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http://hub.abes.fr/acs/periodical/esthag/2000/volume_34/issue_23/101021es003513e/authorship/1
http://hub.abes.fr/acs/periodical/esthag/1991/volume_25/issue_4/101021es00016a024/authorship/1
http://hub.abes.fr/acs/periodical/esthag/2004/volume_38/issue_23/101021es049585d/authorship/3
http://hub.abes.fr/acs/periodical/esthag/2008/volume_42/issue_14/101021es801387s/authorship/2
http://hub.abes.fr/acs/periodical/esthag/2003/volume_37/issue_7/101021es026070i/authorship/2
http://hub.abes.fr/acs/periodical/esthag/2005/volume_39/issue_11/101021es050013i/authorship/2
http://hub.abes.fr/acs/periodical/esthag/2005/volume_39/issue_5/101021es048983d/authorship/3
http://hub.abes.fr/acs/periodical/esthag/2005/volume_39/issue_8/101021es049096d/authorship/2
http://hub.abes.fr/acs/periodical/esthag/2008/volume_42/issue_13/101021es800317j/authorship/3
http://hub.abes.fr/acs/periodical/esthag/2005/volume_39/issue_23/101021es047965t/authorship/2
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http://hub.abes.fr/acs/periodical/esthag/2004/volume_38/issue_5/101021es035025n/authorship/2
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http://hub.abes.fr/acs/periodical/esthag/2003/volume_37/issue_13/101021es0262838/authorship/3
http://hub.abes.fr/acs/periodical/esthag/2006/volume_40/issue_23/101021es061308e/authorship/3
http://hub.abes.fr/acs/periodical/esthag/2008/volume_42/issue_22/101021es801947h/authorship/2
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Interaction of quicklime with polychlorobiphenyl-contaminated solids
Oxidation of chlorobenzene with Fenton's reagent
Chemistry of Superoxide Radical inSeawater: Reactions with OrganicCu Complexes
Formation ofN-Nitrosodimethylamine (NDMA)from Dimethylamine duringChlorination
Transformation of Aromatic Ether-and Amine-ContainingPharmaceuticals during ChlorineDisinfection
Strong Hg(II) Complexation inMunicipal Wastewater Effluent andSurface Waters
Quantification of the OxidizingCapacity of NanoparticulateZero-Valent Iron
Polyoxometalate-Enhanced Oxidation of Organic Compounds by Nanoparticulate Zero-Valent Iron and Ferrous Ion in the Presence of Oxygen
Response to Comment on “Factors Affecting the Yield of Oxidants from the Reaction of Nanoparticulate Zero-Valent Iron and Oxygen”
Reduction of Net MercuryMethylation by Iron inDesulfobulbus propionicus(1pr3) Cultures: Implications forEngineered Wetlands
Response to Comment on “Polyoxometalate-Enhanced Oxidation of Organic Compounds by Nanoparticulate Zero-Valent Iron and Ferrous Ion in the Presence of Oxygen”
Use of the Chiral PharmaceuticalPropranolol to Identify SewageDischarges into Surface Waters
Bactericidal Effect of Zero-Valent Iron Nanoparticles on Escherichia coli
Decrease in Net MercuryMethylation Rates Following IronAmendment to Anoxic WetlandSediment Slurries
Attenuation of Wastewater-DerivedContaminants in anEffluent-Dominated River
Ligand-Enhanced Reactive Oxidant Generation by Nanoparticulate Zero-Valent Iron and Oxygen
Precursors ofN-Nitrosodimethylamine in NaturalWaters
Similarities between InorganicSulfide and the StrongHg(II)-Complexing Ligands inMunicipal Wastewater Effluent
Peer Reviewed: Understanding Microcontaminants in Recycled Water
Dairy Wastewater, Aquaculture, andSpawning Fish as Sources ofSteroid Hormones in the AquaticEnvironment
Rangeland Grazing as a Source ofSteroid Hormones to SurfaceWaters
Enhanced Formation of Oxidants from Bimetallic Nickel−Iron Nanoparticles in the Presence of Oxygen
Characterization and Fate ofN-Nitrosodimethylamine Precursorsin Municipal Wastewater TreatmentPlants
Factors Affecting the Yield of Oxidants from the Reaction of Nanoparticulate Zero-Valent Iron and Oxygen
Oxidation of S(IV) in Atmospheric Water by Photooxidants and Iron in the Presence of Copper
Aqueous-phase oxidation of polychlorinated biphenyls by hydroxyl radicals
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