0139726 A1. June 16, 2011.
    • (2011)
    • Jin, Y.1    Chiu, P.2
  • 122
    • 79955074511 scopus 로고    scopus 로고
    • Recent status of arsenic contamination in groundwater of Northeastern India-a review
    • Devi NL, Shihua YICQ. Recent status of arsenic contamination in groundwater of Northeastern India-a review. Rep Opin 2009;1:22-32.
    • (2009) Rep Opin , vol.1 , pp. 22-32
    • Devi, N.L.1    Shihua, Y.I.C.Q.2
  • 123
    • 83055179182 scopus 로고    scopus 로고
    • Oxidative stress induced microorganisms by zero valent iron nanoparticles
    • Sevcu A, El-Temsah YS, Joner EJ, Cernik M. Oxidative stress induced microorganisms by zero valent iron nanoparticles. Microbes Environ 2011;26:271-281.
    • (2011) Microbes Environ , vol.26 , pp. 271-281
    • Sevcu, A.1    El-temsah, Y.S.2    Joner, E.J.3    Cernik, M.4
  • 124
    • 84927576996 scopus 로고    scopus 로고
    • Mitigation of irrigation water using zero valent iron treatment
    • December 22
    • Jin Y, Chiu P. Mitigation of irrigation water using zero valent iron treatment. Patent US2011/0309021 A1. December 22, 2011.
    • (2011)
    • Jin, Y.1    Chiu, P.2
  • 126
    • 84927569630 scopus 로고    scopus 로고
    • Generation of free radicals, analytical methods, bacterial disinfections, and oxidative destruction of organic chemicals using zero valent iron and other metals
    • November 1
    • Rima J, Li QX, Aouuezova L. Generation of free radicals, analytical methods, bacterial disinfections, and oxidative destruction of organic chemicals using zero valent iron and other metals. Patent US 8048317 B2. November 1, 2011.
    • (2011)
    • Rima, J.1    Li, Q.X.2    Aouuezova, L.3
  • 127
    • 84927580725 scopus 로고    scopus 로고
    • Removal of microorganisms and disinfection byproduct precursors using elemental iron or aluminium
    • February 14
    • Jin Y, Chiu P. Removal of microorganisms and disinfection byproduct precursors using elemental iron or aluminium. Patent US8114279. February 14, 2012.
    • (2012)
    • Jin, Y.1    Chiu, P.2
  • 131
    • 0004282869 scopus 로고    scopus 로고
    • Boston: Houghton Mifflin Co.; 2005 (8th ed), 2008 (9th ed), 10th ed
    • Ebbing DD, Gammon SD. General Chemistry. Boston: Houghton Mifflin Co.; 2005 (8th ed), 2008 (9th ed), 2012 (10th ed).
    • (2012) General Chemistry
    • Ebbing, D.D.1    Gammon, S.D.2
  • 132
    • 77955424532 scopus 로고    scopus 로고
    • Influence of iron on water radiolysis in cement based materials
    • Bouniol P. Influence of iron on water radiolysis in cement based materials. J Nucl Mater 2010;403:167-183.
    • (2010) J Nucl Mater , vol.403 , pp. 167-183
    • Bouniol, P.1
  • 134
    • 0027870125 scopus 로고
    • A daily soil temperature model based on air temperature and precipitation for continental applications
    • Zheng D, Hunt ER Jr, Running SW. A daily soil temperature model based on air temperature and precipitation for continental applications. Climate Res. 1993;2:183-191.
    • (1993) Climate Res , vol.2 , pp. 183-191
    • Zheng, D.1    Hunt, E.R.2    Running, S.W.3
  • 135
    • 84859160346 scopus 로고    scopus 로고
    • Modification of aquifer pore-water by static diffusion using nano-zero valent metals
    • Antia DDJ. Modification of aquifer pore-water by static diffusion using nano-zero valent metals. Water 2011;3:79-112.
    • (2011) Water , vol.3 , pp. 79-112
    • Antia, D.D.J.1
  • 136
    • 84927581333 scopus 로고    scopus 로고
    • Integrating suspended copper/iron bimetal nanoparticles and microwave irradiation for treating chlorobenzene in aqueous solution
    • Lee C-L, Jou C-JG. Integrating suspended copper/iron bimetal nanoparticles and microwave irradiation for treating chlorobenzene in aqueous solution. Environ Pollut 2012;1:160-168.
    • (2012) Environ Pollut , vol.1 , pp. 160-168
    • Lee, C.-L.1    Jou, C.-J.G.2
  • 140
    • 79751527040 scopus 로고    scopus 로고
    • Gas-bubbled nano-zero-valent iron process for high concentration arsenate removal
    • Tanbonchuy V, Hsu JC, Grisdanurak N, Liao CH. Gas-bubbled nano-zero-valent iron process for high concentration arsenate removal. J Hazard Mater 2011;186:2123-2128.
    • (2011) J Hazard Mater , vol.186 , pp. 2123-2128
    • Tanbonchuy, V.1    Hsu, J.C.2    Grisdanurak, N.3    Liao, C.H.4
  • 141
    • 85192429988 scopus 로고    scopus 로고
    • Arsenic removal by nanoiron in the gas-bubbled aqueous solution
    • IPCBEE; 2011, Available at, Accessed June 2
    • Tanbonchuy V, Liao CH, Grisdanurak N. Arsenic removal by nanoiron in the gas-bubbled aqueous solution. 2011 International Conference on Environment Science and Engineering. Volume 8; IPCBEE; 2011. pp 237-241. Available at www.ipcbee.com/vol8/53-S20011.pdf. Accessed June 2, 2014.
    • (2014) 2011 International Conference on Environment Science and Engineering , vol.8 , pp. 237-241
    • Tanbonchuy, V.1    Liao, C.H.2    Grisdanurak, N.3
  • 142
    • 78349260798 scopus 로고    scopus 로고
    • Effects of pH and particle size on kinetics of nitrobenzene reduction by zero-valent iron
    • Dong J, Zhao Y, Zhao R, Zhou R. Effects of pH and particle size on kinetics of nitrobenzene reduction by zero-valent iron. J Environ Sci 2010;22:1741-1747.
    • (2010) J Environ Sci , vol.22 , pp. 1741-1747
    • Dong, J.1    Zhao, Y.2    Zhao, R.3    Zhou, R.4
  • 143
    • 0021539601 scopus 로고
    • Influence of chloride on the formation of iron oxides from Fe(II) chloride. II effect of [Cl] on the formation of Lepidocrocite and its crystallinity
    • Taylor RM. Influence of chloride on the formation of iron oxides from Fe(II) chloride. II effect of [Cl] on the formation of Lepidocrocite and its crystallinity. Clays Clay Min 1984;32:175-180.
    • (1984) Clays Clay Min , vol.32 , pp. 175-180
    • Taylor, R.M.1
  • 144
    • 0345304320 scopus 로고    scopus 로고
    • Cation adsorption on goethite-humic acid complex
    • Olu-Owolabi BI, Ajayi SO. Cation adsorption on goethite-humic acid complex. Sci Iranica 2003;10:329-333.
    • (2003) Sci Iranica , vol.10 , pp. 329-333
    • Olu-owolabi, B.I.1    Ajayi, S.O.2
  • 145
    • 0041326902 scopus 로고    scopus 로고
    • Secondary mineralization pathways induced by dissimi-latory iron reduction of ferrihydrite under advective flow
    • Hansel CM, Benner SG, Neiss J, Dohnalkova A, Kukkadapu RK, Fendorf S. Secondary mineralization pathways induced by dissimi-latory iron reduction of ferrihydrite under advective flow. Geochim Cosmochim Acta 2003;67:2977-2992.
    • (2003) Geochim Cosmochim Acta , vol.67 , pp. 2977-2992
    • Hansel, C.M.1    Benner, S.G.2    Neiss, J.3    Dohnalkova, A.4    Kukkadapu, R.K.5    Fendorf, S.6
  • 149
    • 46849121982 scopus 로고    scopus 로고
    • Polyoxometalate-enhanced oxidation of organic compounds by nanoparticulate zero-valent iron and ferrous iron in the presence of oxygen
    • Lee C, Keenan CR, Sedlak DL. Polyoxometalate-enhanced oxidation of organic compounds by nanoparticulate zero-valent iron and ferrous iron in the presence of oxygen. Environ Sci Technol 2008;42:4921-4926.
    • (2008) Environ Sci Technol , vol.42 , pp. 4921-4926
    • Lee, C.1    Keenan, C.R.2    Sedlak, D.L.3
  • 152
    • 70149102038 scopus 로고    scopus 로고
    • Paving the way to the integration of smart nanostructures: part I: nanotethering and nanowiring via material nanotechnology and electrochemical identification
    • Lyons MEG, Rebouillat S. Paving the way to the integration of smart nanostructures: part I: nanotethering and nanowiring via material nanotechnology and electrochemical identification. Int J Electrochem Sci 2009;4:481-515.
    • (2009) Int J Electrochem Sci , vol.4 , pp. 481-515
    • Lyons, M.E.G.1    Rebouillat, S.2
  • 153
    • 84855301890 scopus 로고    scopus 로고
    • Paving the way to the integration of smart nanostructures: part II: nanostructured microdispersed hydrated metal oxides for electrochemical energy conversion and applications
    • Rebouillat S, Lyons MEG, Brandon MP, Doyle RL. Paving the way to the integration of smart nanostructures: part II: nanostructured microdispersed hydrated metal oxides for electrochemical energy conversion and applications. Int J Electrochem Sci 2011;6:5830-5917.
    • (2011) Int J Electrochem Sci , vol.6 , pp. 5830-5917
    • Rebouillat, S.1    Lyons, M.E.G.2    Brandon, M.P.3    Doyle, R.L.4
  • 154
    • 33845594339 scopus 로고    scopus 로고
    • Overview of the design, development, and application of nickel-hydrogen batteries
    • NASA/TP-2003-211905. Hanover: NASA Center for Aerospace Information
    • Thaller LH, Zimmerman AH. Overview of the design, development, and application of nickel-hydrogen batteries. NASA/TP-2003-211905. Hanover: NASA Center for Aerospace Information; 2003.
    • (2003)
    • Thaller, L.H.1    Zimmerman, A.H.2
  • 155
    • 79957480018 scopus 로고    scopus 로고
    • Renewable hydrogen generation by bimetallic zero valent iron particles
    • Chen K-F, Li S, Zhang W. Renewable hydrogen generation by bimetallic zero valent iron particles. Chem Eng J 2011;170:562-567.
    • (2011) Chem Eng J , vol.170 , pp. 562-567
    • Chen, K.-F.1    Li, S.2    Zhang, W.3
  • 156
    • 25144489625 scopus 로고    scopus 로고
    • Styles of corrosion and inorganic control on hydrogen pressure buildup
    • Reardon EJ. Styles of corrosion and inorganic control on hydrogen pressure buildup. Environ Eng Sci 2005;39:7311-7317.
    • (2005) Environ Eng Sci , vol.39 , pp. 7311-7317
    • Reardon, E.J.1
  • 157
    • 84879840670 scopus 로고    scopus 로고
    • H2 gas charging of zero-valent iron and TCE degradation
    • Zhao C, Reardon EJ. H2 gas charging of zero-valent iron and TCE degradation. J Environ Protect 2012;3:272-279.
    • (2012) J Environ Protect , vol.3 , pp. 272-279
    • Zhao, C.1    Reardon, E.J.2
  • 158
    • 79959906189 scopus 로고    scopus 로고
    • Porous iron and ferric oxide pellets for hydrogen storage: texture and transport characteristics
    • Advances in Control, Chemical Engineering and Mechanical Engineering. WSEAS Press, Available at, Accessed June 2, 2014
    • Soukup K, Rogut J, Grabowski J, Wiatowski M, Ludwik-Pardala M, Schneider P, Solcova O. Porous iron and ferric oxide pellets for hydrogen storage: texture and transport characteristics. Advances in Control, Chemical Engineering and Mechanical Engineering. WSEAS Press, 2010. pp 99-103. Available at http://www.wseas.us/e-library/conferences/2010/Tenerife/MECHECICON/MECHECICON-19.pdf. Accessed June 2, 2014.
    • (2010) , pp. 99-103
    • Soukup, K.1    Rogut, J.2    Grabowski, J.3    Wiatowski, M.4    Ludwik-pardala, M.5    Schneider, P.6    Solcova, O.7
  • 159
    • 84927576994 scopus 로고    scopus 로고
    • The potential of nanoscience and nanotechnology in the development of innovative thermochemical processes of separation, purification and compression of hydrogen and carbon dioxide in emerging technologies
    • Institute for Energy
    • Rogut, J. The potential of nanoscience and nanotechnology in the development of innovative thermochemical processes of separation, purification and compression of hydrogen and carbon dioxide in emerging technologies. Nanotech Europe Institute for Energy; 2009. 30 pp. ftp://data.cc-nanochem.de/NanotechEurope2009/167.pdf
    • (2009) Nanotech Europe , pp. 30
    • Rogut, J.1
  • 161
    • 84856572585 scopus 로고    scopus 로고
    • Degradation of chlorinated phenols by zero valent iron and bimetals of iron: a review
    • Gunawardana B, Singhal N, Swedlund P. Degradation of chlorinated phenols by zero valent iron and bimetals of iron: a review. Environ Eng Res 2011;16:187-203.
    • (2011) Environ Eng Res , vol.16 , pp. 187-203
    • Gunawardana, B.1    Singhal, N.2    Swedlund, P.3
  • 162
    • 80755160934 scopus 로고    scopus 로고
    • Nano zero valent iron-THE solution for water and soil remediation?
    • Available at
    • Mueller NC, Nowack B. Nano zero valent iron-THE solution for water and soil remediation? Report of the Observatory NANO. EMPA; 2010. 34 pp. Available at www.observatorynano.eu
    • (2010) Report of the Observatory NANO. EMPA , pp. 34
    • Mueller, N.C.1    Nowack, B.2
  • 163
    • 84859160461 scopus 로고    scopus 로고
    • Nanoscale metallic iron for environmental remediation: prospects and limitations
    • Noubactep C, Care S, Crane R. Nanoscale metallic iron for environmental remediation: prospects and limitations. Water Air Soil Pollut 2012;223:1363-1382.
    • (2012) Water Air Soil Pollut , vol.223 , pp. 1363-1382
    • Noubactep, C.1    Care, S.2    Crane, R.3
  • 164
    • 84867221811 scopus 로고    scopus 로고
    • Transport characteristics of tea green nano-scale zero valent iron as a function of soil mineralogy
    • Chrysochoou M, McGuire M, Dahal G. Transport characteristics of tea green nano-scale zero valent iron as a function of soil mineralogy. Chem Eng Trans 2012;28:6.
    • (2012) Chem Eng Trans , vol.28 , pp. 6
    • Chrysochoou, M.1    McGuire, M.2    Dahal, G.3
  • 165
    • 84855346238 scopus 로고    scopus 로고
    • A comparative evaluation of hexavalent chromium treatment in contaminated soil by calcium polysulfide and green-tea nanoscale zero valent iron
    • Chrysochoou M, Johnston C, Dahal G. A comparative evaluation of hexavalent chromium treatment in contaminated soil by calcium polysulfide and green-tea nanoscale zero valent iron. J Hazard Mater 2012;201-202:33-42.
    • (2012) J Hazard Mater , vol.201-202 , pp. 33-42
    • Chrysochoou, M.1    Johnston, C.2    Dahal, G.3
  • 166
    • 70349157155 scopus 로고    scopus 로고
    • Zero-valent aluminium for oxidative degradation of aqueous organic pollutants
    • Bokare AD, Chi W. Zero-valent aluminium for oxidative degradation of aqueous organic pollutants. Environ Sci Technol 2009;43:7130-7135.
    • (2009) Environ Sci Technol , vol.43 , pp. 7130-7135
    • Bokare, A.D.1    Chi, W.2
  • 168
    • 0041808442 scopus 로고
    • A silver-palladium alloy from the Bahia lateritic gold deposit, Carajas, Brazil
    • Zang W, Fyfe WS, Barnett RL. A silver-palladium alloy from the Bahia lateritic gold deposit, Carajas, Brazil. Mineral Mag 1992;56:47-51.
    • (1992) Mineral Mag , vol.56 , pp. 47-51
    • Zang, W.1    Fyfe, W.S.2    Barnett, R.L.3
  • 169
    • 0013357473 scopus 로고    scopus 로고
    • Pourbaix diagrams for the system copper-chlorine at 5-100°C
    • Swedish Nuclear Power Inspectorate
    • Beverskog B, Puigdomenech I. Pourbaix diagrams for the system copper-chlorine at 5-100°C. SKI Rapport 98:19. Swedish Nuclear Power Inspectorate, 1998.
    • (1998) SKI Rapport , vol.98 , pp. 19
    • Beverskog, B.1    Puigdomenech, I.2
  • 170
    • 58149511214 scopus 로고    scopus 로고
    • Effect of reducing groundwater on the retardation of redox-sensitive radionuclides
    • Hu QH, Zavarin M, Rose TP. Effect of reducing groundwater on the retardation of redox-sensitive radionuclides. Geochem Trans 2008;9:12. DOI:10.1186/1467-4866-9-12.
    • (2008) Geochem Trans , vol.9 , pp. 12
    • Hu, Q.H.1    Zavarin, M.2    Rose, T.P.3
  • 171
    • 78149464616 scopus 로고    scopus 로고
    • A comparative H2S corrosion study of 304L and 316L stainless steels in acidic media
    • Davoodi A, Pakshir M, Babaiee M, Ebrahimi GR. A comparative H2S corrosion study of 304L and 316L stainless steels in acidic media. Corrosion Sci 2011;53:399-408.
    • (2011) Corrosion Sci , vol.53 , pp. 399-408
    • Davoodi, A.1    Pakshir, M.2    Babaiee, M.3    Ebrahimi, G.R.4
  • 172
    • 79959197241 scopus 로고
    • Chemical equilibria affecting the behaviour of manganese in natural water
    • Hem JD. Chemical equilibria affecting the behaviour of manganese in natural water. Hydrolog Sci J 1963;8:30-37.
    • (1963) Hydrolog Sci J , vol.8 , pp. 30-37
    • Hem, J.D.1
  • 173
    • 0001645684 scopus 로고
    • Eh-pH diagrams for the rare earth elements at 25°C and one bar pressure
    • Brookins DG. Eh-pH diagrams for the rare earth elements at 25°C and one bar pressure. Geochem J 1983;17:223-229.
    • (1983) Geochem J , vol.17 , pp. 223-229
    • Brookins, D.G.1
  • 174
    • 0028439394 scopus 로고
    • Geochemical reduction of hexavalent chromium in Trinity sand aquifer
    • Henderson T. Geochemical reduction of hexavalent chromium in Trinity sand aquifer. Ground Water 1994;32:477-486.
    • (1994) Ground Water , vol.32 , pp. 477-486
    • Henderson, T.1
  • 175
    • 33644807490 scopus 로고    scopus 로고
    • Atlas of Eh-pH Diagrams
    • Available at, Accessed June 2, 2014
    • Takena, N. Atlas of Eh-pH Diagrams. Geological Survey of Japan Open File Report No 419, 2005. Available at http://www.fssm.ucam.ac.ma/biblioadmin/opac_css/chimie/Atlas_Eh-pH_diagrams.pdf. Accessed June 2, 2014.
    • (2005) Geological Survey of Japan Open File Report No 419
    • Takena, N.1
  • 179
    • 84870542671 scopus 로고    scopus 로고
    • Kinetics of zero valent iron nanoparticle oxidation in oxygenated water
    • Web publication date 7/11/2012
    • Greenlee LF, Torrey JD, Amaro RL, Shaw JM. Kinetics of zero valent iron nanoparticle oxidation in oxygenated water. Environ Sci Technol 2012;46:12913-12920. DOI:10.1021/es303037k Web publication date 7/11/2012.
    • (2012) Environ Sci Technol , vol.46 , pp. 12913-12920
    • Greenlee, L.F.1    Torrey, J.D.2    Amaro, R.L.3    Shaw, J.M.4


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