Respirometric characterization of aerobic sulfide, thiosulfate and elemental sulfur oxidation by S-oxidizing biomass
M Mora (External organisation, Universitat Autònoma de Barcelona)
LR Lopez (External organisation, Universitat Autònoma de Barcelona)
J Lafuente (External organisation, Universitat Autònoma de Barcelona)
JO Pérez (TU Delft - BT/Environmental Biotechnology)
R. Kleerebezem (TU Delft - BT/Environmental Biotechnology)
Mark C.M. van Loosdrecht (TU Delft - BT/Environmental Biotechnology)
X Gamisans (External organisation, Universitat Politecnica de Catalunya)
D Gabriel (Universitat Autònoma de Barcelona, External organisation)
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Abstract
Respirometry was used to reveal the mechanisms involved in aerobic biological sulfide oxidation and to characterize the kinetics and stoichiometry of a microbial culture obtained from a desulfurizing biotrickling filter. Physicalechemical processes such as stripping and chemical oxidation of hydrogen sulfide were characterized since they contributed significantly to the conversions observed in respirometric tests. Mass transfer coefficient for hydrogen sulfide and the kinetic parameters for chemical oxidation of sulfide with oxygen were estimated. The stoichiometry of the process was determined and the different steps in the sulfide oxidation process were identified. The conversion scheme proposed includes intermediate production of elemental sulfur and thiosulfate and the subsequent oxidation of both compounds to sulfate. A kinetic model describing each of the reactions observed during sulfide oxidation was calibrated and validated. The product selectivity was found to be independent of the dissolved oxygen to hydrogen sulfide concentration ratio in the medium at sulfide concentrations ranging from 3 to 30 mg S L_1. Sulfide was preferentially consumed (SOURmax ¼ 49.2 mg DO g_1 VSS min_1) and oxidized to elemental sulfur at dissolved oxygen concentrations above 0.8 mg DO L_1. Substrate inhibition of sulfide oxidation was observed (Ki;S2_ ¼ 42.4 mg S L_1). Intracellular sulfur accumulation also affected negatively the sulfide oxidation rate. The maximum fraction of elemental sulfur accumulated inside cells was estimated (25.6% w/w) and a shrinking particle equation was included in the kinetic model to describe elemental sulfur oxidation. The microbial diversity obtained through pyrosequencing analysis revealed that Thiothrix sp. was the main species present in the culture (>95%).