Performance of a Yeast-mediated Biological Fuel Cell
Open Access
- 7 October 2008
- journal article
- research article
- Published by MDPI AG in International Journal of Molecular Sciences
- Vol. 9 (10), 1893-1907
- https://doi.org/10.3390/ijms9101893
Abstract
Saccharomyces cerevisiae present in common Baker’s yeast was used in a microbial fuel cell in which glucose was the carbon source. Methylene blue was used as the electronophore in the anode compartment, while potassium ferricyanide and methylene blue were tested as electron acceptors in the cathode compartment. Microbes in a mediator-free environment were used as the control. The experiment was performed in both open and closed circuit configurations under different loads ranging from 100 kΩ to 400Ω. The eukaryotic S. cerevisiae-based fuel cell showed improved performance when methylene blue and ferricyanide were used as electron mediators, rendering a maximum power generation of 146.71±7.7 mW/m3. The fuel cell generated a maximum open circuit voltage of 383.6±1.5 mV and recorded a maximum efficiency of 28±1.8 % under 100 kΩ of external load.Keywords
This publication has 19 references indexed in Scilit:
- Towards practical implementation of bioelectrochemical wastewater treatmentTrends in Biotechnology, 2008
- Microbial ecology meets electrochemistry: electricity-driven and driving communitiesThe ISME Journal, 2007
- Electrically conductive bacterial nanowires produced by Shewanella oneidensis strain MR-1 and other microorganismsProceedings of the National Academy of Sciences, 2006
- Exocellular electron transfer in anaerobic microbial communitiesEnvironmental Microbiology, 2006
- Anaerobic and complementary treatment of domestic sewage in regions with hot climates—A reviewBioresource Technology, 2005
- Extracellular electron transfer via microbial nanowiresNature, 2005
- Fuel cells: A new, efficient and cleaner power sourceAIChE Journal, 2001
- A role for excreted quinones in extracellular electron transferNature, 2000
- Microbial fuel-cellsApplied Biochemistry and Biotechnology, 1993
- Chapter IX Cellular ElectrophysiologyMethods in Microbiology, 1972