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Enhanced anaerobic fermentation with azo dye as electron acceptor: Simultaneous acceleration of organics decomposition and azo decolorization

Enhanced anaerobic fermentation with azo dye as electron acceptor: Simultaneous acceleration of organics decomposition and azo decolorization
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摘要 Accumulation of hydrogen during anaerobic processes usually results in low decomposition of volatile organic acids(VFAs). On the other hand, hydrogen is a good electron donor for dye reduction, which would help the acetogenic conversion in keeping low hydrogen concentration. The main objective of the study was to accelerate VFA composition through using azo dye as electron acceptor. The results indicated that the azo dye serving as an electron acceptor could avoid H2 accumulation and accelerate anaerobic digestion of VFAs. After adding the azo dye, propionate decreased from 2400.0 to 689.5 mg/L and acetate production increased from 180.0 to 519.5 mg/L. It meant that the conversion of propionate into acetate was enhanced. Fluorescence in situ hybridization analysis showed that the abundance of propionate-utilizing acetogens with the presence of azo dye was greater than that in a reference without azo dye. The experiments via using glucose as the substrate further demonstrated that the VFA decomposition and the chemical oxygen demand(COD) removal increased by 319.7 mg/L and 23.3% respectively after adding the azo dye. Therefore, adding moderate azo dye might be a way to recover anaerobic system from deterioration due to the accumulation of H2 or VFAs. Accumulation of hydrogen during anaerobic processes usually results in low decomposition of volatile organic acids(VFAs). On the other hand, hydrogen is a good electron donor for dye reduction, which would help the acetogenic conversion in keeping low hydrogen concentration. The main objective of the study was to accelerate VFA composition through using azo dye as electron acceptor. The results indicated that the azo dye serving as an electron acceptor could avoid H2 accumulation and accelerate anaerobic digestion of VFAs. After adding the azo dye, propionate decreased from 2400.0 to 689.5 mg/L and acetate production increased from 180.0 to 519.5 mg/L. It meant that the conversion of propionate into acetate was enhanced. Fluorescence in situ hybridization analysis showed that the abundance of propionate-utilizing acetogens with the presence of azo dye was greater than that in a reference without azo dye. The experiments via using glucose as the substrate further demonstrated that the VFA decomposition and the chemical oxygen demand(COD) removal increased by 319.7 mg/L and 23.3% respectively after adding the azo dye. Therefore, adding moderate azo dye might be a way to recover anaerobic system from deterioration due to the accumulation of H2 or VFAs.
出处 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2014年第10期1970-1976,共7页 环境科学学报(英文版)
基金 supported by the National Crucial Research Project for Water Pollution Control of China (No. 2012ZX07202006) the National Basic Research Program of China (No. 21177015) the New Century Excellent Talent Program of the Ministry of Education of China (No. NCET-10-028)
关键词 Azo dye Anaerobic treatment Volatile fatty acids H2accumulation Azo dye Anaerobic treatment Volatile fatty acids H2accumulation
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  • 1Ahring, B.K.,Westermann, P., 1987. Kinetics of butyrate, acetate, and hydrogen metabolism in a thermophilic, anaerobic, butyrate-degrading triculture. Appl. Environ. Microbiol. 53 (2), 434-439.
  • 2APHA (American Public Health Association), 2005. Standard Methods for the Examination of Water and Wastewater (Washington DC, USA).
  • 3Bokare, AD., Chikate, R.C., Rode, C.v., Paknikar, K.M., 2008. Iron-nickel bimetallic nanoparticles for reductive degradation of azo dye orange G in aqueous solution. Appl. Catal. B Environ. 79 (3), 270-278.
  • 4Chidthaisong, A, Conrad, R., 2000. Specificity of chloroform, 2-bromoethanesulfonate and fluoroacetate to inhibit methanogenesis and other anaerobic processes in anoxic rice field soil. Soil BioI. Biochem. 32.
  • 5Chiou, M.S.,Li, H.Y., 2002. Equilibrium and kinetic modeling of adsorption of reactive dye on cross-linked chitosan beads. J. Hazard. Mater. 93 (2), 233-248.
  • 6Dong, X.Z., Starns, AJ.M., 1995. Evidence for H2 and formate formation during syntrophic butyrate and propionate degradation. Anaerobe 1 (1), 35-39.
  • 7dos Santos, AB., de Madrid, M.P., Starns, AJ., van Lier, J.B., Cervantes, F.J., 2005. Azo dye reduction by mesophilic and thermophilic anaerobic consortia. Biotechnol. Prog. 21 (4), 1140-1145.
  • 8Fennell, D.E., Gossett, J.M., Zinder, S.H., 1997. Comparison of butyric acid, ethanol, lactic acid, and propionic acid as hydrogen donors for the reductive dechlorination of tetrachloroethene. Environ. Sci. Te.
  • 9Fukuzaki, 5., Nishio, N., Shobayashi, M., Nagai,S., 1990. Inhibition of the fermentation of propionate to methane by hydrogen, acetate, and propionate. Appl. Environ. Microbiol. 56 (3), 719-723.
  • 10Fynn, G., Syafila, M., 1990. Hydrogen regulation of acetogenesis from glucose by freely suspended and immobilized acidogenic cells in continuous culture. Biotechnol. Lett. 12 (8), 612-626.

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