Abstract
Microbial metabolism has the potential to alter the solubility of a broad range of priority radionuclides, including uranium, other actinides and fission products. Of notable interest has been the biostimulation of anaerobic microbial communities to remove redox-sensitive radionuclides such as uranium U(VI) from contaminated groundwaters at nuclear sites. Particularly promising are bioreduction processes, whereby bacteria enzymatically reduce aqueous U(VI) to insoluble U(IV) coupled to oxidation of an organic electron donor; and uranium phosphate biomineralisation, in which bacterial phosphatase activity cleaves organophosphates, liberating inorganic phosphate that precipitates with aqueous U(VI) as uranyl phosphate minerals. Here we review the mechanisms of uranium bioreduction and phosphate biomineralisation and their suitability to facilitate long-term precipitation of uranium from groundwater, with particular focus on in situ trials at the US Department of Energy field sites. Redox interactions of other priority radionuclides (technetium, neptunium, plutonium, americium, iodine, strontium and caesium) are also reviewed. © 2013 The Authors.
| Original language | English |
|---|---|
| Pages (from-to) | 164-184 |
| Number of pages | 21 |
| Journal | Chemical Geology |
| Volume | 363 |
| DOIs | |
| Publication status | Published - 10 Jan 2014 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 6 Clean Water and Sanitation
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SDG 15 Life on Land
Keywords
- biostimulation
- microorganisms
- metal reduction
- electron transport
- in situ
- nuclear
- extracellular electron-transfer
- microbial community structure
- shewanella-oneidensis mr-1
- metal-reducing bacteria
- in-situ biostimulation
- c-type cytochromes
- x-ray-absorption
- contaminated subsurface sediments
- enzymatically-mediated growth
- dissimilatory iron reduction
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