Application of Single-Compartment Bacterial Fuel Cell (SCBFC) Using Modified Electrodes with Metal Ions to Wastewater Treatment Reactor

  • Published : 2004.12.01

Abstract

The SCBFC was composed of bilayered cathode, the outside of which was modified with $Fe^{3+}$ (graphite-Fe(III) cathode) and the inside of which was porcelain membrane, and of an anode which was modified with $Mn^{4+}$ (graphite­Mn(lV) anode). The graphite-Fe(III), graphite-Mn(IV), and porcelain membrane were designed to have micropores. The outside of the cathode was exposed to the atmosphere and the inside was contacted with porcelain membrane. In all SCBFCS the graphite-Fe(III) was used as a cathode, and graphite-Mn(IV) and normal graphite were used as anodes, for comparison of the function between normal graphite and graphite-Mn(IV) anode. The potential difference between graphite-Mn(IV) anode and graphite-Fe(III) cathode was about 0.3 volt, which is the source for the electron driving force from anode to cathode. In chemical fuel cells composed of the graphite-Mn(IV) anode and graphite-Fe(III) cathode, a current of maximal 13 mA was produced coupled to oxidation of NADH to $NAD^{+}$ the current was not produced in SCBFC with normal graphite anode. When growing and resting cells of E. coli were applied to the SCBFC with graphite-Mn(IV) anode, the electricity production and substrate consumption were 6 to 7 times higher than in the SCBFC with normal graphite anode, and when we applied anaerobic sewage sludge to SCBFC with graphite-Mn(IV) anode, the electricity production and substrate consumption were 3 to 5 times higher than in the SCBFC with normal graphite anode. These results suggest that useful electric energy might possibly be produced from SCBFC without electron mediators, electrode-active bacteria, and extra energy consumption for the aeration of catholyte, but with wastewater as a fuel.

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References

  1. Allen, M. J. 1972. Cellular electrophysiology, pp. 247-283. In J. R. Norris and D. W. Ribbons (eds.), Methods in Microbiology. Academic Press, New York, N.Y., U.S.A
  2. Allen, R. M. and H. P. Bennetto. 1993. Microbial fuel-cells: Electricity production from carbohydrates. Appl. Biochem. Biotechnol. 39/40: 27-40
  3. Bae, J. W., S. K. Rhee, I. S. Kim, S. H. Hyun, and S. T. Lee. 2002. Increased microbial resistance to toxic wastewater by sludge granulation in upflow anaerobic sludge blanket reactor. J. Microbiol. Biotechnol. 12: 901-908
  4. Benetto, H. P., G. M. Delaney, J. R. Mason, S. D. Roller, J. L. Stirling, and C. F. Thurston. 1985. The sucrose fuel cell: Efficient biomass conversion using a microbial catalyst. Biotech. Lett. 7: 699-704
  5. Eric, E. R. and D. R. Lovely, 1993. Dissimilatory Fe(III) reduction by the marine microorganism Desulfuromonas acetoxidans. Appl. Environ. Microbiol. 59: 734-742
  6. Habermann, W. and E. H. Pommer. 1991. Biological fuel cells with sulphite storage capacity. Appl. Microbiol. Biotechnol. 35: 128-133
  7. Hoogstraten, C. G., C. V. Grant, T. E. Horton, V. J. DeRose, and R. D. Britt. 2002. Structural analysis of metal ion ligation to nucleotides and nucleic acids using pulsed EPR spectroscopy. J. Am. Chem. Soc. 124: 834-842
  8. Jeon, C. O., S. H. Woo, and J. M. Park. 2003. Microbial communities of activated sludge performing enhanced biological phosphorus removal in a sequencing batch reactor supplied with glucose. J. Microbiol. Biotechnol. 13: 385-393
  9. Kim, B. H., H. J. Kim, M. S. Hyun, and D. H. Park. 1999. Direct electrode reaction of Fe(III)-reducing bacterium, Shewanella putrefaciens. J. Microbiol. Biotechnol. 9: 127- 131
  10. Kim, N., Y. Choi, S. Jung, and S. Kim. 2001. Development of microbial fuel cells using Proteus vulgaris. Bull. Kor. Chem. Soc. 21: 44-48
  11. Lee, J. W., A. Goel, M. M. Ataai, and M. M. Domach. 2003. Flux regulation patterns and energy audit of E. coli B/r and K-12. J. Microbiol. Biotechnol. 12: 273-278
  12. Lovely, D. R. 1991. Dissimilatory Fe(III) and Mn(IV) reduction. Microbiol. Rev. 55: 259-287
  13. Lovely, D. R., S. J. Givannoni, D. C. White, J. E. Champine, E. J. P. Phillips, Y. Gorby, and S. Goodwin. 1993. Geobacter metallireducens gen. nov. sp. nov., a microorganism capable of coupling the complete oxidation of organic compounds to the reduction of iron and other metal. Arch. Microbiol. 159: 336-344
  14. Lovely, D. R. and E. Philip. 1988. Novel mode of microbial energy metabolism: Organic carbon oxidation coupled to dissimilatory reduction of iron and manganese. Appl. Environ. Microbiol. 51: 683-689
  15. Myer, C. R. and K. H. Nelson, 1990. Respiration-linked proton translocation coupled to anaerobic reduction of manganese (IV) and iron (III) in Shewanella putrefaciens MR-1. J. Bacteriol. 172: 6232-6238 https://doi.org/10.1128/jb.172.11.6232-6238.1990
  16. Park, D. H. and B. H. Kim. 2001. Growth properties of the iron-reducing bacteria, Shewanella putrefaciens IR-1 and MR-1 coupling to reduction of Fe(III) to Fe(II). J. Microbiol. 39: 273-278
  17. Park, D. H., B. H. Kim, B. Moore, H. A. O. Hill, M. K. Song, and H. W. Rhee. 1997. Electrode reaction of Desulfovibrio desulfuricans modified with organic conductive compounds. Biotechnol. Tech. 11: 145-148
  18. Park, D. H. and J. G. Zeikus. 1999. Utilization of electrically reduced neutral red by Actinobacillus succinogenes: Physiological function of neutral red in membrane-driven fumarate reduction and energy generation. J. Bacteriol. 181: 2403-2410
  19. Park, D. H. and J. G. Zeikus. 2002. Impact of electrode composition on electricity generation in a single-compartment fuel cell using Shewanella putrefaciens. Appl. Microbiol. Biotechnol. 59: 58-61
  20. Park, D. H. and J. Gregory Zeikus. 2002. Improved fuel cell and electrode designs for producing electricity from microbial degradation. Biotech. Bioeng. 81: 348-356
  21. Park, D. H. and J. G. Zeikus. 2000. Electricity generation in microbial fuel cells using neutral red and an electronophore. Appl. Environ. Microbiol. 66: 1292-1297
  22. Park, D. H., S. K. Kim, I. H. Shin, and Y. J. Jeong. 2000. Electricity production in biofuel cell using modified graphite electrode with neutral red. Biotech. Lett. 22: 1301-1304
  23. Park, J. B., H. W. Lee, S. Y. Lee, J. O. Lee, I. S. Bang, E. S. Choi, D. H. Park, and Y. K. Park. 2002. Microbial community analysis of 5-stage biological nutrient removal process with step feed system. J. Microbiol. Biotechnol. 12: 929-935
  24. Roller, S. D., H. P. Bennetto, G. M. Delaney, J. R. Mason, J. L. Stirling, and C. F. Thurston. 1984. Electron-transfer coupling in microbial fuel cells: 1. Comparison of redoxmediator reduction rates and respiration rates of bacteria. J. Chem. Tech. Biotechnol. 34B: 3-12
  25. Tanaka, K., R. Tamamushi, and T. Ogawa. 1985. Bioelectrochemical fuel-cell operated by the cyanobacterium, Anabaena variabilis. Chem. Technol. Biotech. 35B: 191- 197
  26. Tanaka, K., C. A. Vega, and R. Tamaushi. 1983. Mediating effects of ferric chelate compounds in microbial fuel cell. Bioelectrochem. Bioenerg. 11: 135-143
  27. Thurston, C. F., H. P. Bennetto, G. M. Delaney, J. R. Mason, S. D. Roller, and J. L. Stirling. 1985. Glucose metabolism in a microbial fuel cell, stoichiometry of product formation in a thionine-mediated Proteus vulgaris fuel cell and its relation to coulombic yields. J. Gen. Microbiol. 131: 1393-1401
  28. Willner, I., G. Arad, and E. Katz. 1998. A biofuel cell based on pyrroloquinoline quinone and microperoxidase-11 monolayer-functionalized electrode. Bioelectrochem. Bioenerg. 44: 209-214