, References Par souci de clarté, les références ont été rassemblées dans la partie Références
Coal tar distillation and its products and gas liquor and ammonium sulphate, Modern Science Memoirs, 1932. ,
Soil washing using various nonionic surfactants and their recovery by selective adsorption with activated carbon, J. Hazard. Mater, vol.154, pp.153-160, 2008. ,
The role of interfacial films in the mass transfer of naphthalene from creosotes to water, J. Contam. Hydrol, vol.74, pp.283-298, 2004. ,
Effect of soil structure on the bioavailability of polycyclic aromatic hydrocarbons within aggregates of a contaminated soil, Appl. Geochemistry, vol.16, pp.1611-1619, 2001. ,
Time to Say Goodbye to the 16 EPA PAHs? Toward an Upto-Date Use of PACs for Environmental Purposes, Polycycl. Aromat. Compd, vol.35, pp.330-354, 2015. ,
Variable dispersivity in a column experiment containing MnO2 and FeOOH-coated sand, J. Contam. Hydrol, vol.40, pp.49-51, 1999. ,
Dégradation oxydative d'une quinolone par la nano-magnétite via l'interaction Fe (II)/O2, 2014. ,
Native oxy-PAHs, N-PACs, and PAHs in historically contaminated soils from Sweden, Belgium, and France: Their soil-porewater partitioning behavior, bioaccumulation in Enchytraeus crypticus, and bioavailability, Environ. Sci. Technol, vol.48, pp.11187-11195, 2014. ,
Development of technical guidelines for the application of in-situ chemical oxidation to groundwater remediation, J. Clean. Prod, vol.77, pp.47-55, 2014. ,
Wastewater disinfection and organic matter removal using ferrate (VI) oxidation, J. Water Health, vol.7, pp.507-513, 2009. ,
Sources and fate of polycyclic aromatic compounds (PAHs, oxygenated PAHs and azaarenes) in forest soil profiles opposite of an aluminium plant, Sci. Total Environ, vol.630, pp.83-95, 2018. ,
Oxygenated polycyclic aromatic hydrocarbons and azaarenes in urban soils: A comparison of a tropical city (Bangkok) with two temperate cities (Bratislava and Gothenburg), Chemosphere, vol.107, pp.407-414, 2014. ,
Analysis of Polycyclic Aromatic Hydrocarbons and Their Oxygen-Containing Derivatives and Metabolites in Soils, J. Environ. Qual, vol.39, p.1349, 2010. ,
Removal of toxic metals and nonmetals from contaminated water, J. Toxicol. Environ. Health, vol.35, pp.205-210, 1992. ,
Rapid small-scale separation of saturate, aromatic and polar components in petroleum, Org. Geochem, vol.38, pp.1235-1250, 2007. ,
Etude de l'influence de la rétention chimique sur la diffusion d'espèces anioniques dans les milieux argileux compacts, 2005. ,
The Infrared Spectra of Complex Molecules, 1980. ,
Transport dans les sols de cokerie de HAP issus de particules de goudron de houille, 2005. ,
URL : https://hal.archives-ouvertes.fr/tel-01749974
Characteristics of a solid coal tar sampled from a contaminated soil and of the organics transferred into water, Fuel, vol.89, pp.352-359, 2010. ,
URL : https://hal.archives-ouvertes.fr/hal-00429909
PAHs and organic matter partitioning and mass transfer from coal tar particles to water, Environ. Sci. Technol, vol.40, pp.6038-6043, 2006. ,
URL : https://hal.archives-ouvertes.fr/hal-00284074
Effects of drying and comminution type on the quantification of Polycyclic Aromatic Hydrocarbons (PAH) in a homogenised gasworks soil and the implications for human health risk assessment, Chemosphere, vol.111, pp.396-404, 2014. ,
Comparison of different drying, extraction and detection techniques for the determination of priority polycyclic aromatic hydrocarbons in background contaminated soil samples, Anal. Chim. Acta, vol.383, pp.263-275, 1999. ,
In situ thermal remediation of DNAPL and LNAPL using electrical resistance heating, Remediation, vol.15, pp.5-22, 2005. ,
Initial oxidation products in the metabolism of pyrene, anthracene, fluorene, and dibenzothiophene by the white rot fungus Pleurotus ostreatus, Appl. Environ. Microbiol, vol.62, pp.2554-2559, 1996. ,
Evolution des composants organiques d'un sol de cokerie en contexte d'atténuation naturelle, 2010. ,
Biodegradation of the organic matter in a coking plant soil and its main constituents, Org. Geochem, vol.56, pp.10-18, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-01114804
Low temperature oxidation of a coking plant soil organic matter and its major constituents: An experimental approach to simulate a long term evolution, J. Hazard. Mater, vol.188, pp.221-230, 2011. ,
Effect of preheating on the chemical oxidation efficiency : Implications for the PAH availability measurement in contaminated soils, J. Hazard. Mater, vol.286, pp.55-63, 2015. ,
URL : https://hal.archives-ouvertes.fr/hal-01159492
Effects of thermal desorption on the composition of two coking plant soils: Impact on solvent extractable organic compounds and metal bioavailability, Environ. Pollut, vol.156, pp.671-677, 2008. ,
URL : https://hal.archives-ouvertes.fr/hal-00467871
Bioremediation of PAH-contamined soils: Consequences on formation and degradation of polar-polycyclic aromatic compounds and microbial community abundance, J. Hazard. Mater, vol.329, pp.1-10, 2017. ,
Reactivity of ferrate(V) with carboxylic acids: A pre-mix pulse radiolysis study, Radiat. Phys. Chem, vol.44, pp.479-484, 1994. ,
Studies of Hypervalent Iron In Aqueous Solutions: 1: Radiation-induced Reduction of Iron(vi) To Iron(v) By C02', J. Am. Chem. Soc, vol.109, pp.7761-7764, 1987. ,
Dense non-aqueous phase liquids at former manufactured gas plants: Challenges to modeling and remediation, J. Contam. Hydrol, vol.105, pp.81-98, 2009. ,
Cosolvent Flushing for the Remediation of PAHs from Former Manufactured Gas Plants, J. Contam. Hydrol, vol.126, pp.72-84, 2011. ,
Characterization of dissolved organic matter in cave and spring waters using UV-Vis absorbance and fluorescence spectroscopy, Org. Geochem, vol.41, pp.270-280, 2010. ,
Novel activation technologies for sodium persulfate in situ chemical oxidation, E-Proceedings of the Fourth International Conference on Remediation of Chlorinated and Recalcitrant Compounds, 2004. ,
Effect of sequestration on PAH degradability with Fenton's reagent: Roles of total organic carbon, humin, and soil porosity, J. Hazard. Mater, vol.100, pp.285-300, 2003. ,
Enhancement of PAH biodegradation in soil by physicochemical pretreatment, Chemosphere, vol.38, pp.3627-3636, 1999. ,
Removal of pyrene by colloidal gas aphrons of a biodegradable surfactant, Sep. Purif. Technol, vol.68, pp.411-416, 2009. ,
New Evidence against Hydroxyl Radicals as Reactive Intermediates in the Thermal and Photochemically Enhanced Fenton Reactions, J. Phys. Chem. A, vol.102, pp.5542-5550, 1998. ,
Mobilisation et Transfert des Composés Aromatiques Polycycliques (HAP et CAP polaires) dans les Sols Historiquement Contaminés par des Goudrons de Houille, 2017. ,
Aging as the main factor controlling PAH and polar-PAC (polycyclic aromatic compound) release mechanisms in historically coal-tar-contaminated soils, Environ. Sci. Pollut. Res, vol.26, pp.1693-1705, 2019. ,
Fenton-like and potassium permanganate oxidations of PAH-contaminated soils: Impact of oxidant doses on PAH and polar PAC (polycyclic aromatic compound) behavior, Chemosphere, vol.224, pp.437-444, 2019. ,
Enhanced remedial reagents delivery in unsaturated anisotropic soils using surfactant foam, Chemosphere, vol.210, pp.977-989, 2018. ,
URL : https://hal.archives-ouvertes.fr/hal-02021024
Compatibility of surfactants with activated-persulfate for the selective oxidation of PAH in groundwater remediation, J. Environ. Chem. Eng, vol.5, pp.6098-6106, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-02065225
Transport of creosote compounds in a large, intact, macroporous clayey till column, J. Contam. Hydrol, vol.39, pp.309-329, 1999. ,
Biodegradation of phenols in a sandstone aquifer under aerobic conditions and mixed nitrate and iron reducing conditions, J. Contam. Hydrol, vol.44, pp.239-273, 2000. ,
Eh-pH Diagrams for Geochemistry, 1988. ,
Comparative assessment of coal tars obtained from 10 former manufactured gas plant sites in the Eastern United States, Chemosphere, vol.65, pp.1562-1569, 2006. ,
Response to naturally occuring organic material : permanganate vs. persulfate, E-Proceedings of the Fourth International Conference on Remediation of Chlorinated and Recalcitrant Compounds, 2004. ,
Nonequilibrium Sorption of Organic Chemicals: Elucidation of Rate-Limiting Processes, Environ. Sci. Technol, vol.25, pp.134-142, 1991. ,
Critical Review of rate constants for reactions of hydrated electrons, hydrogen atoms and hydroxyl radicals (?OH/?O?in Aqueous Solution, J. Phys. Chem. Ref. Data, vol.17, pp.513-886, 1988. ,
The reaction of the SO3 center dot-radical with Fe-II in acidic aqueous solution -A pulse radiolysis study, Phys. Chem. Chem. Phys, vol.1, pp.3111-3115, 1999. ,
,
On the soil water characteristic curves of poorly graded granular materials in aqueous polymer solutions, Acta Geotech, vol.13, pp.103-116, 2018. ,
Free radicals reaction, Advanced Organic Chemistry PART A: Structure and Mechanisms, pp.965-1063, 2002. ,
Electronic Substituent Effects on Reaction Intermediates, Advanced Organic Chemistry Part A : Structure and Mechanisms, pp.311-318, 2002. ,
Advanced organic chemistry part A Structure and mechanisms, 2002. ,
Combining in situ chemical oxidation , stabilization , and anaerobic bioremediation in a single application to reduce contaminant mass and leachability in soil, J. Hazard. Mater, vol.297, pp.347-355, 2015. ,
Prospection et exploration des eaux souterraines, Dunod, 1968. ,
Procédé de préparation de ferrates de métaux alcalins, vol.2908128, 2008. ,
Catalytic wet peroxide oxidation of phenol over Fe-exchanged pillared beidellite, Water Res, vol.37, pp.1154-1160, 2003. ,
Biodegradation of polycyclic aromatic hydrocarbons, vol.3, pp.351-368, 1992. ,
Removal of polycyclic aromatic hydrocarbons from sediments using sodium persulfate activated by temperature and nanoscale zero-valent iron, J. Air Waste Manag. Assoc, vol.65, pp.375-383, 2015. ,
Role of quinone intermediates as electron shuttles in fenton and photoassisted fenton oxidations of aromatic compounds, Environ. Sci. Technol, vol.31, pp.2399-2406, 1997. ,
Hydroxyl radicals based advanced oxidation processes (AOPs) for remediation of soils contaminated with organic compounds: A review, Chem. Eng. J, vol.284, pp.582-598, 2016. ,
Water retention curves of multicomponent mixtures of spherical particles, Powder Technol, vol.320, pp.646-655, 2017. ,
Degradation of pyrene in cetylpyridinium chloride-aided soil washing wastewater by pyrite Fenton reaction, Chem. Eng. J, vol.249, pp.34-41, 2014. ,
Unintentional contaminant transfer from groundwater to the vadose zone during source zone remediation of volatile organic compounds, J. Contam. Hydrol, vol.204, pp.1-10, 2017. ,
Polycyclic hydrocarbons, vol.2, 1964. ,
FUNDAMENTALS OF ISCO USING OZONE, in: In Situ Chemical Oxidation for Groundwater Remediation, pp.193-226, 2011. ,
Aquatic Organic Matter Fluorescence, 2014. ,
Characterization of marine and terrestrial DOM in the seawater using exciting-emission matrix, Mar. Chem, vol.51, pp.325-346, 1996. ,
, Quelles techniques pour quels traitements -Analyse coûts-bénéfices, Final report BRGM-RP-58609-FR, 2010.
Bench-scale visualization of DNAPL remediation processes in analog heterogeneous aquifers : surfactant floods and in situ oxidation using permanganate, J. Contam. Hydrol, vol.58, pp.24-28, 2002. ,
Soil remediation: Humic acids as natural surfactants in the washings of highly contaminated soils, Environ. Pollut, vol.135, pp.515-522, 2005. ,
Direct chemical oxidation of mixed or toxic wastes, NATO Advanced Research Workshop on Environmental Aspects of Converting CW Facilities to Peaceful Purposes and Derivative Technologies in Modeling, Medicine and Monitoring -NATO SCIENCE SERIES, vol.1, pp.187-202, 2002. ,
Fluorescence spectroscopy reveals ubiquitous presence of oxidized and reduced quinones in dissolved organic matter, Environ. Sci. Technol, vol.39, pp.8142-8149, 2005. ,
Highly active heterogeneous Fenton-like systems based on Fe0/Fe3O4 composites prepared by controlled reduction of iron oxides, Appl. Catal. B Environ, vol.83, pp.131-139, 2008. ,
Ferrate(VI) oxidation of cyanide in water, Environ. Technol, vol.25, pp.945-955, 2004. ,
URL : https://hal.archives-ouvertes.fr/hal-01735521
Impact of Reaction Conditions on MnO 2 Genesis during Permanganate Oxidation, vol.130, pp.562-573, 2004. ,
Experimental Evaluation of Catalyzed Hydrogen Peroxide and Sodium Persulfate for Destruction of BTEX Contaminants. Soil Sediment Contam, vol.16, pp.29-45, 2007. ,
Diagnostic de sols pollués par des hydrocarbures aromatiques polycycliques (HAP) a l ' aide de la spectrophotométrie UV. Ecole Nationale Supérieure des Mines de Saint-Etienne, 2001. ,
Optimization of a chemical oxidation treatment train process for groundwater remediation, Proceedings of the Fifth International Conference on Remediation of Chlorinated and Recalcitrant Compounds, 2006. ,
Rapid Persulfate Oxidation Predicts PAH Bioavailability in Soils and Sediments, Environ. Sci. Technol, vol.34, pp.2057-2063, 2000. ,
Hot water extraction with in situ wet oxidation: Kinetics of PAHs removal from soil, J. Hazard. Mater, vol.137, pp.518-526, 2006. ,
Transferts d'un traceur en milieu poreux consolidé et en milieu poreux fissuré -Expérimentations et Modélisations, 2007. ,
Potassium permanganate oxidation of phenanthrene and pyrene in contaminated soils, J. Hazard. Mater, vol.168, pp.1269-1273, 2009. ,
URL : https://hal.archives-ouvertes.fr/hal-00398893
Utilization of mixtures of polycyclic aromatic hydrocarbons by bacteria isolated from contaminated sediment, FEMS Microbiol. Ecol, vol.41, pp.1-7, 2002. ,
A Novel Oxidizing Reagent Based on Potassium Ferrate(VI) 1, J. Org. Chem, vol.61, pp.6360-6370, 1996. ,
Factors Affecting Sorption of Organic Compounds in Natural Sorbent/Water Systems and Sorption Coefficients for Selected Pollutants. A Review, J. Phys. Chem. Ref. Data, vol.30, pp.187-439, 2001. ,
1-s2.0-S0038071701000761-main, vol.33, pp.1599-1611, 2001. ,
Compréhension du comportement à long terme d'une barrière ouvragée en argile pour le stockage de déchets radioactifs en formation géologique profonde, pp.1-051, 2005. ,
Effect of metal oxides on the reactivity of persulfate/Fe(II) in the remediation of diesel-contaminated soil and sand, J. Hazard. Mater, vol.182, pp.933-936, 2010. ,
Trichloroethylene removal from water by ferrate treatment, Microchem. J, vol.127, pp.74-78, 2016. ,
Managing long-term polycyclic aromatic hydrocarbon contaminated soils: a risk-based approach, Environ. Sci. Pollut. Res, vol.22, pp.8927-8941, 2013. ,
Time scales of organic contaminant dissolution from complex source zones: Coal tar pools vs. blobs, Aquaconsoil: Sustainable Use and Management, vol.59, pp.45-66, 2002. ,
, , 2012.
Monitoring and Origin of Polycyclic Aromatic Hydrocarbons (PAHs) in Effluents from a Surface Treatment Industry, Polycycl. Aromat. Compd, vol.6638, pp.1-10, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-01664760
Fluorescence spectroscopy opens new windows into dissolved organic matter dynamics in freshwater ecosystems: A review, Limnol. Oceanogr, vol.55, pp.2452-2462, 2010. ,
Novel Bentonite Clay-Based Fe?Nanocomposite as a Heterogeneous Catalyst for Photo-Fenton Discoloration and Mineralization of Orange II, Environ. Sci. Technol, vol.38, pp.269-275, 2004. ,
Remediation of PAH-contaminated sediments by chemical oxidation, J. Hazard. Mater, vol.152, pp.128-139, 2008. ,
Identification and quantification of known polycyclic aromatic hydrocarbons and pesticides in complex mixtures using fluorescence excitation-emission matrices and parallel factor analysis, Chemosphere, vol.107, pp.344-353, 2014. ,
URL : https://hal.archives-ouvertes.fr/hal-01146242
A proposed mechanism for the pulse in carbon dioxide production commonly observed following the rapid rewetting of a dry soil, Soil Sci. Soc. Am. J, vol.67, pp.798-805, 2003. ,
Mechanisms and Efficiency of the Simultaneous Removal of Metals and Cyanides by Using Ferrate(VI): Crucial Roles of Nanocrystalline Iron(III) Oxyhydroxides and Metal Carbonates. Chem. -A Eur, J, vol.17, pp.10097-10105, 2011. ,
Removal of sorbed polycyclic aromatic hydrocarbons from soil, sludge and sediment samples using the Fenton's reagent process, Chemosphere, vol.59, pp.1427-1437, 2005. ,
Oxidation kinetics of polycyclic aromatic hydrocarbons by permanganate, Chemosphere, vol.79, pp.628-636, 2010. ,
,
Influence of heavy organic pollutants of anthropic origin on PAH retention by kaolinite, Chemosphere, vol.44, pp.1633-1639, 2001. ,
Effect of pH on the oxidation rate of organic compounds by Fe-II/H2O2. Mechanisms and simulation, New J. Chem, vol.22, pp.263-268, 1998. ,
Remediation of soils contaminated with polycyclic aromatic hydrocarbons (PAHs), 2009. ,
, J. Hazard. Mater, vol.172, pp.532-549
Investigation of the impacts of ethyl lactate based Fenton treatment on soil quality for polycyclic aromatic hydrocarbons (PAHs)-contaminated soils, J. Hazard. Mater, vol.262, pp.691-700, 2013. ,
Investigation of disinfection byproducts formation in ferrate(VI) pre-oxidation of NOM and its model compounds followed by chlorination, J. Hazard. Mater, vol.292, pp.197-204, 2015. ,
Clays and oxide minerals as catalysts and nanocatalysts in Fenton-like reactions -A review, Appl. Clay Sci, vol.47, pp.182-192, 2010. ,
PHYTO-INTEGRATED® Remediation: Expanding Phytoremediation by Combining Engineering, Treatment Media & Vegetation, in: Aquaconsoil: Sustainable Use and Management of Soil, Sediment and Water Resources, 2019. ,
Effects of structural and compositional variations of dissolved humic materials on pyrene Koc values, Environ. Sci. Technol, vol.21, pp.243-251, 1987. ,
Humic acid modified Fenton reagent for enhancement of the working pH range, Appl. Catal. B Environ, vol.72, pp.26-36, 2007. ,
Multitracer test approach to characterize reactive transport in karst aquifers, Ground Water, vol.45, pp.36-45, 2007. ,
Air Oxidation : A Possible New Pathway for PAH Stabilization in Sediments and Soils, Environ. Sci. Technol, vol.44, pp.8547-8552, 2010. ,
Reduction of Benzene and Naphthalene Mass Transfer from Crude Oils by Aging-Induced Interfacial Films, Environ. Sci. Technol, vol.38, pp.2102-2110, 2004. ,
Sols et environnement, 2ème éditi, 2011. ,
Degradation of polycyclic aromatic hydrocarbons in soil: The fenton reagent versus ozonation, Environ. Technol, vol.25, pp.155-164, 2004. ,
, Removal of organic matters in wastewater treatment by ferrate (VI)-technology, 2013.
, Microchem. J, vol.107, pp.115-120
Polycyclic aromatic hydrocarbon removal from contaminated soils using fatty acid methyl esters, Chemosphere, vol.79, pp.138-143, 2010. ,
Influence of organic matter from soils and sediments from various origins on the sorption of some chlorinated aliphatic hydrocarbons: implications on Koc correlations, Environ. Sci. Technol, vol.24, pp.1687-1693, 1990. ,
Production and accumulation of surfactants during the chemical oxidation of PAH in soil, Chemosphere, vol.77, pp.540-545, 2009. ,
A green chemometricsassisted fluorimetric detection method for the direct and simultaneous determination of six polycyclic aromatic hydrocarbons in oil-field wastewaters, Spectrochim. Acta -Part A Mol. Biomol. Spectrosc, vol.200, pp.93-101, 2018. ,
Drying / rewetting cycles stimulate release of colloidal-bound phosphorus in riparian soils, Geoderma, vol.321, pp.32-41, 2018. ,
URL : https://hal.archives-ouvertes.fr/insu-01713336
Preparation and Aromatic Hydrocarbon Removal Performance of Potassium Ferrate, J. Spectrosc, vol.8, 2014. ,
,
Singlet Oxygen in Surface Waters. 3. Photochemical Formation and Steady-State Concentrations in Various Types of Waters, Environ. Sci. Technol, vol.20, pp.341-348, 1986. ,
The catalytic decomposition of hydrogen peroxide by iron salts, Proc. R. Soc. London, Ser. A-Mathematical Phys. Sci, vol.147, pp.332-351, 1934. ,
Release of intracellular solutes by four soil bacteria exposed to dilution stress, Soil Sci. Soc. Am. J, vol.64, pp.1630-1637, 2000. ,
Degradation of bisphenol A by ferrate(VI) oxidation: Kinetics, products and toxicity assessment, Chem. Eng. J, vol.262, pp.34-40, 2015. ,
Synthesis of the mixed oxides of iron and quartz and their catalytic activities for the Fenton-like oxidation, Catal. Commun, vol.9, pp.955-959, 2008. ,
Evolution of dissolved organic matter during abiotic oxidation of coal tarcomparison with contaminated soils under natural attenuation, Environ. Sci. Pollut. Res, vol.22, pp.1431-1443, 2015. ,
URL : https://hal.archives-ouvertes.fr/hal-01249370
Biodegradation aspects of Polycyclic Aromatic Hydrocarbons (PAHs): A review, J. Hazard. Mater, vol.169, pp.1-15, 2009. ,
Estimating the Total Oxidant Demand for In Situ Chemical Oxidation Design, Remediat. J. J. Environ. Cleanup Costs, Technol. Tech, vol.13, pp.5-16, 2003. ,
Effect of Aging of Chemicals in Soil on Their Biodegradability and Extractability, Environ. Sci. {&} Technol, vol.29, pp.537-545, 1995. ,
Influence of humic acids of different origins on oxidation of phenol and chlorophenols by permanganate, J. Hazard. Mater, vol.182, pp.681-688, 2010. ,
Degradability of hexachlorocyclohexanes in water using ferrate (VI), Water Sci. Technol, vol.71, pp.405-411, 2015. ,
Zur Konstitution von K3, 1990. ,
, Zeitschrift fur Anorg. und Allg. Chemie, vol.586, pp.115-124
Kinetics and Mechanism of Oxidations by Peroxydisulfate, Chem. Rev, vol.62, pp.185-203, 1962. ,
Chemical degradation of PCDD/F in contaminated sediment, Ecol. Chem. Eng. S-CHEMIA I Inz. Ekol. S, vol.23, pp.473-482, 2016. ,
Kinetics of Heat-Assisted Persulfate Oxidation of Methyl tert -Butyl Ether (MTBE). Soil Sediment Contam, An Int. J, vol.11, pp.447-448, 2002. ,
Measurement of hydroxyl radical activity in a soil slurry using the spin trap ??-(4-pyridyl-1-oxide)-N-tert-butylnitrone, Environ. Sci. Technol, vol.32, pp.3436-3441, 1998. ,
, , 2006.
Effect of expandable clays and cometabolism on PAH biodegradability, Environ. Sci. Pollut. Res. Int, vol.10, pp.277-80, 2003. ,
Integration of electrokinetics and chemical oxidation for the remediation of creosotecontaminated clay, J. Hazard. Mater, vol.144, pp.538-548, 2007. ,
, Technical and Regulatory Guidance for In Situ Chemical Oxidation of Contaminated Soil and Groundwater, Interstate Technol. Regul. Counc. J, 2005.
Progress in the development and use of ferrate ( VI ) salt as an oxidant and coagulant for water and wastewater treatment, Water Res, vol.36, pp.1397-1408, 2002. ,
Enhanced coagulation with potassium ferrate(VI) for removing humic substances, Environ. Eng. Sci, vol.20, pp.627-633, 2003. ,
Advances in the development and application of ferrate(VI) for water and wastewater treatment, J. Chem. Technol. Biotechnol, vol.89, pp.165-177, 2014. ,
Research progress in the use of ferrate(VI) for the environmental remediation, J. Hazard. Mater, vol.146, pp.617-623, 2007. ,
The application of potassium ferrate for sewage treatment, J. Environ. Manage, vol.79, pp.215-220, 2006. ,
The role of potassium ferrate(VI) in the inactivation of Escherichia coli and in the reduction of COD for water remediation, Desalination, vol.210, pp.266-273, 2007. ,
The exploration of potassium ferrate(VI) as a disinfectant/coagulant in water and wastewater treatment, Chemosphere, vol.63, pp.212-219, 2006. ,
Principles of microbial PAH-degradation in soil, Environ. Pollut, vol.133, pp.71-84, 2005. ,
Kinetics and mechanism of the reduction of ferrate by one-electron reductants, Inorganica Chim. Acta, vol.293, pp.214-219, 1999. ,
An overview of In situ air sparging, Groundw. Monit. Remediat, vol.13, pp.127-135, 1993. ,
Etude de la mobilité des hydrocarbures aromatiques polycycliques ( HAP ) contenus dans un sol industriel pollué, 2004. ,
Effect of pH on Fenton and Fenton-like oxidation, Environ. Technol, vol.30, pp.183-190, 2009. ,
Effect of various chemical oxidation agents on soil microbial communities, Chem. Eng. J, vol.314, pp.257-265, 2017. ,
Comparative Removal of Polycyclic Aromatic Hydrocarbons Using Iron Oxide and Hydrogen Peroxide in Soil Slurries, Environ. Eng. Sci, vol.21, pp.741-751, 2004. ,
ISCO l'oxydation chimique in situ -Cahier SKB, 2010. ,
Special Report: Priority pollutants: I-a perspective view, Environ. Sci. Technol, vol.13, pp.416-423, 1979. ,
Remediation of contaminated soils using foams, L. Contam. Reclam, vol.5, pp.41-54, 1997. ,
Iron (II) Activated Persulfate Oxidation of MGP Contaminated Soil. Soil Sediment Contam, vol.16, pp.523-537, 2007. ,
Reaction of nonaqueous phase TCE with permanganate, Environ. Sci. Technol, vol.39, pp.9303-9308, 2005. ,
Occurrence and environmental fate of veterinary antibiotics in the terrestrial environment, Water. Air. Soil Pollut, vol.214, pp.163-174, 2011. ,
Desorption kinetics of phenanthrene in aquifer material lacks hysteresis, Environ. Sci. Technol, vol.38, pp.4169-4175, 2004. ,
Diffusive mass exchange of nonreactive substances in dual-porosity porous systems -column experiments under saturated conditions, Hydrol. Process, vol.30, pp.914-926, 2016. ,
Impact of inorganic buffering ions on the stability of Fe(VI) in aqueous solution: Role of the carbonate ion, Phys. Chem. Chem. Phys, vol.18, pp.4415-4422, 2016. ,
Characterization of mineral oil, coal tar and soil properties and investigation of mechanisms that affect coal tar entrapment in and removal from porous media, 2004. ,
Treatment of petroleum-contaminated soils using iron mineral catalyzed hydrogen peroxide, pp.137-141, 1998. ,
Colloid-Facilitated Sorption and Transport, in: Encyclopedia of Soils in the Environment, pp.276-284, 2004. ,
Metal Retention and Transport on Colloidal Particles in the Environment, Elements, vol.1, pp.205-210, 2007. ,
Remediation approaches for polycyclic aromatic hydrocarbons (PAHs) contaminated soils: Technological constraints, emerging trends and future directions, Chemosphere, vol.168, pp.944-968, 2017. ,
Decomposition of Hydrogen Peroxide and Organic Compounds in The Presence of Iron and Iron Oxides, Environ. Sci. Technol, vol.36, pp.1467-1476, 2002. ,
Use of the ferrates (FeIV-VI) in combination with hydrogen peroxide for rapid and effectIVe remediation of water -Laboratory and pilot study, Water Sci. Technol, vol.72, pp.1869-1878, 2015. ,
Surfactant-enhanced remediation of polycyclic aromatic hydrocarbons: A review, J. Environ. Manage, vol.199, pp.46-61, 2017. ,
Photoinduced toxicity of Polycyclic aromatic hydrocarbons to Daphnia Magna: Ultraviolet-mediated effects and the toxicity of polycyclic aromatic hydrocarbon photoproducts, Environ. Toxicol. Chem, vol.25, p.1079, 2006. ,
Reliability of semiquantitative data extracted from transmission microscopy-Fourier transform infrared spectra of coal, Energy & Fuels, vol.4, pp.290-295, 1990. ,
, Oxidation Potentials, 1952.
Oxidation of a PAH polluted soil using modified Fenton reaction in unsaturated condition affects biological and physico-chemical properties, Chemosphere, vol.86, pp.659-664, 2012. ,
URL : https://hal.archives-ouvertes.fr/hal-01486347
A hybrid Fenton oxidation-microbial treatment for soil highly contaminated with benz(a)anthracene, Chemosphere, vol.43, p.182, 2001. ,
Application of Fenton Oxidation to Remediate Polycyclic Aromatic Hydrocarbons-Contaminated Soil, J. Chem. Eng. JAPAN, vol.35, pp.582-586, 2002. ,
Organoclays as Variably Permeable Reactive Barrier Media to Manage NAPLs in Ground Water, J. Geotech. Geoenvironmental Eng, vol.138, pp.115-127, 2012. ,
Ferrate ( VI ) Oxidation of Arsenite ( III ) and Subsequent Removal of Arsenate ( V ) by Iron ( III ) Coagulation Submitted to, Environ. Sci. Technol, vol.37, pp.3-5, 2003. ,
Oxidative transformation of micropollutants during municipal wastewater treatment: Comparison of kinetic aspects of selective (chlorine, chlorine dioxide, ferrateVI, and ozone) and non-selective oxidants (hydroxyl radical), Water Res, vol.44, pp.555-566, 2010. ,
Photochemical processes for water treatment, Chem. Rev, vol.93, pp.671-698, 1993. ,
Traitement par oxydation chimique de sols de friches industrielles contaminées par des Hydrocarbures Aromatiques Polycycliques, 2011. ,
Oxidant selection to treat an aged PAH contaminated soil by in situ chemical oxidation, J. Environ. Chem. Eng, vol.1, pp.1261-1268, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-00916658
PAH oxidation in aged and spiked soils investigated by column experiments, Chemosphere, vol.91, pp.406-414, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-00808811
Chemical oxidation efficiency for aged, PAH-contaminated sites: An investigation of limiting factors, J. Environ. Chem. Eng, vol.7, 2019. ,
URL : https://hal.archives-ouvertes.fr/hal-02161312
Guide Sur Le Comportement des polluants dans le sol et les nappes, 2008. ,
A study of the preparation and reactivity of potassium ferrate, Chemosphere, vol.61, pp.537-543, 2005. ,
Solubilization of model polycyclic aromatic hydrocarbons by nonionic surfactants, Chem. Eng. Sci, vol.57, pp.2825-2835, 2002. ,
Biodegradation of aged polycyclic aromatic hydrocarbons (PAHs) by microbial consortia in soil and slurry phases, J. Hazard. Mater, vol.150, pp.21-26, 2008. ,
Persulfate oxidation for in situ remediation of TCE. II. Activated by chelated ferrous ion, Chemosphere, vol.55, pp.1225-1233, 2004. ,
Potential for activated persulfate degradation of BTEX contamination, Water Res, 2008. ,
Influence of pH on persulfate oxidation of TCE at ambient temperatures, Chemosphere, vol.66, pp.106-113, 2007. ,
Effect of various chemical oxidation reagents on soil indigenous microbial diversity in remediation of soil contaminated by PAHs, Chemosphere, vol.226, pp.483-491, 2019. ,
Enhanced degradation of polycyclic aromatic hydrocarbons by indigenous microbes combined with chemical oxidation, Chemosphere, vol.213, pp.551-558, 2018. ,
Effectiveness of Potassium ferrate (K2FeO4) for simultaneous removal of heavy metals and natural organic matters from river water, Water. Air. Soil Pollut, vol.211, pp.313-322, 2010. ,
Catalytic Decomposition of Hydrogen Peroxide on Iron Oxide: Kinetics, Mechanism, and Implications, Environ. Sci. Technol, vol.32, pp.1417-1423, 1998. ,
Preparation and Characterization of Encapsulated Potassium Ferrate as an in Situ Oxidant for Remediation of Ground Water, International Symposium on Environmental Science and Technology, pp.1779-1783, 2009. ,
Fenton process for treatment of desizing wastewater, Water Res, vol.31, pp.2050-2056, 1997. ,
Enhanced Fenton degradation of hydrophobic organics by simultaneous iron and pollutant complexation with cyclodextrins, Sci. Total Environ, vol.307, pp.215-229, 2003. ,
Fe (III) supported on resin as effective catalyst for the heterogeneous oxidation of phenol in aqueous solution, Chemosphere, vol.59, pp.117-125, 2005. ,
Oxidative degradation of chlorpyrifos using ferrate(VI): Kinetics and reaction mechanism, Ecotoxicol. Environ. Saf, vol.170, pp.259-266, 2019. ,
Kinetics and mechanism of the oxidative degradation of parathion by Ferrate(VI), Chem. Eng. J, vol.365, pp.142-152, 2019. ,
Deep desulfurization of diesel oil oxidized by Fe (VI) systems, Fuel, vol.87, pp.422-428, 2008. ,
Role of goethite dissolution in the oxidation of 2-chlorophenol with hydrogen peroxide, Chemosphere, vol.46, pp.76-81, 2002. ,
Polar Compounds Dominate in Vitro Effects of Sediment Extracts, Environ. Sci. Technol, vol.45, pp.2384-2390, 2011. ,
Degradation and formation of polycyclic aromatic compounds during bioslurry treatment of an aged gasworks soil, Environ. Toxicol. Chem, vol.22, pp.1413-1420, 2003. ,
Transformation of PAHs during ethanol-Fenton treatment of an aged gasworks' soil, Chemosphere, vol.65, pp.1288-1294, 2006. ,
Sources, Fate, and Toxic Hazards of Oxygenated Polycyclic Aromatic Hydrocarbons (PAHs) at PAH-contaminated Sites, Ambio, vol.36, p.36, 2007. ,
Interfacial Films in Coal Tar Nonaqueous-Phase Liquid-Water Systems, Environ. Sci. Technol, vol.27, pp.2914-2918, 1993. ,
Phase Partition of Organic Pollutants Between Coal Tar and Water Under Variable Experimental Conditions, 2000. ,
URL : https://hal.archives-ouvertes.fr/hal-02043293
Développement de techniques pour la remédiation d ' aquifères pollués par des composés organochlorés, 2018. ,
Surfactant foam technology for in situ removal of heavy chlorinated, J. Hazard. Mater, vol.299, pp.630-638, 2015. ,
Surfactant foam flushing for in situ removal of DNAPLs in shallow soils, J. Hazard. Mater, vol.321, pp.247-255, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-01480524
Comparison of Fe(VI) (FeO42-) and ozone in inactivating Bacillus subtilis spores, Chemosphere, vol.83, pp.1228-1233, 2011. ,
Pharmaceuticals and pesticides in secondary effluent wastewater: Identification and enhanced removal by acid-activated ferrate(VI), Water Res, vol.148, pp.272-280, 2019. ,
A Review of the hazardous effects of polycyclic aromatic hydrocarbons on living organisms, pp.1-49, 2009. ,
The Application of In Situ Air Sparging as an Innovative Soils and Ground Water Remediation Technology, Groundw. Monit. Remediat, vol.12, pp.137-145, 1992. ,
DOM-Enhanced Mobilization of Benzo(a)pyrene in a Contaminated Soil under Different Chemical Conditions, Phys. Chem. Earth, vol.23, pp.199-203, 1998. ,
Residual diesel measurement in sand columns after surfactant alcohol washing, Ground Water, vol.34, pp.162-167, 1996. ,
Surfactant solutions developed for NAPL recovery in contaminated aquifers, Ground Water, vol.34, pp.143-154, 1996. ,
Aquifer washing by micellar solutions: 2. DNAPL recovery mechanisms for an optimized alcohol-surfactant-solvent solution, J. Contam. Hydrol, vol.30, pp.1-31, 1998. ,
Oxidative degradation of pentachlorophenol by permanganate for ISCO application, Environ. Technol. (United Kingdom), vol.39, pp.651-657, 2018. ,
URL : https://hal.archives-ouvertes.fr/hal-02096707
Oxidation of phenol by green rust and hydrogen peroxide at neutral pH, Sep. Purif. Technol, vol.61, pp.442-446, 2008. ,
Fenton-like oxidation of 2,4,6-trinitrotoluene using different iron minerals, Sci. Total Environ, vol.385, pp.242-251, 2007. ,
URL : https://hal.archives-ouvertes.fr/hal-01848848
Experimental in situ chemical peroxidation of atrazine in contaminated soil, Chemosphere, vol.62, pp.1481-1489, 2006. ,
A review of immiscible fluids in the subsurface : properties, models, characterization and remediation, J. Contam. Hydrol, vol.6, pp.107-163, 1990. ,
Electron-transfer processes: peroxydisulfate, a useful and versatile reagent in organic chemistry, Acc. Chem. Res, vol.16, pp.27-32, 1983. ,
Bioremediation technologies for treatment of PAH-contaminated soil and strategies to enhance process efficiency, Rev. Environ. Sci. Biotechnol, vol.5, pp.347-374, 2006. ,
Colloid Mobilization in a Fractured Soil during Dry-Wet Cycles: Role of Drying Duration and Flow Path Permeability, Environ. Sci. Technol, vol.49, pp.9100-9106, 2015. ,
Ferrate(VI) based chemical oxidation for the remediation of aged PCB contaminated soil: Comparison with conventional oxidants and study of limiting factors, Chem. Eng. J, vol.355, pp.109-117, 2019. ,
URL : https://hal.archives-ouvertes.fr/hal-01905110
Optimization of 1H and 13C NMR methods for structural characterization of acetone and pyridine soluble/insoluble fractions of a coal tar pitch, Energy and Fuels, vol.22, pp.1824-1835, 2008. ,
Efficient use of Fe metal as an electron transfer agent in a heterogeneous Fenton system based on Fe0/Fe3O4 composites, Chemosphere, vol.60, pp.1118-1123, 2005. ,
A new model for predicting the hydraulic conductivity of unsaturated porous media, Water Resour. Res, vol.12, pp.513-522, 1976. ,
Surfactant-enhanced remediation of contaminated soil: a review, Eng. Geol, vol.60, pp.371-380, 2001. ,
Toxicological profile for polycyclic aromatic hydrocarbons, 1995. ,
Preparation of magnetite-based catalysts and their application in heterogeneous Fenton oxidation -A review, Appl. Catal. B Environ, pp.249-265, 2015. ,
Experiments utilizing FeO4 2-for purifying water, Water Res, vol.8, pp.543-547, 1974. ,
Oxygen-containing polycyclic aromatic hydrocarbons (OPAHs) in urban soils of Bratislava, Slovakia: Patterns, relation to PAHs and vertical distribution, Environ. Pollut, vol.159, pp.539-549, 2011. ,
Green Fenton-like magnetic nanocatalysts: Synthesis, characterization and catalytic application, Appl. Catal. B Environ, pp.667-677, 2015. ,
Remediating soils: Bioavailability as a tool in site management, The 10th SETAC Europe Special Science Symposium, 2014. ,
Applications of electrochemical ferrate(VI) for degradation of trichloroethylene in the aqueous phase, Desalin. WATER Treat, vol.57, pp.5138-5145, 2016. ,
Enhanced degradation of polycyclic aromatic hydrocarbons by biodegradation combined with a modified Fenton reaction, Chemosphere, vol.45, pp.11-20, 2001. ,
Surfactant production accompanying the modified Fenton oxidation of hydrocarbons in soil, Chemosphere, vol.65, pp.1610-1615, 2006. ,
Rate Constants and Mechanism of Reaction of SO4 with Aromatic Compounds, J. Am. Chem. Soc, vol.99, pp.163-164, 1977. ,
Stabilized Ferrates (VI): Synthesis Method and Applications, Chemical Water and Wastewater Treatment III, pp.95-103, 1994. ,
A review of classic Fenton's peroxidation as an advanced oxidation technique, J. Hazard. Mater, vol.98, pp.33-50, 2003. ,
Etude expérimentale de la dispersion dans un milieu à double porosité en condition saturée et insaturée, 2007. ,
Two-scale modeling of solute dispersion in unsaturated double-porosity media: Homogenization and experimental validation, Int. J. Numer. Anal. Methods Geomech, vol.35, pp.1536-1559, 2011. ,
URL : https://hal.archives-ouvertes.fr/insu-00564724
Magnetic Fe2MO4 (M:Fe, Mn) activated carbons: Fabrication, characterization and heterogeneous Fenton oxidation of methyl orange, J. Hazard. Mater, vol.185, pp.653-661, 2011. ,
, Criteria for a Recommended Standard: Occupational Exposure to Coal Tar Products, 1977.
Applications of e.s.r. spectroscopy to kinetics and mechanism in organic chemistry, Chem. Soc. Rev, vol.8, 1979. ,
Role of NAPL thermal properties in the effectiveness of hot water flooding, Transp. Porous Media, vol.79, pp.393-405, 2009. ,
ISCO technology overview: Do you really understand the chemistry?, 20th Annual International Conference on Soils, Sediments and Water -Book CONTAMINATED SOILS, SEDIMENTS AND WATER, pp.287-308, 2006. ,
Synthèse des ferrates ( VI ) de métaux alcalins en utilisant le chlore comme oxydant, 2007. ,
Wet Peroxide Oxidation of Phenolic Solutions over Different Iron-Containing Zeolitic Materials, Ind. Eng. Chem. Res, vol.40, pp.3921-3928, 2001. ,
Effect of Modified Fenton's Reaction on Microbial Activity and Removal of PAHs in Creosote Oil Contaminated Soil, Biodegradation, vol.17, pp.29-39, 2006. ,
Optimization of the application of the Fenton chemistry for the remediation of a contaminated soil with polycyclic aromatic hydrocarbons, J. Chem. Technol. Biotechnol, vol.91, pp.1763-1772, 2016. ,
Fate of iron and polycyclic aromatic hydrocarbons during the remediation of a contaminated soil using iron-activated persulfate: A column study, Sci. Total Environ, pp.480-488, 2016. ,
Dissolved organic matter fluorescence spectroscopy as a tool to estimate biological activity in a coastal zone submitted to anthropogenic inputs, Org. Geochem, vol.31, pp.124-132, 2000. ,
URL : https://hal.archives-ouvertes.fr/hal-02293400
Naphthalene degradation by Pseudomonas sp. HOB1: In vitro studies and assessment of naphthalene degradation efficiency in simulated microcosms, J. Hazard. Mater, vol.166, pp.1466-1473, 2009. ,
Decontamination of soils containing PAHs by electroremediation: A review, J. Hazard. Mater, vol.177, pp.1-11, 2010. ,
Human-Cell Mutagens in Respirable Airborne Particles in the Northeastern United States. 1. Mutagenicity of Fractionated Samples, Environ. Sci. Technol, vol.38, pp.682-689, 2004. ,
Le ferrate (VI) de potassium : optimisation de sa synthèse par voie hétérogène à une échelle semi-industrielle et applications au traitement des eaux, de polluants modèles aux effluents réels, 2014. ,
Mechanism for the oxidation of phenol by sulfatoferrate(VI): Comparison with various oxidants, J. Environ. Manage, vol.157, pp.287-296, 2015. ,
URL : https://hal.archives-ouvertes.fr/hal-01561537
Removal of pharmaceuticals by a potassium ferrate(VI) material: from practical implementation to reactivity prediction, Environ. Sci. Water Res. Technol, vol.3, pp.699-709, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-01679480
Use of different kinds of persulfate activation with iron for the remediation of a PAH-contaminated soil, Sci. Total Environ, pp.649-656, 2016. ,
Ultrasound assisted, thermally activated persulfate oxidation of coal tar DNAPLs, J. Hazard. Mater, vol.318, pp.497-506, 2016. ,
Stoichiometry and mechanism of the chromium(II)-peroxydisulfate reaction, J. Am. Chem. Soc, vol.90, pp.3700-3704, 1968. ,
In situ chemical oxidation of BTEX and MTBE by ferrate: pH dependence and stability, J. Hazard. Mater, vol.324, pp.448-456, 2017. ,
Degradation of chlorophenols by means of advanced oxidation processes: a general review, Appl. Catal. B Environ, vol.47, pp.219-256, 2004. ,
Protective role of fine silts for PAH in a former industrial soil, Environ. Pollut, vol.179, pp.81-87, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-01119519
Fundamentals of ISCO using permanganate, Situ Chemical Oxidation for Groundwater Remediation, pp.89-138, 2011. ,
Fundamentals of ISCO using Hydrogen Peroxide, Situ Chemical Oxidation for Groundwater Remediation, pp.33-88, 2011. ,
Fundamentals of isco using persulfate, in: In Situ Chemical Oxidation for Groundwater Remediation, pp.147-185, 2011. ,
The free-radical chemistry of persulfate-based total organic carbon analyzers, Mar. Chem, vol.41, issue.93, p.90108, 1993. ,
Thermal enhancement of coal tar pumping in saturated porous media, in: Aquaconsoil: Sustainable Use and Management of Soil, Sediment and Water Resources, 2017. ,
Advanced Oxidation Processes for Organic Contaminant Destruction Based on the Fenton Reaction and Related Chemistry Advanced Oxidation Processes for Organic Contaminant Destruction Based on the Fenton, Crit. Rev. Environ. Sci. Technol, vol.36, pp.1-84, 2006. ,
Integration of innovative geotechnical and environmental solutions enables site redevelopment and protects sensitive off-site receptor from petroleum hydrocarbons, in: Aquaconsoil: Sustainable Use and Management of Soil, Sediment and Water Resources, 2019. ,
Foam for Environmental Remediation : Generation and Blocking Effect, Transp. Porous Media, vol.124, pp.787-801, 2018. ,
URL : https://hal.archives-ouvertes.fr/hal-02393780
Field demonstration of foam injection to con fi ne a chlorinated solvent source zone, J. Contam. Hydrol, vol.214, pp.16-23, 2018. ,
Atlas of electrochemical equilibria in aqueous solutions, 1966. ,
Ferrate(VI)-Induced Arsenite and Arsenate Removal by In Situ Structural Incorporation into Magnetic Iron(III) Oxide Nanoparticles, Environ. Sci. Technol, vol.47, pp.3283-3292, 2013. ,
Ferrate(VI)-prompted removal of metals in aqueous media: Mechanistic delineation of enhanced efficiency via metal entrenchment in magnetic oxides, Environ. Sci. Technol, vol.49, pp.2319-2327, 2015. ,
A critical review of ferrate(VI)-based remediation of soil and groundwater, Environ. Res, vol.160, pp.420-448, 2018. ,
Formation of assimilable organic carbon during oxidation of natural waters with ozone, chlorine dioxide, chlorine, permanganate, and ferrate, Water Res, vol.45, 2002. ,
Oxydation chimique in situ de la zone non saturée de sols contaminés par du goudron de houille : du laboratoire au terrain, 2017. ,
Comparison of the effectiveness of soil heating prior or during in situ chemical oxidation (ISCO) of aged PAH-contaminated soils, Environ. Sci. Pollut. Res, vol.24, pp.11265-11278, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-01938587
Selection of oxidant doses for in situ chemical oxidation of soils contaminated by polycyclic aromatic hydrocarbons (PAHs): A review, J. Hazard. Mater, vol.312, pp.280-297, 2016. ,
URL : https://hal.archives-ouvertes.fr/hal-01780410
Enhanced electrokinetic remediation of contaminated manufactured gas plant soil, Eng. Geol, vol.85, pp.132-146, 2006. ,
The chemical nature of coal tar, Chemistry of Coal Utilization, vol.2, pp.1287-1370, 1945. ,
The rate constant of the bimolecular reaction between hydrogen peroxide and ferrous ion, Experientia, vol.10, pp.202-203, 1954. ,
Polycyclic aromatic hydrocarbons sorbed on soils: A short review of chemical oxidation based treatments, J. Hazard. Mater, vol.138, pp.234-251, 2006. ,
Chemical and photochemical degradation of acenaphthylene. Intermediate identification, J. Hazard. Mater, vol.75, pp.89-98, 2000. ,
Oxidation of Orange G by persulfate activated by Fe(II), Fe(III) and zero valent iron (ZVI), Chemosphere, vol.101, pp.86-92, 2014. ,
Polycyclic aromatic hydrocarbon-contaminated soils: bioaugmentation of autochthonous bacteria and toxicological assessment of the bioremediation process by means of Vicia faba L, Environ. Sci. Pollut. Res, vol.23, pp.7930-7941, 2016. ,
Reaction of Ferrate(VI)/Ferrate(V) with Hydrogen Peroxide and Superoxide Anion -A Stopped-Flow and Premix Pulse Radiolysis Study, Free Radic. Res, vol.24, pp.187-198, 1996. ,
PAHs contaminated soils remediation by ozone oxidation, Desalin. Water Treat, vol.23, pp.161-172, 2010. ,
Colloid mobilization and transport in groundwater, Colloids Surfaces A Physicochem. Eng. Asp, vol.107, pp.1-56, 1996. ,
Effects of ionic strength and flow rate on colloid release: Relating kinetics to intersurface potential energy, J. Colloid Interface Sci, 1994. ,
Degradation of 2,4-dichlorophenol by immobilized iron catalysts, Water Res, vol.35, 1994. ,
The effects of ISCO on microbiological processes : a review, Remediat. J, vol.16, pp.57-70, 2006. ,
Composition and Dissolution of a Migratory, Weathered Coal Tar Creosote DNAPL. Front. Environ. Sci, vol.4, pp.1-10, 2016. ,
Inactivation of f2 virus with ferrate (VI), Water Res, vol.14, pp.90106-90108, 1980. ,
Identification, Quantification and Distribution of Pac-Metabolites, Heterocyclic Pac and Substituted Pac in Groundwater Samples of Tar-Contaminated Sites From Germany, Polycycl. Aromat. Compd, vol.28, pp.320-338, 2008. ,
Stability of the Ferrate (VI) Ion in Aqueous Solution, Anal. Chem, vol.23, pp.1312-1314, 1951. ,
Potassium Ferrate(VI), Inorg. Synth, vol.4, pp.164-168, 1953. ,
Environmental organic chemistry, Second Edi, 2005. ,
Application of ferrate(VI) in the treatment of industrial wastes containing metal-complexed cyanides: A green treatment, J. Environ. Sci, vol.21, pp.1347-1352, 2009. ,
Ferrate(VI) and ferrate(V) oxidation of organic compounds: Kinetics and mechanism, Coord. Chem. Rev, vol.257, pp.495-510, 2013. ,
Oxidative transformations of environmental pharmaceuticals by Cl2, ClO2, O3, and Fe(VI): Kinetics assessment, Chemosphere, vol.73, pp.1379-1386, 2008. ,
Review on High Valent FeVI (Ferrate): A Sustainable Green Oxidant in Organic Chemistry and Transformation of Pharmaceuticals, ACS Sustain. Chem. Eng, vol.4, pp.18-34, 2016. ,
Ferrate(VI) oxidation of ibuprofen: A kinetic study, Environ. Chem. Lett, vol.3, pp.182-185, 2006. ,
Ferrate(VI) oxidation of hydrogen sulfide, Environ. Sci. Technol, vol.31, pp.2486-2491, 1997. ,
, Situ Chemical Oxidation: Technology Description and Status, pp.1-32, 2011.
Recent Developments in Chelate Degradation, Environ. Technol, vol.22, pp.791-801, 2001. ,
Use of solvent extraction to remediate soils contaminated with hydrocarbons, J. Hazard. Mater, vol.124, pp.224-229, 2005. ,
Phenanthrene and pyrene oxidation in contaminated soils using Fenton's reagent, J. Hazard. Mater, vol.161, pp.967-973, 2009. ,
ISCO with fracturing: challenges of full-scale application at an operative site, in: Aquaconsoil: Sustainable Use and Management of Soil, Sediment and Water Resources, 2019. ,
Traitement des sols et nappes par oxydation chimique in situ, 2012. ,
Impact of chemical oxidation on soil quality, Chemosphere, vol.72, pp.282-289, 2008. ,
URL : https://hal.archives-ouvertes.fr/hal-00299153
Manufacture of coal tars and pitches, Bitouminous materials: Asphalts, tars and pitches, vol.III, 1966. ,
Zero-valent iron activated persulfate remediation of polycyclic aromatic hydrocarbon-contaminated soils: An in situ pilot-scale study, Chem. Eng. J, vol.355, pp.65-75, 2019. ,
A Review of Ferrates (VI) Oxidation of Organic Compounds, Adv. Mater. Res, pp.774-776, 2013. ,
Persistence of Persulfate in Uncontaminated Aquifer Materials, Environ. Sci. Technol, vol.44, pp.3098-3104, 2010. ,
Soil microbial toxicity of eight polycyclic aromatic compounds: Effects on nitrification, the genetic diversity of bacteria, and the total number of protozoans, Environ. Toxicol. Chem, vol.21, pp.1644-1650, 2002. ,
Capillary pressure-saturation relationships for porous granular materials: Pore morphology method vs. pore unit assembly method, Adv. Water Resour, vol.107, pp.22-31, 2017. ,
Ferrate treatment for removing chromium from high-level radioactive tank waste, Environ. Sci. Technol, vol.35, pp.216-221, 2001. ,
Hydrogen sulfide and organic compounds removal in municipal wastewater using ferrate (VI) and ultraviolet radiation, Environ. Heal. Eng. Manag, vol.4, pp.7-14, 2016. ,
Bioremediation of coal tar PAH in soils using biodiesel, Chemosphere, vol.44, pp.1131-1136, 2001. ,
Utilization of a submersible UV fluorometer for monitoring anthropogenic inputs in the Mediterranean coastal waters, Mar. Pollut. Bull, vol.60, pp.350-362, 2010. ,
URL : https://hal.archives-ouvertes.fr/hal-00455649
Rates of Trace Mineral-Catalyzed Decomposition of Hydrogen Peroxide, J. Environ. Eng, vol.133, pp.853-859, 2007. ,
Catalyzed persulfate remediation of chlorinated and recalcitrant compounds in soil, Proceedings of the Fifth International Conference on Remediation of Chlorinated and Recalcitrant Compounds, 2006. ,
Rebound of a coal tar creosote plume following partial source zone treatment with permanganate, J. Contam. Hydrol, vol.102, pp.154-171, 2008. ,
Diversity and Abundance of High-Molecular-Weight Azaarenes in PAH-Contaminated Environmental Samples, Environ. Sci. Technol, vol.51, pp.14047-14054, 2017. ,
Aliphatic and polycyclic aromatic hydrocarbons and sulfur/oxygen derivatives in Northwestern Mediterranean sediments: Spatial and temporal variability, fluxes, and budgets, Environ. Sci. Technol, vol.30, pp.2495-2503, 1996. ,
Preferential flow and aging of NAPL in the unsaturated soil zone of a hazardous waste site : implications for contaminant transport, J. PLANT Nutr. SOIL Sci, vol.166, pp.102-110, 2003. ,
Rapid diagnosis of polycyclic aromatic hydrocarbons (PAH) in contaminated soils with the use of ultraviolet detection, Field Analytical Chemistry and Technology. p, vol.2, pp.221-229, 1998. ,
État de l'art sur la technologie de dépollution des sols et des eaux souterraines par oxydation in situ, 2005. ,
Synergism of the action of sulfite oxidation initiators, iron and peroxydisulfate ions, Russ. J. Phys. Chem, vol.73, pp.1215-1219, 1999. ,
Removal of hydrophobic organic pollutants from soil washing/flushing solutions: A critical review, J. Hazard. Mater, vol.306, pp.149-174, 2016. ,
URL : https://hal.archives-ouvertes.fr/hal-01413709
Iron(VI): Hypothetical Candidate for the Martian Oxidant, Icarus, vol.147, pp.68-78, 2000. ,
Situ Chemical Oxidation of Contaminated Soil and Groundwater Using Persulfate : A Review, Environ. Sci. Technol, vol.40, pp.55-91, 2010. ,
Effects of heat-activated persulfate oxidation on soil microorganisms, WATER Res, vol.42, pp.1013-1022, 2008. ,
Model study on sorption of polycyclic aromatic hydrocarbons to goethite, J. Colloid Interface Sci, vol.330, pp.244-249, 2009. ,
, A Citizen's Guide to Solvent Extraction, 1996.
Formation of mixed FeII-FeIII oxides and their reactivity to catalyze chemical oxidation: Remediation of hydrocarbon contaminated soils, 2011. ,
Effect of thermal pretreatment on the availability of PAHs for successive chemical oxidation in contaminated soils, Environ. Sci. Pollut. Res, vol.23, pp.1371-1380, 2016. ,
URL : https://hal.archives-ouvertes.fr/hal-01205445
Application of magnetite catalyzed chemical oxidation (Fenton-like and persulfate) for the remediation of oil hydrocarbon contamination, Fuel, vol.96, pp.270-276, 2012. ,
URL : https://hal.archives-ouvertes.fr/hal-00878590
Treatment of hydrocarbon contamination under flow through conditions by using magnetite catalyzed chemical oxidation, Environ. Sci. Pollut. Res, vol.20, pp.22-30, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-00916609
Remediation of PAH-contaminated soils by magnetite catalyzed Fenton-like oxidation, Appl. Catal. B Environ, pp.10-17, 2012. ,
URL : https://hal.archives-ouvertes.fr/hal-00878582
Application of magnetite-activated persulfate oxidation for the degradation of PAHs in contaminated soils, Chemosphere, vol.87, pp.234-240, 2012. ,
URL : https://hal.archives-ouvertes.fr/hal-00878576
Fenton oxidation to remediate PAHs in contaminated soils: A critical review of major limitations and counter-strategies, Sci. Total Environ, vol.569, pp.179-190, 2016. ,
URL : https://hal.archives-ouvertes.fr/hal-01338529
Manganese ferrite nanoparticles synthesized through a nanocasting route as a highly active Fenton catalyst, Catal. Commun, vol.8, pp.2037-2042, 2007. ,
A closed-form equation for predicting the hydraulic conductivity of unsaturated soils, Soil Sci. Soc. Am. J, vol.44, pp.892-898, 1980. ,
A Unified Force and Torque Balance for Colloid Transport: Predicting Attachment and Mobilization under Favorable and Unfavorable Conditions, Langmuir, vol.35, pp.9061-9070, 2019. ,
Fenton degradation assisted by cyclodextrins of a high molecular weight polycyclic aromatic hydrocarbon benzo[a]pyrene, J. Hazard. Mater, vol.168, pp.1296-1301, 2009. ,
Modified Fenton oxidation of polycyclic aromatic hydrocarbon ( PAH )-contaminated soils and the potential of bioremediation as posttreatment, Sci. Total Environ, vol.419, pp.240-249, 2012. ,
Inorganic chelated modified-Fenton treatment of polycyclic aromatic hydrocarbon (PAH)-contaminated soils, Chem. Eng. J, vol.180, pp.1-8, 2012. ,
Current status and prospects of Fenton oxidation for the decontamination of persistent organic pollutants (POPs) in soils, Chem. Eng. J, vol.213, pp.295-317, 2012. ,
Thermal Treatment of Hydrocarbon-Impacted Soils: A Review of Technology Innovation for, Sustainable Remediation. Engineering, vol.2, pp.426-437, 2016. ,
Removal of polycyclic aromatic hydrocarbons from aged-contaminated soil using cyclodextrins: Experimental study, Environ. Pollut, vol.140, pp.427-435, 2006. ,
URL : https://hal.archives-ouvertes.fr/hal-00077348
Particle size and aggregation effects on magnetite reactivity toward carbon tetrachloride, Environ. Sci. Technol, vol.41, pp.5277-5283, 2007. ,
Sorption and transport of sulfamethazine in agricultural soils amended with invasive-plant-derived biochar, J. Environ. Manage, vol.141, pp.95-103, 2014. ,
Surfacemediated production of hydroxyl radicals as a mechanism of iron oxide nanoparticle biotoxicity, J. Am. Chem. Soc, vol.133, pp.35-41, 2011. ,
Factors Affecting the Stability of Aqueous Potassium Ferrate(VI) Solutions, Anal. Chem, vol.24, pp.1497-1498, 1952. ,
Evaluation of Chemical Treatments for a Mixed Contaminant Soil, J. Environ. Eng, vol.134, issue.743, pp.743-749, 2008. ,
Kinetics of Contaminant Degradation by Permanganate, Environ. Sci. Technol, vol.40, pp.1055-1061, 2006. ,
Mechanism of the Ferric Ion Catalyzed Decomposition of Hydrogen Peroxide . Effect of Organic Substrates, J. Am. Chem. Soc, vol.95, pp.2987-2991, 1973. ,
Oxidation of alcohols by Fenton's reagent. Effect of copper ion, J. Am. Chem. Soc, vol.93, pp.4275-4281, 1971. ,
Comparison of UV/hydrogen peroxide, potassium ferrate(VI), and ozone in oxidizing the organic fraction of oil sands process-affected water (OSPW), Water Res, vol.100, pp.476-485, 2016. ,
Reducing polycyclic aromatic hydrocarbons content in coal tar pitch by potassium permanganate oxidation and solvent extraction, J. Environ. Chem. Eng. Biochem. Pharmacol, vol.3, pp.1513-1521, 2015. ,
USE OF IRON MINERALS IN OPTIMIZING THE PEROXIDE TREATMENT OF CONTAMINATED SOILS, WATER Environ. Res, vol.65, pp.839-844, 1993. ,
Enhanced Reactant-Contaminant Contact through the Use of Persulfate, Situ Chemical Oxidation (ISCO), 2011. ,
Oxidation of sorbed hexachlorobenzene in soils using catalyzed hydrogen peroxide, J. Hazard. Mater, vol.39, pp.33-47, 1994. ,
Mineralization of a sorbed polycyclic aromatic hydrocarbon in two soils using catalyzed hydrogen peroxide, Water Res, vol.36, pp.4283-4292, 2002. ,
Chemistry of Modified Fenton's Reagent (Catalyzed H2 O2 Propagations-CHP) for In Situ Soil and Groundwater Remediation, J. Environ. Eng, vol.131, pp.612-622, 2005. ,
A distributed reactivity model for sorption by soils and sediments. 4. Intraparticle heterogeneity and phase-distribution relationships under nonequilibrium conditions, Environmental Science and Technology, pp.881-888, 1996. ,
Contaminants at Former Manufactured Gas Plants: Sources, Properties, and Processes, Crit. Rev. Environ. Sci. Technol, vol.41, pp.1883-1969, 2011. ,
Determination of effective release rates of polycyclic aromatic hydrocarbons and dissolved organic carbon by column outflow experiments, Eur. J. Soil Sci, vol.56, pp.803-813, 2005. ,
GC / MS-FID analysis of BSTFA derivatized polar components of diesel particulate matter ( NBS SRM-1650 ) extract *, pp.808-812, 1993. ,
Oxidation of Recalcitrant Organics in Subsurface Systems, Hazard. Waste Hazard. Mater, vol.9, pp.245-265, 1992. ,
Evaluation of HUD-funded lead hazard control treatments at 6 years post-intervention, Environ. Res, vol.102, pp.237-248, 2006. ,
The heat, free energy and entropy of the ferrate(vi) ion, J. Am. Chem. Soc, vol.80, pp.2038-2041, 1958. ,
Activation of persulfate by Fe ( III ) species : Implications for 4-tert -butylphenol degradation, J. Hazard. Mater, vol.322, pp.380-386, 2017. ,
URL : https://hal.archives-ouvertes.fr/hal-01438110
Potential role of polycyclic aromatic hydrocarbons (PAHs) oxidation by fungal laccase in the remediation of an aged contaminated soil, Soil Biol. Biochem, vol.40, pp.789-796, 2008. ,
Metabolic activation of polycyclic and heterocyclic aromatic hydrocarbons and DNA damage: A review, Toxicol. Appl. Pharmacol, 2005. ,
Effect of chelating agent on the oxidation rate of PCP in the magnetite/H2O2 system at neutral pH, J. Mol. Catal. A Chem, vol.311, pp.29-35, 2009. ,
URL : https://hal.archives-ouvertes.fr/hal-01795550
Removal of selected endocrine disrupting chemicals (EDCs) and pharmaceuticals and personal care products (PPCPs) during ferrate(VI) treatment of secondary wastewater effluents, Water Res, vol.46, pp.2194-2204, 2012. ,
Antagonistic effect of humic acid and naphthalene on biochar colloid transport in saturated porous media, Chemosphere, vol.189, pp.556-564, 2017. ,
Mobilization of soil organic matter by complexing agents and implications for polycyclic aromatic hydrocarbon desorption, Chemosphere, vol.43, pp.1013-1021, 2001. ,
Feasibility of treating aged polycyclic aromatic hydrocarbons (PAHs)-contaminated soils using ethyl lactate-based Fenton treatment via parametric and kinetic studies, Environ. Sci. Pollut. Res, vol.22, pp.329-342, 2015. ,
Fenton based remediation of polycyclic aromatic hydrocarbons-contaminated soils, Chemosphere, vol.83, pp.1414-1430, 2011. ,
Application of vegetable oils in the treatment of polycyclic aromatic hydrocarbons-contaminated soils, J. Hazard. Mater, vol.177, pp.28-41, 2010. ,
Activated persulfate oxidation of perfluorooctanoic acid (PFOA) in groundwater under acidic conditions, Int. J. Environ. Res. Public Health, vol.13, 2016. ,
Ferrate(VI) Oxidation of Weak-Acid Dissociable Cyanides, Environ. Sci. Technol, vol.42, pp.3005-3010, 2008. ,
Study on Stability of Ferrate (VI) under the Effect of the Buffering Agent and the Strong Oxidizer, Adv. Mater. Res, pp.2319-2322, 2010. ,
Assessing removal efficiency of dissolved organic matter in wastewater treatment using fluorescence excitation emission matrices with parallel factor analysis and second derivative synchronous fluorescence, Bioresour. Technol, vol.144, pp.407-427, 2001. ,
Catalytic wet peroxide oxidation of phenol with a Fe/active carbon catalyst, Appl. Catal. B Environ, vol.65, pp.261-268, 2006. ,
Decomposing phenol by the hidden talent of ferromagnetic nanoparticles, Chemosphere, vol.73, pp.1524-1528, 2008. ,
Effect of potassium ferrate (K2FeO4) on sludge dewaterability under different pH conditions, Chem. Eng. J, vol.210, pp.467-474, 2012. ,
Effect and mechanism of persulfate activated by different methods for PAHs removal in soil, J. Hazard. Mater, vol.254, issue.255, pp.228-235, 2013. ,
Treatment of selected pharmaceuticals by ferrate(VI): Performance, kinetic studies and identification of oxidation products, J. Pharm. Biomed. Anal, vol.106, pp.37-45, 2015. ,
Strategies for Enhancing the Heterogeneous Fenton Catalytic Reactivity: A review, Appl. Catal. B Environ, vol.255, p.117739, 2019. ,
Differentiationg with fluorescence spectroscopy the sources of DOM in soils subjected do drying, Chemosphere, vol.38, pp.45-50, 1998. ,
, Annexe 1. Le site pilote, une ancienne cokerie???????????????
, , vol.295
, Annexe 2. Tomographie par absorption des rayons X???????????????, p.301
, Annexe 3. Analyse d'identification approfondie du chromatogramme (GCMS) du DNAPL, p.306
, Courbes de drainage-imbibition obtenues sur les réplicats de colonnes de billes de verre??????????????????????????????????310
, Annexe 5. Evolutions des paramètres des lixiviats -colonnes de billes de verre????, p.311
, Annexe 6. Identification des CAP-O formés suite aux oxydations??????????, p.313
, Annexe 1 : Le site pilote, une ancienne cokerie Le projet BIOXYVAL est lié à un partenaire industriel : Arcelor-Mittal, par la mise à disposition d'un site atelier sur lequel différentes techniques pourront être expérimentées par l'intermédiaire d'essais pilotes. Les matériaux (sols et DNAPL) nécessaires aux
, A l'origine, le site abritait un complexe sidérurgique (hauts fourneaux) ainsi que sa propre cokerie. Les volumes et la dispersion des polluants hérités de ces activités au droit du site rendent les traitements traditionnels inabordables techniquement et financièrement. Ce site est toutefois loin d'être un cas isolé
, Dans le domaine de la dépollution des sols, la multiplicité et la diversité des facteurs pouvant interagir avec le traitement mis en oeuvre (ne serait-ce que les différences de composition chimiques et minéralogiques d'un sol) sont telles que chaque site représente une étude de cas à part entière, d'où l'importance d'effectuer des essais (laboratoire et/ou pilote) pour adapter le traitement utilisé par la suite sur site. La compréhension des mécanismes et du fonctionnement d'un traitement de dépollution nécessite donc tout d'abord une bonne connaissance du milieu dans lequel il pourra être appliqué. C'est pourquoi ce rapide « état des lieux
, Les données discutées ci-après proviennent de la synthèse de nombreux rapports fournis par le propriétaire du site (Arcelor Mittal) suite à des investigations, diagnostics et des travaux de dépollution déjà effectués
, Contexte Historique et géographique 1.1.1. Contexte historique
, Des traces d'exploitation des mines et d'établissement de forges remontent au XIVème siècle, mais l'implantation d'une usine sidérurgique sur le site étudié date du XIX ème siècle. Le site a d'abord abrité un complexe sidérurgique (à l'Ouest de la parcelle pilote) dont les résidus de fonderie ont d'abord été déposés au droit la cokerie. Les matériaux constituants le crassier ont ensuite été utilisés comme remblais pour rehausser et mettre le terrain à niveau avant extension. En 1912 la cokerie est mise en service avec une première série d'équipements comprenant entre autres : 45 fours, une installation de récupération des sous-produits dont des dégoudronneurs, une usine à benzol, des laveurs chimiques, une distillerie de goudrons, une usine à gaz
, ainsi que l'installation (vers 1920) d'une zone de rétention des sousproduits (crassier sidérurgique) au Sud-Ouest de la parcelle pilote. Le site est endommagé Des séoles 7 sont mises à jour ainsi qu'un ancien bac de chargement contenant des matériaux goudronneux. Des phases pures de NAPL sont retrouvées dans de nombreux puits/fosses creusés lors des diagnostics du sous-sol. En 2008, les terres polluées par les goudrons sont estimées à 8 350 m 3 (sur 1,2 ha), avec 28 000 m 3 de terres peu ou pas impactées qui seraient à déplacer pour excaver les terres polluées, L'activité se développe avec la construction de 118 nouveaux fours, d'un gazomètre et d'une station de débenzolage, 2010.
, Au 1 er janvier 2014, cette friche devient le site atelier du projet BIOXYVAL. 1.1.2. Contexte urbain et cadastral
, Le site atelier est situé proche d'une agglomération comptant environ 8000 habitants, dont 4000 logent dans un rayon de 5 km. Le centre-ville lui-même jouxte la partie
, Les diagnostics montrent qu'une partie de ces bâtiments est construite au-dessus d'une zone source de pollution. Au total, la friche de cette cokerie s'étend aujourd'hui sur 2
ancienne cokerie a été construit sur des alluvions récents de la rivière avoisinante (assez hétérogènes, de type argilo-sableuses, graves et sableuses) qui peuvent contenir des galets calcaires (issus des calcaires du Bajocien dans lesquels les alluvions se sont creusés) et des minerais ferreux (formations ferrifères de l'Aalénien, Ils reposent sur les marnes du Toarcien. Comme énoncé précédemment ,
, En surface, des remblais (limons et sables/laitiers/mâchefers) sont rencontrés sur 1 à 5 m. Ils reposent sur les alluvions de la rivière (sables et graviers dans une matrice limoneuse, traversé de passées de galets ou de limons) d'une puissance de 2 à 6 m. Les marnes toarciennes sont donc rencontrées vers 6-8 m de profondeur