(III) produit lors de la biooxydation est réduit rapidement, 2013. ,
En plus d'entrainer l'oxydation des minerais de fer ou de la pyrite, une acidification locale du pH serait attendue, accélérant encore le processus d'oxydation, la souche acidophile utiliserait le Fe(II), 2001. ,
2013) et former des minéraux fer-soufre tels que la mélanterite (FeSO 4 ?7H 2 De plus, il est intéressant de retenir l'activité ferri-réductrice de certaines souches acidophiles (Johnson and Hallberg, 2008) qui pourrait alors s'ajouter à celle des IRB et des BSR, pourraient entrainer la réduction du Fe(III) formé par les acidophiles Si la réduction par At. ferroxydans n'a pas été vérifiée ici, les références qui le démontrent sont nombreuses (Johnson and McGinness, 1991. ,
des mines (environ 13°C) n'est pas un obstacle à l'activité métabolique de certaines souches acidophiles, 2010. ,
L'oxydation de la sidérite a été démontrée par Il n'est cependant pas précisé par les auteurs si c'est une roche naturelle ou le produit d'une co-précipitation, Même si l'oxydation de la sidérite est lente (4-6 semaines), les auteurs la considèrent comme complète, 2004. ,
II) soluble et la rouille verte, dont le Fe(II) est biodisponible immédiatement, ont bien été oxydés. En revanche ,
Bacterial iron homeostasis, FEMS Microbiology Reviews, vol.27, issue.2-3, pp.215-237, 2003. ,
DOI : 10.1046/j.1365-2958.2003.03337.x
URL : https://academic.oup.com/femsre/article-pdf/27/2-3/215/18127215/27-2-3-215.pdf
Leaching of Pyrite by Acidophilic Heterotrophic Iron-Oxidizing Bacteria in Pure and Mixed Cultures, Applied and Environmental Microbiology, vol.65, pp.585-590, 1999. ,
A manual colorimetric procedure for measuring ammonium nitrogen in soil and plant Kjeldahl digests, Communications in Soil Science and Plant Analysis, vol.58, issue.9-10, pp.961-969, 1989. ,
DOI : 10.1002/jsfa.2740220104
Life in acid: pH homeostasis in acidophiles, Trends in Microbiology, vol.15, issue.4, pp.165-171, 2007. ,
DOI : 10.1016/j.tim.2007.02.005
Carbonated ferric green rust as a new material for efficient phosphate removal, Journal of Colloid and Interface Science, vol.384, issue.1, pp.121-127, 2012. ,
DOI : 10.1016/j.jcis.2012.06.038
Characteristics and activities of sulfate reducing bacteria. Biotechnology Handbooks Sulfate reducing Bacteria, 1995. ,
Transformation of Hematite into Magnetite During Dissimilatory Iron Reduction???Conditions and Mechanisms, Geomicrobiology Journal, vol.64, issue.5, pp.403-416, 2007. ,
DOI : 10.1016/S0016-7037(97)00257-3
Bioenergetic challenges of microbial iron metabolisms, Trends in Microbiology, vol.19, issue.7, pp.330-340, 2011. ,
DOI : 10.1016/j.tim.2011.05.001
Genomic insights into microbial iron oxidation and iron uptake strategies in extremely acidic environments, Environmental Microbiology, vol.150, issue.73, 2011. ,
DOI : 10.1099/mic.0.26966-0
Solubility and dissimilatory reduction kinetics of iron(III) oxyhydroxides: A linear free energy relationship, Geochimica et Cosmochimica Acta, vol.73, issue.18, 2009. ,
DOI : 10.1016/j.gca.2009.06.006
Character and origin of ferriginous voidal concretions in wheatered triassic sediment of the telford basin, pp.346-354, 1993. ,
Bacterial and Chemical Reductive Dissolution of Mn-, Co-, Cr-, and Al-Substituted Goethites, Geomicrobiology Journal, vol.16, issue.3, pp.245-258, 1999. ,
DOI : 10.1080/014904599270622
Geobacter sulfurreducens sp. nov. a hydrogen-and acetate-oxidizing dissimilatory metal-reducing microorganism, Applied and Environmental Microbiology, vol.60, pp.3752-3759, 1994. ,
Reactive iron in marine sediments, Geochimica et Cosmochimica Acta, vol.53, issue.3, pp.619-632, 1989. ,
DOI : 10.1016/0016-7037(89)90005-7
Fe(II) Oxidation Is an Innate Capability of Nitrate-Reducing Bacteria That Involves Abiotic and Biotic Reactions, Journal of Bacteriology, vol.195, issue.14, pp.3260-3268, 2013. ,
DOI : 10.1128/JB.00058-13
aragonite: A combined experimental and quantum-mechanical investigation, The Journal of Chemical Physics, vol.2, issue.1, p.14201, 2013. ,
DOI : 10.1016/S1386-1425(97)00175-3
URL : https://hal.archives-ouvertes.fr/hal-01507502
The neomuran origin of archaebacteria, the negibacterial root of the universal tree and bacterial megaclassification., International Journal of Systematic and Evolutionary Microbiology, vol.52, issue.1, pp.7-76, 2002. ,
DOI : 10.1099/00207713-52-1-7
Mechanical properties of magnetite (Fe3O4), hematite (??-Fe2O3) and goethite (??-FeO??OH) by instrumented indentation and molecular dynamics analysis, Materials Chemistry and Physics, vol.129, issue.3, pp.862-870, 2011. ,
DOI : 10.1016/j.matchemphys.2011.05.056
URL : https://hal.archives-ouvertes.fr/hal-00611044
The iron oxides: Structure, properties, reactions, occurrences and uses. Second, completely revised and extended edition, 2003. ,
DOI : 10.1002/3527602097
The fox Operon from Rhodobacter Strain SW2 Promotes Phototrophic Fe(II) Oxidation in Rhodobacter capsulatus SB1003, Journal of Bacteriology, vol.189, issue.5, pp.1774-1782, 2007. ,
DOI : 10.1128/JB.01395-06
Mineralogical and morphological constraints on the reduction of Fe(III) minerals by Geobacter sulfurreducens, Geochimica et Cosmochimica Acta, vol.73, issue.14, pp.4004-4022, 2009. ,
DOI : 10.1016/j.gca.2009.04.009
Solute Transport and Cell Energetics Biotechnology Handbooks Sulfate reducing Bacteria, 1995. ,
Mineralogical and microtextural characterisation of the anthropicorigin ageing of iron ore in Lorraine (France) Comptes Rendus Geoscience, pp.455-462, 2002. ,
Application of Raman spectroscopy to identify iron minerals commonly found in mine wastes, Chemical Geology, vol.290, issue.3-4, pp.101-108, 2011. ,
DOI : 10.1016/j.chemgeo.2011.09.001
An57Fe m??ssbauer effect study of ankerite, Physics and Chemistry of Minerals, vol.50, issue.2, pp.108-113, 1985. ,
DOI : 10.2475/ajs.s3-48.284.149
Pyrite dissolution in acidic media, Geochimica et Cosmochimica Acta, vol.68, issue.22, pp.4559-4569, 2004. ,
DOI : 10.1016/j.gca.2004.04.012
URL : https://hal.archives-ouvertes.fr/hal-00159372
Mechanical metallurgy. Metallurgy and metallurgical engineering series, 1961. ,
Reductive dissolution of iron(III) (hydr)oxides by hydrogen sulfide, Langmuir, vol.8, issue.6, pp.1671-1675, 1992. ,
DOI : 10.1021/la00042a030
Thiobacillus ferrooxidans, a facultative hydrogen oxidizer, Applied and Environmental Microbiology, vol.56, pp.2922-2923, 1990. ,
Examination of the siderite-magnesite mineral series by Fourier transform infrared spectroscopy, American Mineralogist, vol.74, pp.187-190, 1989. ,
« Les affaissements miniers dans le bassin ferrifère lorrain : quand le territoire re-politise la gestion du risque » Développement durable et territoires [En ligne] Dossier 11 : Catastrophes et Territoires, p.7073, 2008. ,
Anaerobic oxidation of ferrous iron by purple bacteria, a new type of phototrophic metabolism, Applied and Environmental Microbiology, vol.60, pp.4517-4526, 1994. ,
Contrasting effects of Al substitution on microbial reduction of Fe(III) (hydr)oxides, Geochimica et Cosmochimica Acta, vol.74, issue.24, pp.7086-7099, 2010. ,
DOI : 10.1016/j.gca.2010.09.008
Ultrastructure and chemical composition of the sheath of Leptothrix discophora SP-6., Journal of Bacteriology, vol.175, issue.24, pp.7808-7818, 1993. ,
DOI : 10.1128/jb.175.24.7808-7818.1993
Neutrophilic Fe-Oxidizing Bacteria Are Abundant at the Loihi Seamount Hydrothermal Vents and Play a Major Role in Fe Oxide Deposition, Applied and Environmental Microbiology, vol.68, issue.6, pp.3085-3093, 2002. ,
DOI : 10.1128/AEM.68.6.3085-3093.2002
Comparative genomics of fresh water Fe-oxidizing bacteria: implications for physiology ecology and systematics, Frontiers in microbiology, vol.4, 2013. ,
Iron-Oxidizing Bacteria: An Environmental and Genomic Perspective, Annual Review of Microbiology, vol.64, issue.1, pp.561-83, 2010. ,
DOI : 10.1146/annurev.micro.112408.134208
Marine sulfate-reducing bacteria cause serious corrosion of iron under electroconductive biogenic mineral crust, Environmental Microbiology, vol.18, issue.7, pp.1772-1787, 2012. ,
DOI : 10.5006/0010-9312-17.6.119
ABSTRACT, Applied and Environmental Microbiology, vol.80, issue.4, pp.1226-1236, 2014. ,
DOI : 10.1128/AEM.02848-13
Nitrate reduction by mixed iron(II-III) hydroxycarbonate green rust in the presence of phosphate anions: The key parameters influencing the ammonium selectivity, Water Research, vol.62, pp.29-39, 2014. ,
DOI : 10.1016/j.watres.2014.05.028
URL : https://hal.archives-ouvertes.fr/hal-01076618
Magnetite as a precursor for green rust through the hydrogenotrophic activity of the iron-reducing bacteria Shewanella putrefaciens, Geobiology. In press, 2015. ,
URL : https://hal.archives-ouvertes.fr/hal-01504772
Mössbauer and XRD comparative study of host rock and iron rich mineral samples from Paz del Rio Iron Ore Mineral Mine in Colombia, Hyperfine Interactions, vol.156157, pp.395-402, 2004. ,
Sulfur-mediated electron shuttling during bacterial iron reduction, Science, vol.169, issue.3-4, pp.1039-1042 ,
DOI : 10.1016/S0009-2541(00)00221-7
Role of Thiobacillus and sulfate-reducing bacteria in iron biocycling in oxic and acidic mine tailings, FEMS Microbiology Ecology, vol.55, issue.1, pp.11-24, 1996. ,
DOI : 10.1139/e85-207
Comportement mécanique des matériaux. Ecole Nationale Supérieure des mines de Saint- Etienne, 2009. ,
Environmental processes mediated by iron-reducing bacteria, Current Opinion in Biotechnology, vol.7, issue.3, pp.287-294, 1996. ,
DOI : 10.1016/S0958-1669(96)80032-2
Electrically conductive bacterial nanowires produced by Shewanella oneidensis strain MR-1 and other microorganisms, Proceedings of the National Academy of Sciences of the USA 103, pp.1358-11363, 2006. ,
DOI : 10.1021/ac60289a016
URL : http://www.pnas.org/content/103/30/11358.full.pdf
Modélisation du comportement à court et à long terme des roches de la formation ferrifère lorraine, Thèse de Doctorat, INPL, 2001. ,
Constitutive modelling of the elastic???plastic, viscoplastic and damage behaviour of hard porous rocks within the unified theory of inelastic flow, Acta Geotechnica, vol.21, issue.3, pp.11440-11454, 2014. ,
DOI : 10.1016/j.ijplas.2003.12.007
URL : https://hal.archives-ouvertes.fr/hal-01300960
Effect of suction on the mechanical behaviour of iron ore rock, International Journal for Numerical and Analytical Methods in Geomechanics, vol.28, issue.8, pp.789-827, 2005. ,
DOI : 10.1002/nag.438
Effect of suction on the mechanical behaviour of iron ore rock, International Journal for Numerical and Analytical Methods in Geomechanics, vol.28, issue.8, pp.789-827, 2005. ,
DOI : 10.1002/nag.438
Impact of chemical weathering on micro/macro-mechanical properties of oolithic iron ore, International Journal of Rock Mechanics and Mining Sciences, vol.64, pp.236-245 ,
DOI : 10.1016/j.ijrmms.2013.09.005
URL : https://hal.archives-ouvertes.fr/hal-01301483
Modelling of the drying and flooding of underground iron mines in Lorraine (France), International Journal of Rock Mechanics and Mining Sciences, vol.43, issue.3, pp.388-407, 2006. ,
DOI : 10.1016/j.ijrmms.2005.07.004
A short-and long-term rheological model to predict iron mine collapses in Lorraine (France) Computers and Geotechnics, pp.557-570, 2003. ,
The influence of different fluids on the static fatigue of a porous rock: Poro-mechanical coupling versus chemical effects, Mechanics of Materials, vol.71, 2014. ,
DOI : 10.1016/j.mechmat.2013.06.011
URL : https://hal.archives-ouvertes.fr/hal-01300958
Impact of chemical weathering on micro/macro-mechanical properties of oolithic iron ore, International Journal of Rock Mechanics and Mining Sciences, vol.64, 2013. ,
DOI : 10.1016/j.ijrmms.2013.09.005
URL : https://hal.archives-ouvertes.fr/hal-01301483
Modeling of the drying and flooding of underground iron mines in Lorraine (France), International Journal of Rock Mechanics & Mining Sciences, vol.43, 2006. ,
Acidithiobacillus ferrivorans, sp. nov.; facultatively anaerobic, psychrotolerant iron-, and sulfur-oxidizing acidophiles isolated from metal mine-impacted environments, Extremophiles, vol.36, issue.1, pp.9-19, 2010. ,
DOI : 10.1128/jb.177.5.1414-1417.1995
Biomineralization by Gallionella, Geomicrobiology Journal, vol.21, pp.5325-5330, 2004. ,
Atom Exchange between Aqueous Fe(II) and Goethite: An Fe Isotope Tracer Study, Environmental Science & Technology, vol.43, issue.4, pp.1102-1107, 2009. ,
DOI : 10.1021/es802402m
Budding and/or appendeged bacteria. Bergeys's ?anual of Systematic Bacteriology 3, 1974- 1979 -Edited by ,
Secondary mineralization pathways induced by dissimilatory iron reduction of ferrihydrite under advective flow, Geochimica et Cosmochimica Acta, vol.67, issue.16, pp.2977-2992, 2003. ,
DOI : 10.1016/S0016-7037(03)00276-X
Structural constraints of ferric (hydr)oxides on dissimilatory iron reduction and the fate of Fe(II), Geochimica et Cosmochimica Acta, vol.68, issue.15, pp.3217-3229, 2004. ,
DOI : 10.1016/j.gca.2003.10.041
The iron-oxidizing proteobacteria, Microbiology, vol.150, issue.7, pp.1551-1564, 2011. ,
DOI : 10.1099/mic.0.26966-0
Physiology of phototrophic iron(II)-oxidizing bacteria: implications for modern and ancient environments, FEMS Microbiology Ecology, vol.47, issue.2, 2008. ,
DOI : 10.1007/978-1-4615-4187-5_2
Pathways of ferrous iron mineral formation upon sulfidation of lepidocrocite surfaces, Geochimica et Cosmochimica Acta, vol.81, pp.69-81, 2012. ,
DOI : 10.1016/j.gca.2011.12.014
Surface chemistry and morphology of poorly crystalline iron sulfides precipitated in media containing sulfate-reducing bacteria, Chemical Geology, vol.144, issue.1-2, pp.87-97, 1998. ,
DOI : 10.1016/S0009-2541(97)00122-8
Extracellular electron transfer, Cellular and Molecular Life Sciences, vol.58, issue.11, pp.1562-1571, 2001. ,
DOI : 10.1007/PL00000796
Sulphate reduction and sulphur cycling in lake sediments: a review, Freshwater Biology, vol.5, issue.4, pp.431-451, 2001. ,
DOI : 10.1007/BF02180229
Infrared study of carbonate minerals, American Mineralogist, vol.45, pp.311-324, 1960. ,
Insight into the evolution of the iron oxidation pathways, Biochimica et Biophysica Acta (BBA) - Bioenergetics, vol.1827, issue.2, pp.161-175, 2013. ,
DOI : 10.1016/j.bbabio.2012.10.001
Thiobacillus Ferrooxidans the bioenergetics of an acidophilic chemolithotroph, Biochimica et Biophysica Acta (BBA) - Reviews on Bioenergetics, vol.683, issue.2, pp.89-117, 1982. ,
DOI : 10.1016/0304-4173(82)90007-6
Interactions between the Fe(III)-Reducing Bacterium Geobacter sulfurreducens and Arsenate, and Capture of the Metalloid by Biogenic Fe(II), Applied and Environmental Microbiology, vol.71, issue.12, pp.8642-8648, 2005. ,
DOI : 10.1128/AEM.71.12.8642-8648.2005
Redox zoning, rates of sulfate reduction and interactions with Fe-reduction and methanogenesis in a shallow sandy aquifer, R??m??, Denmark, Geochimica et Cosmochimica Acta, vol.63, issue.1, pp.137-151, 1999. ,
DOI : 10.1016/S0016-7037(98)00272-5
Influence of Aluminum Substitution on the Reactivity of Magnetite Nanoparticles, The Journal of Physical Chemistry C, vol.111, issue.28, pp.10247-10253, 2007. ,
DOI : 10.1021/jp072295+
Isolation and Characterization of a Genetically Tractable Photoautotrophic Fe(II)-Oxidizing Bacterium, Rhodopseudomonas palustris Strain TIE-1, Applied and Environmental Microbiology, vol.71, issue.8, pp.84487-4496, 2005. ,
DOI : 10.1128/AEM.71.8.4487-4496.2005
Carbon, Iron and Sulfur Metabolism in Acidophilic Micro-Organisms, Advances in Microbial Physiology, vol.54, pp.201-255, 2008. ,
DOI : 10.1016/S0065-2911(08)00003-9
Ferric Iron Reduction by Acidophilic Heterotrophic Bacteria, Applied and Environmental Microbiology, vol.57, pp.207-211, 1991. ,
Assessment of Vivianite Formation in Shewanella Putrefaciens Culture, Environmental Technology, vol.21, issue.9, 2000. ,
DOI : 10.1080/09593332108618044
Contribution of Anionic vs. Neutral Polymers to the Formation of Green Rust 1 from ??-FeOOH Bioreduction, Geomicrobiology Journal, vol.60, issue.7, pp.600-615, 2013. ,
DOI : 10.1080/01490450601134325
URL : https://hal.archives-ouvertes.fr/hal-00915084
The formation of green rust induced by tropical river biofilm components, Science of The Total Environment, vol.409, issue.13, pp.2586-2596 ,
DOI : 10.1016/j.scitotenv.2011.03.030
URL : https://hal.archives-ouvertes.fr/hal-00721559
Reduced iron induced nitric oxide and nitrous oxide emission, Water Research, vol.45, issue.18, pp.5945-5952, 2011. ,
DOI : 10.1016/j.watres.2011.08.056
Geomicrobiological Cycling of Iron, Reviews in Mineralogy and Geochemistry, vol.59, issue.1, pp.85-108, 2005. ,
DOI : 10.2138/rmg.2005.59.5
Formation of Fe(III)-minerals by Fe(II)-oxidizing photoautotrophic bacteria 1 1Associate editor: L. G. Benning, Geochimica et Cosmochimica Acta, vol.68, issue.6, pp.1217-1226, 2004. ,
DOI : 10.1016/j.gca.2003.09.006
Fe(III) mineral formation and cell encrustation by the nitrate-dependent Fe(II)-oxidizer strain BoFeN1, Geobiology, vol.41, issue.4, pp.235-245, 2005. ,
DOI : 10.1021/es049373g
Reclassification of some species of Thiobacillus to the newly designated genera Acidithiobacillus gen. nov., Halothiobacillus gen. nov. and Thermithiobacillus gen. nov, INTERNATIONAL JOURNAL OF SYSTEMATIC AND EVOLUTIONARY MICROBIOLOGY, vol.50, issue.2, pp.511-51, 2000. ,
DOI : 10.1099/00207713-50-2-511
sp. BoFeN1 - questioning the existence of enzymatic Fe(II) oxidation, Geobiology, vol.210, issue.2, pp.180-190, 2013. ,
DOI : 10.1038/2101150a0
ABSTRACT, Applied and Environmental Microbiology, vol.80, issue.3, pp.1051-1061, 2014. ,
DOI : 10.1128/AEM.03277-13
Bacterial iron biomineralisation in nature, FEMS Microbiology Reviews, vol.20, issue.3-4, pp.315-326, 1997. ,
DOI : 10.1038/343258a0
The potential significance of microbial Fe(III) reduction during deposition of Precambrian banded iron formations, Geobiology, vol.119, issue.3, pp.167-177, 2005. ,
DOI : 10.1016/j.chemgeo.2005.01.020
Chemical properties of material surfaces, Surfactant Science Series, vol.20011074, 2001. ,
DOI : 10.1201/9780585418049
Dissolution and reduction of magnetite by bacteria, Environmental Science & Technology, vol.29, pp.2535-2540, 1995. ,
Cost of metallic corrosion Uhlig's corrosion handbook, In Revie RW, pp.15-20, 2005. ,
Dissimilatory bacterial reduction of Al-substituted goethite in subsurface sediments, Geochimica et Cosmochimica Acta, vol.65, issue.17, pp.2913-2924, 2001. ,
DOI : 10.1016/S0016-7037(01)00656-1
Growth and Maintenance of Thiobacillus ferrooxidans Cells, Applied And Environmental Microbiology, pp.2801-2806, 1990. ,
1. The power of databases: The RRUFF project, Highlights in Mineralogical Crystallography, pp.1-1, 2015. ,
DOI : 10.1515/9783110417104-003
URL : https://hal.archives-ouvertes.fr/hal-01631711
Kinetics of reductive bulk dissolution of lepidocrocite, ferrihydrite, and goethite, Geochimica et Cosmochimica Acta, vol.65, issue.9, pp.1367-1379, 2001. ,
DOI : 10.1016/S0016-7037(00)00623-2
Iron reduction and alteration of nontronite NAu-2 by a sulfate-reducing bacterium, Geochimica et Cosmochimica Acta, vol.68, issue.15, pp.3251-3260, 2004. ,
DOI : 10.1016/j.gca.2004.03.004
S, Geomicrobiology Journal, vol.175, issue.2, pp.103-117, 2006. ,
DOI : 10.1007/BF02941773
URL : https://hal.archives-ouvertes.fr/in2p3-00671043
Shewanella oneidensis MR-1 Uses Overlapping Pathways for Iron Reduction at a Distance and by Direct Contact under Conditions Relevant for Biofilms, Applied and Environmental Microbiology, vol.71, issue.8, pp.4414-4426, 2005. ,
DOI : 10.1128/AEM.71.8.4414-4426.2005
Comparative spectroscopic study of three ferric sulfates: kornelite, lausenite and pentahydrate. 40th Lunar and Planetary Conference, p.1867, 2009. ,
Kinetic Analysis of the Bacterial Reduction of Goethite, Environmental Science & Technology, vol.35, issue.12, pp.2482-2490, 2001. ,
DOI : 10.1021/es001956c
Microbial reduction of metals and radionuclides, FEMS Microbiology Reviews, vol.27, issue.2-3, pp.411-425, 2003. ,
DOI : 10.1007/BF02347481
Competitive mechanisms for inhibition of sulfate reduction and methane production in the zone of ferric iron reduction in sediments, Applied and Environmental Microbiology, vol.53, pp.2636-2641, 1987. ,
Dissimilatory Fe(III) and Mn(IV) Reduction, Advances in microbial physiology, vol.49, pp.219-286, 2004. ,
DOI : 10.1016/S0065-2911(04)49005-5
URL : http://europepmc.org/articles/pmc372814?pdf=render
Enzymatic iron and uranium reduction by sulfate-reducing bacteria, Marine Geology, vol.113, issue.1-2, pp.41-53, 1993. ,
DOI : 10.1016/0025-3227(93)90148-O
Anaerobic production of magnetite by a dissimilatory iron-reducing microorganism, Nature, vol.330, issue.6145, pp.252-254, 1987. ,
DOI : 10.1038/330252a0
Bacterial Recognition of Mineral Surfaces: Nanoscale Interactions Between Shewanella and alpha -FeOOH, Science, vol.292, issue.5520, pp.1360-1362, 2001. ,
DOI : 10.1126/science.1059567
Thermal and Mössbauer studies of iron-containing hydrous silicates V berthierine, Thermochimica Acta, vol.7484, pp.291-312, 1984. ,
Baseline Studies of the Clay Minerals Society Source Clays: Infrared Methods, Clays and Clay Minerals, vol.49, issue.5, pp.410-432, 2001. ,
DOI : 10.1346/CCMN.2001.0490508
Microbiology of petroleum reservoirs, Antonie van Leeuwenhoek, vol.77, issue.2, pp.103-116, 2000. ,
DOI : 10.1023/A:1002434330514
Passivation of stainless steel. Trends in food science & technology 9, pp.28-32, 1998. ,
Effects of dissimilatory sulfate reduction on Fe(III) (hydr)oxide reduction and microbial community development, Geochimica et Cosmochimica Acta, vol.014, issue.129, pp.177-190 ,
The Role of Abiotic and Coupled Biotic/Abiotic Mineral Controlled Redox Processes in Nitrate Reduction, pp.181-214, 2012. ,
DOI : 10.1016/B978-0-12-394276-0.00004-4
Microbial iron(II) oxidation in littoral fresh water lake sediment: the potential for competition between phototrophic vs nitrate-reducing iron(II)-oxidizers, Frontiers in Microbiology, vol.3, 2012. ,
High spatial resolution of distribution and interconnections between Fe- and N-redox processes in profundal lake sediments, Environmental Microbiology, vol.62, issue.10, 2014. ,
DOI : 10.1111/j.1462-2920.2007.01357.x
A critical stage in the formation of acid mine drainage: Colonization of pyrite by Acidithiobacillus ferrooxidans under pH-neutral conditions, Geobiology, vol.48, issue.1, pp.81-90, 2003. ,
DOI : 10.1146/annurev.micro.38.1.265
Infrared Spectra and Characteristic Frequencies of Inorganic Ions, Analytical Chemistry, vol.24, issue.8, pp.1253-1294, 1952. ,
DOI : 10.1021/ac60068a007
Extracellular Iron Biomineralization by Photoautotrophic Iron-Oxidizing Bacteria, Applied and Environmental Microbiology, vol.75, issue.17, pp.5586-5591, 2009. ,
DOI : 10.1128/AEM.00490-09
URL : https://hal.archives-ouvertes.fr/insu-01516127
Transformation of vivianite by anaerobic nitrate-reducing iron-oxidizing bacteria, Geobiology, vol.7, issue.3, pp.373-384, 2009. ,
DOI : 10.2138/am-2001-5-612
Surface chemistry and structural properties of mackinawite prepared by reaction of sulfide ions with metallic iron, Geochimica et Cosmochimica Acta, vol.66, issue.5, pp.829-836, 2002. ,
DOI : 10.1016/S0016-7037(01)00805-5
The ecology and biotechnology of sulphate-reducing bacteria, Nature Reviews Microbiology, vol.41, pp.441-454, 2008. ,
DOI : 10.1099/00221287-146-7-1693
Outer membrane cytochromes of Shewanella putrefaciens MR-1: spectral analysis, and purification of the 83-kDa c-type cytochrome, Biochimica et Biophysica Acta (BBA) - Biomembranes, vol.1326, issue.2, pp.307-318, 1997. ,
DOI : 10.1016/S0005-2736(97)00034-5
Iron sulfides and sulfur species produced at hematite surfaces in the presence of sulfate-reducing bacteria, Geochimica et Cosmochimica Acta, vol.65, issue.2, pp.223-235, 2001. ,
DOI : 10.1016/S0016-7037(00)00537-8
Gaseous products of nitrite decomposition in soils, Soil Biology and Biochemistry, vol.2, issue.3, pp.203-215, 1970. ,
DOI : 10.1016/0038-0717(70)90008-8
Mechanisms for Fe(III) Oxide Reduction in Sedimentary Environments, Geomicrobiology Journal, vol.54, issue.2, pp.141-159, 2002. ,
DOI : 10.1080/20025891106781
THE ISOMORPHOUS REPLACEMENT OF IRON BY ALUMINIUM IN SOIL GOETHITES, Journal of Soil Science, vol.9, issue.2, pp.294-306, 1961. ,
DOI : 10.1111/j.1365-2389.1961.tb00919.x
Effects of oxyanions, natural organic matter, and bacterial cell numbers on the bioreduction of lepidocrocite (gamma-FeOOH) and the formation of secondary mineralization products, Environmental Science & Technology, vol.15, pp.4570-4576, 1021. ,
An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments, Journal of Materials Research, vol.XI, issue.06, pp.1564-83, 1992. ,
DOI : 10.1557/S0883769400054440
URL : https://hal.archives-ouvertes.fr/hal-01518596
Measurement of hardness and elastic modulus by instrumented indentation: Advances in understanding and refinements to methodology, Journal of Materials Research, vol.522, issue.01, pp.3-20, 2004. ,
DOI : 10.1557/JMR.1992.0618
Iron(II,III) Hydroxycarbonate Green Rust Formation and Stabilization from Lepidocrocite Bioreduction, Environmental Science & Technology, vol.36, issue.1, pp.16-20, 2002. ,
DOI : 10.1021/es0020456
PhD Thesis: Biogenèse d'hydroxysels mixtes Fe(II-III) de type rouille verte en culture de Shewanella putrefaciens, 2003. ,
Cultures, Geomicrobiology Journal, vol.72, issue.2, pp.79-90, 1080. ,
DOI : 10.1080/01490450252864271
Arsenite sequestration at the surface of, 2009. ,
URL : https://hal.archives-ouvertes.fr/hal-00480591
ABSTRACT, Applied and Environmental Microbiology, vol.79, issue.7, pp.2172-2181 ,
DOI : 10.1128/AEM.03057-12
Mechanical properties of an iron oxide formed by corrosion in reinforced concrete structures, Corrosion Science, vol.48, issue.12, pp.3988-4000, 2006. ,
DOI : 10.1016/j.corsci.2006.03.007
URL : https://hal.archives-ouvertes.fr/hal-00113356
Reduction of nitrogenous oxides by micro-organisms, Bacteriological Reviews, vol.37, pp.409-452, 1973. ,
Kinetics and mechanism of the reaction of hydrogen sulfide with lepidocrocite, Environmental Science & Technology, vol.26, issue.12, pp.2408-2413, 1992. ,
DOI : 10.1021/es00036a011
Les affaissements miniers des mines de fer de Lorraine, Rapport de Mission, Conseil Général des Ponts et Chaussées : conseil général des mines, 2002. ,
Formation of siderite and vivianite and the pore-water composition of a Recent bog sediment in Denmark, Chemical Geology, vol.31, pp.225-244, 1981. ,
DOI : 10.1016/0009-2541(80)90088-1
Sulfide oxidation and iron dissolution kinetics during the reaction of dissolved sulfide with ferrihydrite, Chemical Geology, vol.202, issue.1-2, pp.79-94, 2003. ,
DOI : 10.1016/S0009-2541(03)00237-7
The use of hydrous iron (III) oxides for the removal of hydrogen sulphide in aqueous systems, Water Research, vol.36, issue.4, pp.825-834, 2002. ,
DOI : 10.1016/S0043-1354(01)00314-1
Generation of acids from mine waste: Oxidative leaching of pyrrhotite in dilute H2SO4 solutions at pH 3.0, Geochimica et Cosmochimica Acta, vol.58, issue.23, pp.5147-5159, 1994. ,
DOI : 10.1016/0016-7037(94)90300-X
Sedimentary iron monosulfides: Kinetics and mechanism of formation, Geochimica et Cosmochimica Acta, vol.45, issue.5, pp.687-698, 1981. ,
DOI : 10.1016/0016-7037(81)90042-9
Nitrite Reduction by Siderite, Soil Science Society of America Journal, vol.72, issue.4, pp.1070-1077, 2008. ,
DOI : 10.2136/sssaj2007.0296
Voigt-based methods for arbitrary-shaped static hyperfine distribution in Mössbauer spectroscopy. Nuclear Instruments and Methods in, Physics Research Section B, vol.58, issue.91, pp.85-97, 1991. ,
Reasons why 'Leptospirillum'-like species rather than Thiobacillus ferrooxidans are the dominant iron-oxidizing bacteria in many commercial processes for the biooxidation of pyrite and related ores, Microbiology, vol.145, issue.1, pp.5-13 ,
DOI : 10.1099/13500872-145-1-5
Extracellular electron transfer via microbial nanowires, Nature, vol.54, issue.7045, pp.1098-1101, 2005. ,
DOI : 10.1016/j.mib.2004.04.003
Influence of Biogenic Fe(II) on Bacterial Crystalline Fe(III) Oxide Reduction, Geomicrobiology Journal, vol.59, issue.2, pp.209-251, 2002. ,
DOI : 10.1016/S0016-7037(05)80015-8
Ferrous Iron Removal Promotes Microbial Reduction of Crystalline Iron(III) Oxides, Environmental Science & Technology, vol.33, issue.11, pp.1847-1853, 1999. ,
DOI : 10.1021/es9809859
Microbial Reduction of Crystalline Iron(III) Oxides:?? Influence of Oxide Surface Area and Potential for Cell Growth, Environmental Science & Technology, vol.30, issue.5, 1996. ,
DOI : 10.1021/es9506216
BIOGEOCHEMICAL AND ENVIRONMENTAL FACTORS IN Fe BIOMINERALIZATION: MAGNETITE AND SIDERITE FORMATION, Clays and Clay Minerals, vol.51, issue.1, pp.83-95, 2003. ,
DOI : 10.1346/CCMN.2003.510110
Comparison of ferric iron generation by different species of acidophilic bacteria immobilized in packed-bed reactors, Systematic and Applied Microbiology, vol.31, issue.1, pp.68-77, 2008. ,
DOI : 10.1016/j.syapm.2007.09.001
Enhancement of Biological Reduction of Hematite by Electron Shuttling and Fe(II) Complexation, Environmental Science & Technology, vol.36, issue.9, pp.1939-1946, 2002. ,
DOI : 10.1021/es011139s
Investigation of microbial-mineral interactions by Mössbauer spectroscopy, Hyperfine Interactions, vol.117, issue.1/4, pp.371-382, 1998. ,
DOI : 10.1023/A:1012626923056
Iron Oxides in the Laboratory. Preparation and Characterization. Second, Completely Revised and Extended Edition, 2000. ,
Natural and Synthetic Poorly Crystallized Lepidocrocite, Clay Minerals, vol.14, issue.4, pp.285-294, 1979. ,
DOI : 10.1180/claymin.1979.014.4.05
URL : http://doi.org/10.1180/claymin.1979.014.4.05
Effects of Si-bearing minerals on the nature of secondary iron mineral products from lepidocrocite bioreduction, Chemical Geology, vol.289, issue.1-2, pp.86-97, 2011. ,
DOI : 10.1016/j.chemgeo.2011.07.016
URL : https://hal.archives-ouvertes.fr/hal-00920803
Isolation of Phyllosilicate???Iron Redox Cycling Microorganisms from an Illite???Smectite Rich Hydromorphic Soil, Frontiers in Microbiology, vol.3, 2012. ,
DOI : 10.3389/fmicb.2012.00134
Dissimilatory Reduction and Transformation of Ferrihydrite-Humic Acid Coprecipitates, Environmental Science & Technology, vol.47, issue.23, pp.13375-13384, 2013. ,
DOI : 10.1021/es402812j
Mariprofundus ferrooxydans PV-1 the First Genome of a Marine Fe(II) Oxidizing Zetaproteobacterium, PLoS ONE, vol.6, issue.9, p.25386, 2011. ,
DOI : 10.1371/journal.pone.0025386.s003
Enrichment of Geobacter Species in Response to Stimulation of Fe(III) Reduction in Sandy Aquifer Sediments, Microbial Ecology, vol.39, issue.2, pp.153-167, 2000. ,
DOI : 10.1007/s002480000018
A Novel Evolutionary Lineage of Carbonic Anhydrase (?? Class) Is a Component of the Carboxysome Shell, Journal of Bacteriology, vol.186, issue.3, pp.623-630, 2004. ,
DOI : 10.1128/JB.186.3.623-630.2004
Stimulation by lepidocrocite (7-FeOOH) of Fe(II)-dependent nitrite reduction, Geochimica et Cosmochimica Acta, vol.55, issue.5, pp.1289-1294, 1991. ,
DOI : 10.1016/0016-7037(91)90307-Q
Nitrate respiration in relation to facultative metabolism in enterobacteria, Microbiology Reveiw, vol.52, pp.190-232, 1988. ,
Two new spectrophotometric reagents for copper. Talmta, pp.644-647, 1970. ,
Anaerobic Nitrate-Dependent Microbial Oxidation of Ferrous Iron, Applied And Environmental Microbiology, vol.62, pp.1458-1460, 1996. ,
Enrichment and Isolation of Ferric???Iron??? and Humic???Acid???Reducing Bacteria, Methods in enzymology, vol.397, pp.58-77, 2005. ,
DOI : 10.1016/S0076-6879(05)97004-3
Structural Iron in Smectites, Iron in Soils and Clay Minerals, 1988. ,
DOI : 10.1007/978-94-009-4007-9_17
Microbial reduction of iron in smectite, Comptes Rendus Geoscience, vol.338, issue.6-7, pp.468-475, 2006. ,
DOI : 10.1016/j.crte.2006.04.010
Aquatic chemistry: an introduction emphasizing chemical equilibria in natural waters, 1981. ,
Nitrite reduction with hydrous ferric oxide and Fe(II): stoichiometry, rate, and mechanism. Water reseach 43, pp.546-552, 2009. ,
Iron in Earth Surface Systems: A Major Player in Chemical and Biological Processes, Elements, vol.7, issue.2, pp.83-88, 2011. ,
DOI : 10.2113/gselements.7.2.83
The autotrophic oxidation of iron by a new bacterium: thiobacillus ferrooxidans, Journal of Bacteriology, vol.62, pp.605-611, 1951. ,
Energy conservation in chemotrophic anaerobic bacteria, Bacteriological reviews, vol.41, pp.100-180, 1977. ,
Evidence of the occurence of a "green rust" component in hydromorphic soils. Proposition of the existence of a new mineral, 1996. ,
Mössbauer characterization of iron oxides and (oxy)hydroxides: the present state of the art, Hyperfine Interactions, vol.126, issue.1/4, pp.247-259, 2000. ,
DOI : 10.1023/A:1012603603203
Electron microscopy of Gallionella Ferruginea, Journal of Bacteriology, vol.72, pp.248-252, 1956. ,
Polyphasic taxonomy of the genus Shewanella and description of Shewanella oneidensis sp. nov., International Journal of Systematic Bacteriology, vol.49, issue.2, pp.705-724, 1999. ,
DOI : 10.1099/00207713-49-2-705
Characterization of Biofilm Formation by the Bioleaching Acidophilic Bacterium <i>Acidithiobacillus Ferrooxidans</i> by a Microarray Transcriptome Analysis, Advanced Materials Research, vol.71, issue.73, pp.71-73, 2009. ,
DOI : 10.4028/www.scientific.net/AMR.71-73.175
Differs from Abiotic Reaction, Geomicrobiology Journal, vol.209, issue.2, pp.550-560, 2012. ,
DOI : 10.1023/A:1004505431879
Occurrence of Surface Polysulfides during the Interaction between Ferric (Hydr)Oxides and Aqueous Sulfide, Environmental Science & Technology, vol.48, issue.9, pp.5076-5084, 2014. ,
DOI : 10.1021/es405612f
Reductive dechlorination of 2,4-dichlorophenol and related microbial processes under limiting and non-limiting sulfate concentration in anaerobic mid-Chesapeake Bay sediments, FEMS Microbiology Ecology, vol.55, issue.2, pp.159-165, 2002. ,
DOI : 10.1111/j.1574-6941.2002.tb00948.x
Microorganisms pumping iron: anaerobic microbial iron oxidation and reduction, Nature Reviews Microbiology, vol.3, issue.10, pp.752-764, 2006. ,
DOI : 10.1038/nbt716
Microbially Catalyzed Nitrate-Dependent Oxidation of Biogenic Solid-Phase Fe(II) Compounds, Environmental Science & Technology, vol.35, issue.8, pp.1644-1650, 2001. ,
DOI : 10.1021/es0016598
Electrochemistry and dissolution kinetics of magnetite and ilmenite, Geochimica et Cosmochimica Acta, vol.58, issue.8, pp.1859-1875, 1994. ,
DOI : 10.1016/0016-7037(94)90420-0
Ferrous iron oxidation by anoxygenic phototrophic bacteria, Nature, vol.362, issue.6423, pp.834-836, 1993. ,
DOI : 10.1038/362834a0
Gram-Negative Mesophilic Sulfate-Reducing Bacteria, The Prokaryotes, pp.3352-3378, 1992. ,
DOI : 10.1007/978-1-4757-2191-1_21
Iron Promoted Reduction of Chromate by Dissimilatory Iron-Reducing Bacteria, Environmental Science & Technology, vol.35, issue.3, pp.522-527, 2001. ,
DOI : 10.1021/es001457b
Pyrite formation by reactions of iron monosulfides with dissolved inorganic and organic sulfur species, Geochimica et Cosmochimica Acta, vol.60, issue.21, pp.4167-4179, 1996. ,
DOI : 10.1016/S0016-7037(97)81466-4
Pyrite formation by reactions of iron monosulfides with dissolved inorganic and organic sulfur species, Geochimica et Cosmochimica Acta, vol.60, issue.21, pp.4167-4179, 1996. ,
DOI : 10.1016/S0016-7037(97)81466-4
Spectroscopic Evidence for Fe(II)???Fe(III) Electron Transfer at the Iron Oxide???Water Interface, Environmental Science & Technology, vol.38, issue.18, pp.4782-4790, 2004. ,
DOI : 10.1021/es049373g
Correlation of Schmidt hardness with unconfined compressive strength and Young's modulus in gypsum from Sivas (Turkey), Engineering Geology, vol.66, issue.3-4, pp.211-219, 2002. ,
DOI : 10.1016/S0013-7952(02)00041-8
Bacterial reduction of crystalline Fe (super 3+) oxides in single phase suspensions and subsurface materials, American Mineralogist, vol.83, issue.11-12 Part 2, pp.1426-1443, 1998. ,
DOI : 10.2138/am-1998-11-1232
Bacterial reduction of crystalline Fe (super 3+) oxides in single phase suspensions and subsurface materials, American Mineralogist, vol.83, issue.11-12 Part 2, pp.1426-1443, 1998. ,
DOI : 10.2138/am-1998-11-1232
Adsorption and dissociation of Co-EDTA complexes in iron oxide-containing subsurface sands, Geochimica et Cosmochimica Acta, vol.59, issue.23, pp.4825-4844, 1995. ,
DOI : 10.1016/0016-7037(95)00340-1
Biogenic hydroxysulfate green rust, a potential electron acceptor for SRB activity, Geochimica et Cosmochimica Acta, vol.71, issue.22, pp.5450-5462, 2007. ,
DOI : 10.1016/j.gca.2007.08.025
URL : https://hal.archives-ouvertes.fr/hal-00522385
Formation of Hydroxysulphate Green Rust 2 as a Single Iron(II-III) Mineral in Microbial Culture, Geomicrobiology Journal, vol.323, issue.7-8, pp.389-99, 2005. ,
DOI : 10.1080/01490450252864271
URL : https://hal.archives-ouvertes.fr/hal-00021559
Effect of pH and Dissolved Silicate on the Formation of Surface Passivation Layers for Reducing Pyrite Oxidation, Computational Water, Energy, and Environmental Engineering, vol.02, issue.02, pp.50-55, 2013. ,
DOI : 10.4236/cweee.2013.22B009
Promotion and nucleation of carbonate precipitation during microbial iron reduction, Geobiology, vol.126, issue.4, 2014. ,
DOI : 10.1016/S0037-0738(99)00037-8
Biological oxidation of Fe(II) in reduced nontronite coupled with nitrate reduction by Pseudogulbenkiania sp. Strain 2002, Geochimica et Cosmochimica Acta, vol.119, pp.231-247, 2002. ,
DOI : 10.1016/j.gca.2013.05.033
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