Passive treatment based on iron biological oxidation is a promising strategy for Arsenic (As)-rich acid mine drainage (AMD) remediation. In the present study, we characterized by 16S rRNA metabarcoding the bacterial diversity in a field-pilot bioreactor treating extremely As-rich AMD in situ, over a 6 months monitoring period. Inside the bioreactor, the bacterial communities responsible for iron and arsenic removal formed a biofilm (“biogenic precipitate”) whose composition varied in time and space. These communities evolved from a structure at first similar to the one of the feed water used as an inoculum to a structure quite similar to the natural biofilm developing in situ in the AMD. Over the monitoring period, iron-oxidizing bacteria a...
International audienceAcid mine drainage (AMD) still represents a huge environmental problem. Techni...
International audienceAcid Mine Drainage (AMD) is an undesired product of the weathering ...
In: Stanley, P.; Wolkersdorfer, Ch.; Wolkersdorfer, K.: Mine Water Management for Future Generations...
International audiencePassive treatment based on iron biological oxidation is a promising strategy f...
International audienceArsenic rich AMDs (Acid Mine Drainages) represent a major source of pollution ...
Passive treatment based on iron biological oxidation is a promising strategy for Arsenic (As)-rich a...
Arsenic removal consecutive to biological iron oxidation and precipitation is an effective process f...
International audienceA field-pilot bioreactor exploiting microbial iron (Fe) oxidation and subseque...
International audienceArsenic (As) is a toxic element ubiquitous in acid mine drainage (AMD). It rep...
International audienceArsenic (As) is one of the most toxic pollutants commonly associated with mine...
International audienceSemi-passive bioreactors based on iron and arsenic oxidation and coprecipitati...
International audienceThe weathering of sulphide minerals promoted by mining activities can lead to ...
International audienceArsenic removal consecutive to biological iron oxidation and precipitation is ...
International audienceMicrobial oxidation of iron (Fe) and arsenic (As) followed by their co-precipi...
Metals mining conducted during ages has left an environmental legacy of mining waste containing high...
International audienceAcid mine drainage (AMD) still represents a huge environmental problem. Techni...
International audienceAcid Mine Drainage (AMD) is an undesired product of the weathering ...
In: Stanley, P.; Wolkersdorfer, Ch.; Wolkersdorfer, K.: Mine Water Management for Future Generations...
International audiencePassive treatment based on iron biological oxidation is a promising strategy f...
International audienceArsenic rich AMDs (Acid Mine Drainages) represent a major source of pollution ...
Passive treatment based on iron biological oxidation is a promising strategy for Arsenic (As)-rich a...
Arsenic removal consecutive to biological iron oxidation and precipitation is an effective process f...
International audienceA field-pilot bioreactor exploiting microbial iron (Fe) oxidation and subseque...
International audienceArsenic (As) is a toxic element ubiquitous in acid mine drainage (AMD). It rep...
International audienceArsenic (As) is one of the most toxic pollutants commonly associated with mine...
International audienceSemi-passive bioreactors based on iron and arsenic oxidation and coprecipitati...
International audienceThe weathering of sulphide minerals promoted by mining activities can lead to ...
International audienceArsenic removal consecutive to biological iron oxidation and precipitation is ...
International audienceMicrobial oxidation of iron (Fe) and arsenic (As) followed by their co-precipi...
Metals mining conducted during ages has left an environmental legacy of mining waste containing high...
International audienceAcid mine drainage (AMD) still represents a huge environmental problem. Techni...
International audienceAcid Mine Drainage (AMD) is an undesired product of the weathering ...
In: Stanley, P.; Wolkersdorfer, Ch.; Wolkersdorfer, K.: Mine Water Management for Future Generations...