Microbial Reduction of Crystalline Iron(III) Oxides: Influence of Oxide Surface Area and Potential for Cell Growth
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Summary
Results demonstrated explicitly that the rate and extent of microbial iron(III) oxide reduction is controlled by the surface area and site concentration of the solid phase.
- Type
- article
- Published
- 1996-04-25
- Cited by
- 843
- References
- 11
- OpenAlex
- https://openalex.org/W1997476054
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:9478739
Keywords
Goethite, Iron oxide, Oxide, Chemistry, Hydrous ferric oxides
References
- Chemistry of the solid-water interface
- Surface Complexation Modeling: Hydrous Ferric Oxide
- Iron in Soils and Clay Minerals
- Soil Science Society of America
- Iron Oxides in the Laboratory
- Iron in Soils and Clay Minerals
- Iron Oxides in Laboratory
- Aquatic surface chemistry: Edited by Werner Stumm. Wiley, New York. 1987. $69.95 (ISBN 0471822951)
- Minerals in soil environments
- Minerals in soil environments
Cited by
- Roles of Siderophores, Oxalate, and Ascorbate in Mobilization of Iron from Hematite by the Aerobic Bacterium Pseudomonas mendocina
- INORGANIC AND BIO-MATERIALS IN THE REMOVAL/SPECIATION OF RADIOCESIUM AND RADIOSTRONTIUM : AN OVERVIEW
- Biological redox cycling of iron in nontronite and its potential application in nitrate removal.
- Review: microbial mechanisms of accessing insoluble Fe(III) as an energy source
- Reduction and Morphological Transformation of Synthetic Nanophase Iron Oxide Minerals by Hyperthermophilic Archaea
- FE(II) OXIDATION BY ANAEROBIC PHOTOTROPHIC BACTERIA: MOLECULAR MECHANISMS AND GEOLOGICAL IMPLICATIONS
- Mineral transformation associated with the microbial reductionof magnetite
- In-Situ Chemical Oxidation
- Biogéochimie du fer et des éléments associés : exemple de l'arsenic (V)
- Biobenefication of Sishen Hematite Iron Ore, using bacterial cultures to remove potassium (Muscovite) and phosphorous (Apatite)
- Assessment and behaviour of secondary iron(III) minerals in acid sulphate soil materials
- Investigating the Susceptibility of Jarosite Minerals to Reductive Dissolution by a Dissimilatory Metal Reducing Bacterium (Shewanella putrefaciens CN32)
- EBS Radionuclide Transport Abstraction
- Dissimilatory Metal Reducing Bacteria in Biogeochemistry and Corrosion
- Arsenite oxidation by a Hydrogenobaculum sp. isolated from Yellowstone National Park
- Size-dependent reactivity of hematite nanoparticles: environmental implications of dissolution mechanisms and aggregation
- Dechlorinating and iron reducing bacteria distribution in a trichloroethene contaminated aquifer
- Sediment remobilization of Mercury in South San Francisco Bay, California
- Biogeochemical mechanisms of arsenic mobilization in Haiwee Reservoir sediments
- Microbes Pumping Iron: Anaerobic Microbial Iron Oxidation and Reduction
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