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Year 2017, Özel Sayı 2, 77 - 83, 23.11.2017

Abstract

References

  • Bakhshian S., Kariminia H.R., Roshandel R. 2011. “Bioelectricity generation enhancement in a dual chamber microbial fuel cell under cathodic enzyme catalyzed dye decolorization” Bioresource Technology. 102(12):6761-5
  • Çatal, T., Li, K., Bermek, H., Liu, H. 2008. “Electricity production from twelve monosaccharides using microbial fuel cells”, Journal of Power Sources, 175, 196–200.
  • Dönmez G., 2001. “Bioaccumulation of the reactive textile dyes by Candida tropicalis growing in molasses medium”. Enzyme and Microbiol. Technology. 30,
  • Du Z., Li H., Gu T. 2007. “A state of the art review on microbial fuel cells: A promising technology for wastewater treatment and bioenergy” Biotechnology Advances. 25, 464–482.
  • Franks A. E., Nevin K. P. 2010. “Microbial Fuel Cells, A Current Review” Energies, 3, 899-919.
  • Gude V. G. 2016.” Wastewater treatment in microbial fuel cells e an overview” Journal of Cleaner Production. 122, 287-307.
  • Herrero-Hernandez, E., Smith,T.J., Akid, R. 2013. “Electricity generation from wastewaters with starch as carbon source using a mediatorless microbial fuel cell”, Biosensors and Bioelectronics 39, 194–198.
  • Kiely, P. D., Cusick, R., Call, D. F., Selembo, P. A., Regan, J. M., Logan, B. E. 2011. “Anode microbial communities produced by changing from microbial fuel cell to microbial electrolysis cell operation using two different wastewaters”, Bioresource Technology 102 , 388–394.
  • Lin C., Wu C., Chiu Y., Tsai S. 2014.” Effects of different mediators on electricity generation and microbial structure of a toluene powered microbial fuel cell” Fuel. 125 30–35.
  • Logan B. E., Hamelers B., Rozendal R., Schroder U., Keller J., Freguıa S., Aelterman P., Verstraete W., Rabaey K. 2006. “Microbial Fuel Cells: Methodology and Technology” Environmental Science & Technology, vol. 40, no. 17, 5181 – 5192.
  • Logan B. E., Regan J. M. 2006.” Electricity-producing bacterial communities in microbial fuel cells” Trends in Microbiology Vol.14 No.12, 512-518.
  • Min,B. Chenga S., Logan B.E. 2005. “Electricity generation using membrane andsalt bridge microbial fuel cells” Water Research 39, 1675–1686.
  • Pant, D., Van Bogaert, G., Diels, L., Vanbroekhoven, K. 2010. “A review of the substrates used in microbial fuel cells (MFCs) for sustainable energy production”, Bioresource Technology 101, 1533–1543.
  • Rezaei, F., Richard, T. L., Logan, B. E. 2009. “Analysis of chitin particle size on maximum power generation, power longevity,and Coulombic efficiency in solid–substrate microbial fuel cells”, Journal of Power Sources 192 , 304–309.
  • Satyawali Y., Balakrishnan M. 2008. “Wastewater treatment in molassses-based alcohol distilleries for COD and color removal: A review”, Journal of Environmental Management, 86, 481-497.
  • Singh D., Pratap D., Baranwal Y., Kumar B., Chaudhary R. K. 2010. “Microbial fuel cells: A green technology for power generation” Annals of Biological Research, 1(3), 128-138.
  • Trapero J. R., Horcajada L., Linares J. J., Lobato J. 2017. “Is microbial fuel cell technology ready? An economic answer towards industrial commercialization” Applied Energy. 185, 698–707.
  • Wang, X., Feng, Y., Ren, N., Wang, H., Lee, H., Li, N., Zhao, Q. 2009. “Accelerated start-up of two-chambered microbial fuel cells: Effect of anodic positive poised potential”, Electrochimica Acta 54, 1109–1114.
  • Zhang Y., Min B., Huang L., Angelidaki I. 2011. “Electricity generation and microbial community response to substrate changes in microbial fuel cell” Bioresource Technology. 102, 1166–1173.
  • Zhang X., He W., Ren L., Stager J., Evans P. J., Logan B. E. 2015. “COD removal characteristics in air-cathode microbial fuel cells” Bioresource Technology. 176, 23–31.

The Usage of Molasses and Mediators in Microbial Fuel Cells

Year 2017, Özel Sayı 2, 77 - 83, 23.11.2017

Abstract

Microbial Fuel Cells (MFCs) have an important role in today’s research as clean energy sources. Microbial Fuel Cells enable the conversion of the chemical bond energy in organic materials to electrical energy by metabolic activities of microorganisms and, ensure solutions for wastewater treatment and electricity generation. The molasses has very high Chemical Oxygen Demand (COD) and low pH values and is located among 17 wastewater polluting the environment. In the study, molasses medium was used in the anode in dual chamber MFC, the effect of neutral red (NR) and methylene blue (MB) were investigated.as mediator on voltage. The bacterial community of MFC was fed with fresh molasses medium in fed-batch system and the COD value was calculated as 14 g/L. At the end of the 30-day incubation period, the voltage values were determined as 281 mV, 463 mV, 477 mV in the mediatorless molasses medium, with NR and MB respectively. Also, the decolorization of mediator dyes were determined for NR and MB. Decolorization yield of NR and COD removal rate were determined as  %86 and %50 sequentially. In addition to this the decolorization yield and COD removal of MB were determined as %86 and %80 at 28 days incubation.




References

  • Bakhshian S., Kariminia H.R., Roshandel R. 2011. “Bioelectricity generation enhancement in a dual chamber microbial fuel cell under cathodic enzyme catalyzed dye decolorization” Bioresource Technology. 102(12):6761-5
  • Çatal, T., Li, K., Bermek, H., Liu, H. 2008. “Electricity production from twelve monosaccharides using microbial fuel cells”, Journal of Power Sources, 175, 196–200.
  • Dönmez G., 2001. “Bioaccumulation of the reactive textile dyes by Candida tropicalis growing in molasses medium”. Enzyme and Microbiol. Technology. 30,
  • Du Z., Li H., Gu T. 2007. “A state of the art review on microbial fuel cells: A promising technology for wastewater treatment and bioenergy” Biotechnology Advances. 25, 464–482.
  • Franks A. E., Nevin K. P. 2010. “Microbial Fuel Cells, A Current Review” Energies, 3, 899-919.
  • Gude V. G. 2016.” Wastewater treatment in microbial fuel cells e an overview” Journal of Cleaner Production. 122, 287-307.
  • Herrero-Hernandez, E., Smith,T.J., Akid, R. 2013. “Electricity generation from wastewaters with starch as carbon source using a mediatorless microbial fuel cell”, Biosensors and Bioelectronics 39, 194–198.
  • Kiely, P. D., Cusick, R., Call, D. F., Selembo, P. A., Regan, J. M., Logan, B. E. 2011. “Anode microbial communities produced by changing from microbial fuel cell to microbial electrolysis cell operation using two different wastewaters”, Bioresource Technology 102 , 388–394.
  • Lin C., Wu C., Chiu Y., Tsai S. 2014.” Effects of different mediators on electricity generation and microbial structure of a toluene powered microbial fuel cell” Fuel. 125 30–35.
  • Logan B. E., Hamelers B., Rozendal R., Schroder U., Keller J., Freguıa S., Aelterman P., Verstraete W., Rabaey K. 2006. “Microbial Fuel Cells: Methodology and Technology” Environmental Science & Technology, vol. 40, no. 17, 5181 – 5192.
  • Logan B. E., Regan J. M. 2006.” Electricity-producing bacterial communities in microbial fuel cells” Trends in Microbiology Vol.14 No.12, 512-518.
  • Min,B. Chenga S., Logan B.E. 2005. “Electricity generation using membrane andsalt bridge microbial fuel cells” Water Research 39, 1675–1686.
  • Pant, D., Van Bogaert, G., Diels, L., Vanbroekhoven, K. 2010. “A review of the substrates used in microbial fuel cells (MFCs) for sustainable energy production”, Bioresource Technology 101, 1533–1543.
  • Rezaei, F., Richard, T. L., Logan, B. E. 2009. “Analysis of chitin particle size on maximum power generation, power longevity,and Coulombic efficiency in solid–substrate microbial fuel cells”, Journal of Power Sources 192 , 304–309.
  • Satyawali Y., Balakrishnan M. 2008. “Wastewater treatment in molassses-based alcohol distilleries for COD and color removal: A review”, Journal of Environmental Management, 86, 481-497.
  • Singh D., Pratap D., Baranwal Y., Kumar B., Chaudhary R. K. 2010. “Microbial fuel cells: A green technology for power generation” Annals of Biological Research, 1(3), 128-138.
  • Trapero J. R., Horcajada L., Linares J. J., Lobato J. 2017. “Is microbial fuel cell technology ready? An economic answer towards industrial commercialization” Applied Energy. 185, 698–707.
  • Wang, X., Feng, Y., Ren, N., Wang, H., Lee, H., Li, N., Zhao, Q. 2009. “Accelerated start-up of two-chambered microbial fuel cells: Effect of anodic positive poised potential”, Electrochimica Acta 54, 1109–1114.
  • Zhang Y., Min B., Huang L., Angelidaki I. 2011. “Electricity generation and microbial community response to substrate changes in microbial fuel cell” Bioresource Technology. 102, 1166–1173.
  • Zhang X., He W., Ren L., Stager J., Evans P. J., Logan B. E. 2015. “COD removal characteristics in air-cathode microbial fuel cells” Bioresource Technology. 176, 23–31.
There are 20 citations in total.

Details

Subjects Engineering
Journal Section Full-length articles
Authors

Merve Öztürk This is me

Tuba Artan Onat This is me

Publication Date November 23, 2017
Submission Date December 12, 2017
Acceptance Date December 21, 2017
Published in Issue Year 2017 Özel Sayı 2

Cite

APA Öztürk, M., & Artan Onat, T. (2017). The Usage of Molasses and Mediators in Microbial Fuel Cells. Journal of the Turkish Chemical Society Section B: Chemical Engineering, 1(Sp. is. 2), 77-83.

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J. Turk. Chem. Soc., Sect. B: Chem. Eng. (JOTCSB)