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Kinetics of the α-Fe2O3 formation on Fe3O4 between 400 and 570°C studied by means of X-ray diffraction with grazing incidenceKOLARIK, V; JUEZ-LORENZO, M; ENGEL, W et al.Fresenius' journal of analytical chemistry. 1993, Vol 346, Num 1-3, pp 252-254, issn 0937-0633Conference Paper

Microbial reduction of weakly crystalline iron (III) oxides and suppression of methanogenesis in Paddy soilQU, D; RATERING, S; SCHNELL, S et al.Bulletin of environmental contamination and toxicology. 2004, Vol 72, Num 6, pp 1172-1181, issn 0007-4861, 10 p.Article

Attachment of Pathogenic Prion Protein to Model Oxide SurfacesJACOBSON, Kurt H; KUECH, Thomas R; PEDERSEN, Joel A et al.Environmental science & technology. 2013, Vol 47, Num 13, pp 6925-6934, issn 0013-936X, 10 p.Article

Genes for two multicopper proteins required for Fe(III) oxide reduction in Geobacter sulfurreducens have different expression patterns both in the subsurface and on energy-harvesting electrodesHOLMES, Dawn E; MESTER, Tünde; O'NEIL, Regina A et al.Microbiology (Reading). 2008, Vol 154, pp 1422-1435, issn 1350-0872, 14 p., 5Article

Geobacter metallireducens accesses insoluble Fe(III) oxide by chemotaxisCHILDERS, Susan E; CIUFO, Stacy; LOVLEY, Derek R et al.Nature (London). 2002, Vol 416, Num 6882, pp 767-769, issn 0028-0836Article

Fe3O4/carbon core―shell nanotubes as promising anode materials for lithium-ion batteriesHUI XIA; YUNHAI WAN; GUOLIANG YUAN et al.Journal of power sources. 2013, Vol 241, pp 486-493, issn 0378-7753, 8 p.Article

Iron Oxide Based MR Contrast Agents: from Chemistry to Cell LabelingLAURENT, S; BOUTRY, S; MAHIEU, I et al.Current medicinal chemistry. 2009, Vol 16, Num 35, pp 4712-4727, issn 0929-8673, 16 p.Article

Preparation, characterization, adsorption kinetics and thermodynamics of novel magnetic chitosan enwrapping nanosized γ-Fe2O3 and multi-walled carbon nanotubes with enhanced adsorption properties for methyl orangeZHU, H. Y; JIANG, R; XIAO, L et al.Bioresource technology. 2010, Vol 101, Num 14, pp 5063-5069, issn 0960-8524, 7 p.Article

Melanin production and use as a soluble electron shuttle for Fe(III) oxide reduction and as a terminal electron acceptor by Shewanella algae BrYTURICK, Charles E; TISA, Louis S; CACCAVO, Frank JR et al.Applied and environmental microbiology (Print). 2002, Vol 68, Num 5, pp 2436-2444, issn 0099-2240, 9 p.Article

Recycling of industrial goethite wastes by thermal treatmentPIGA, L; STOPPA, L; MASSIDDA, R et al.Resources, conservation and recycling. 1995, Vol 14, Num 1, pp 11-20, issn 0921-3449Article

Formalisme d'écriture des réactions d'oxydation en phases déficitaires en cations dans la structure spinelle = A formalism of oxidation reactions in cation deficient spinelsGILLOT, B; DOMENICHINI, B; ROUSSET, A et al.Annales de chimie (Paris. 1914). 1993, Vol 18, Num 3, pp 175-181, issn 0151-9107Article

A Mössbauer spectroscopic study of the initial stages of the cobaltation of acicular γ-Fe2O3 particles by coprecipitating iron and cobalt ionsFABRICHNYI, P. B; DEMAZEAU, G; FEFILAT'EV, L. P et al.Russian journal of inorganic chemistry. 1991, Vol 36, Num 12, pp 1774-1777, issn 0036-0236Article

Relationships between the surface properties of γ-Fe2O3 and its cobalt-modified productsBARRIGA, C; LAVELA, P; MORALES, J et al.Journal of colloid and interface science. 1990, Vol 138, Num 2, pp 565-579, issn 0021-9797Article

Preparation and characterization of a novel magnetic biochar for arsenic removalMING ZHANG; BIN GAO; VARNOOSFADERANI, Sima et al.Bioresource technology. 2013, Vol 130, pp 457-462, issn 0960-8524, 6 p.Article

Extracellular electron transfer via microbial nanowiresREGUERA, Gemma; MCCARTHY, Kevin D; MENTA, Teena et al.Nature (London). 2005, Vol 435, Num 7045, pp 1098-1101, issn 0028-0836, 4 p.Article

Dissimilatory Fe(III) oxide reduction by Shewanella alga BrY requires adhesionDAS, A; CACCAVO, F. JR.Current microbiology (Print). 2000, Vol 40, Num 5, pp 344-347, issn 0343-8651Article

Lack of production of electron-shuttling compounds or solubilization of Fe(III) during reduction of insoluble Fe(III) oxide by Geobacter metallireducensNEVIN, K. P; LOVLEY, D. R.Applied and environmental microbiology (Print). 2000, Vol 66, Num 5, pp 2248-2251, issn 0099-2240Article

Protein-mediated adhesion of the dissimilatory Fe(III)-reducing bacterium Shewanella alga BrY to hydrous ferric oxideCACCAVO, F. JR.Applied and environmental microbiology (Print). 1999, Vol 65, Num 11, pp 5017-5022, issn 0099-2240Article

A Mössbauer study of the interaction between Fe2O3 and TeO2GOSPODINOV, G; PEEV, T.Crystal research and technology (1979). 1992, Vol 27, Num 6, pp 831-834, issn 0232-1300Article

Adhesion of solid particles on the fiber substrate. IV. Adhesion-desorption equilibrium of hydrated iron (III) oxide particles on the various single fibersWATANABE, N; YABE, A.Yukagaku. 1992, Vol 41, Num 5, pp 391-396, issn 0513-398XArticle

Effect of sodium dodecylsulfate on aggregation and rheological behavior of dispersionsTIKHOMOLOVA, K. P; SHUTKEVICH, V. V; OTKUPSHCHIKOVA, V. G et al.Colloid journal of the USSR. 1990, Vol 52, Num 6, pp 977-981, issn 0010-1303Article

Kinetics of hematite chlorination with Cl2 and Cl2 + O2. Part II. Chlorination with Cl2 + O2KANARI, N; MISHRA, D; FILIPPOV, L et al.Thermochimica acta. 2010, Vol 506, Num 1-2, pp 34-40, issn 0040-6031, 7 p.Article

The mechanism of reduction of iron oxide by hydrogenLIN, Hsin-Yu; CHEN, Yu-Wen; CHIUPING LI et al.Thermochimica acta. 2003, Vol 400, Num 1-2, pp 61-67, issn 0040-6031, 7 p.Article

A kinetic model for Asolid + Bsolid → Csolid + Dgas reactionsOLEINIKOV, P. N; OLEINIKOV, N. N; TRET'YAKOV, Yu. D et al.Inorganic materials. 1997, Vol 33, Num 10, pp 1061-1064, issn 0020-1685Article

Kinetic study of the speciation of copper(II) bound to a hydrous ferric oxideGUTZMAN, D. W; LANGFORD, C. H.Environmental science & technology. 1993, Vol 27, Num 7, pp 1388-1393, issn 0013-936XArticle

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