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Sulfide oxidation under chemolithoautotrophic denitrifying conditions

✍ Scribed by Ricardo Beristain Cardoso; Reyes Sierra-Alvarez; Pieter Rowlette; Elias Razo Flores; Jorge Gómez; Jim A. Field


Book ID
101721899
Publisher
John Wiley and Sons
Year
2006
Tongue
English
Weight
179 KB
Volume
95
Category
Article
ISSN
0006-3592

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✦ Synopsis


Chemolithoautotrophic denitrifying microorganisms oxidize reduced inorganic sulfur compounds coupled to the reduction of nitrate as an electron acceptor. These denitrifiers can be applied to the removal of nitrogen and/or sulfur contamination from wastewater, groundwater, and gaseous streams. This study investigated the physiology and kinetics of chemolithotrophic denitrification by an enrichment culture utilizing hydrogen sulfide, elemental sulfur, or thiosulfate as electron donor. Complete oxidation of sulfide to sulfate was observed when nitrate was supplemented at concentrations equal or exceeding the stoichiometric requirement. In contrast, sulfide was only partially oxidized to elemental sulfur when nitrate concentrations were limiting. Sulfide was found to inhibit chemolithotrophic sulfoxidation, decreasing rates by approximately 21-fold when the sulfide concentration increased from 2.5 to 10.0 mM, respectively. Addition of low levels of acetate (0.5 mM) enhanced denitrification and sulfate formation, suggesting that acetate was utilized as a carbon source by chemolithotrophic denitrifiers. The results of this study indicate the potential of chemolithotrophic denitrification for the removal of hydrogen sulfide. The sulfide/nitrate ratio can be used to control the fate of sulfide oxidation to either elemental sulfur or sulfate.


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Simultaneous sulfide and acetate oxidati
✍ Ricardo Beristain-Cardoso; Anne-Claire Texier; Reyes Sierra-Álvarez; Jim A Field 📂 Article 📅 2008 🏛 Wiley (John Wiley & Sons) 🌐 English ⚖ 216 KB

## Abstract BACKGROUND: Simultaneous removal of sulfur, nitrogen and carbon compounds from wastewaters is a commercially important biological process. The objective was to evaluate the influence of the CH~3~COO^−^/NO~3~^−^ molar ratio on the sulfide oxidation process using an inverse fluidized bed