Electricity Production by Geobacter sulfurreducens Attached to Electrodes
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Summary
The results suggest that the effectiveness of microbial fuel cells can be increased with organisms such as G. sulfurreducens that can attach to electrodes and remain viable for long periods of time while completely oxidizing organic substrates with quantitative transfer of electrons to an electrode.
- Type
- article
- Published
- 2003-03-01
- Cited by
- 2,232
- References
- 31
- OpenAlex
- https://openalex.org/W12620842
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:4678585
Keywords
Cochrane collaboration, Systematic review, MEDLINE, Political science, Law
References
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- A novel electrochemically active and Fe(III)-reducing bacterium phylogenetically related to Clostridium butyricum isolated from a microbial fuel cell
- Protein S Deficiency, Activated Protein C Resistance and Sticky Platelet Syndrome in a Young Woman with Bilateral Strokes
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- Effect of initial carbon sources on the performance of microbial fuel cells containing Proteus vulgaris.
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- Characterization of a membrane-bound NADH-dependent Fe(3+) reductase from the dissimilatory Fe(3+)-reducing bacterium Geobacter sulfurreducens.
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- Harnessing microbially generated power on the seafloor
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- Mechanisms for Accessing Insoluble Fe(III) Oxide during Dissimilatory Fe(III) Reduction by Geothrix fermentans
- Growth of Geobacter sulfurreducens with Acetate in Syntrophic Cooperation with Hydrogen-Oxidizing Anaerobic Partners
- Hydrogen concentrations as an indicator of the predominant terminal electron-accepting reactions in aquatic sediments
- Enhanced Propionate Formation by Propionibacterium freudenreichii subsp. freudenreichii in a Three-Electrode Amperometric Culture System
Cited by
- Structural and functional characterization of the gene products responsible for phototrophic iron oxidation by purple bacteria
- Investigation of the electrochemical activity of chromium tolerant mutants of Geobacter metallireducens
- Power generation in fed-batch microbial fuel cells as a function of ionic strength, temperature, and reactor configuration.
- Escherichia coli-catalyzed bioelectrochemical oxidation of acetate in the presence of mediators.
- Stainless steels can be cathodically protected using energy stored at the marine sediment/seawater interface.
- Microbial fuel cell operation with continuous biological ferrous iron oxidation of the catholyte.
- Application of biocathode in microbial fuel cells: cell performance and microbial community
- 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 electrodes.
- In vitro evolution of a peptide with a hematite binding motif that may constitute a natural metal-oxide binding archetype.
- Growth kinetics of Chlorella vulgaris and its use as a cathodic half cell.
- All dressed up, but where to go? Concluding remarks for FD 140.
- Maximizing power production in a stack of microbial fuel cells using multiunit optimization method
- Simultaneous wastewater treatment and biological electricity generation.
- Significance of biological hydrogen oxidation in a continuous single-chamber microbial electrolysis cell.
- Electron Donors Supporting Growth and Electroactivity of Geobacter sulfurreducens Anode Biofilms
- Effect of salt concentration and mediators in salt bridge microbial fuel cell for electricity generation from synthetic wastewater
- Quantitative proteomic analysis of the exoelectrogenic bacterium Arcobacter butzleri ED-1 reveals increased abundance of a flagellin protein under anaerobic growth on an insoluble electrode.
- Light/electricity conversion by defined cocultures of Chlamydomonas and Geobacter.
- Solution structure of a mutant of the triheme cytochrome PpcA from Geobacter sulfurreducens sheds light on the role of the conserved aromatic residue F15.
- Geobacter: the microbe electric's physiology, ecology, and practical applications.
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