Published March 2021 | Version v1
Journal article

Yeast-based microbial biofuel cell mediated by 9,10-phenantrenequinone

  • 1. Department of Mechatronics, Robotics, and Digital Manufacturing, Faculty of Mechanics, Vilnius Gediminas Technical University, 03109 Vilnius (Lithuania)
  • 2. Laboratory of Electrochemical Energy Conversion, State Research Institute Centre for Physical Sciences and Technology, 10257 Vilnius (Lithuania)
  • 3. Department of Chemistry and Bioengineering, Faculty of Fundamental Sciences, Vilnius Gediminas Technical University, 10223 Vilnius (Lithuania)
  • 4. Laboratory of Nanotechnology, State Research Institute Centre for Physical Sciences and Technology, 02300 Vilnius (Lithuania)
  • 5. Department of Physical Chemistry, Faculty of Chemistry and Geosciences, Vilnius University, 03225 Vilnius (Lithuania)

Description

Highlights: • Microbial fuel cell (MFC) based on yeast cells was designed. • Two redox mediator based system, with 9,10-phenantrenequinone (PQ) and potassium ferricyanide was used in the design of MFC. • The viability of bakers' yeast and pure saccharomyces cerevisiae cell strains was investigated in the presence of PQ in solution. • MFC based on bakers' yeast, generated the power of 22.2 mW/m2 at 56 mV in the presence 30 mM of glucose. • Maximal open circuit potential was 178 mV at 7.8 mM of glucose and 23 mM of potassium ferricyanide and PQ. -- Abstract: Microbial fuel cells can be efficiently used for simultaneous cleaning of wastewater and generation of electricity. This research demonstrates the applicability of Baker yeast cells in the design of microbial biofuel cells. The applicability the 9,10-phenantrenequinone (PQ) as a redox mediator in the design of yeast-based microbial cell (MFC) for the improvement of charge transfer through the yeast cell membrane and cell wall towards the electrode was evaluated. The viability of bakers' yeast and pure Saccharomyces cerevisiae cell strains was investigated by evaluating the growth velocity of cells in the presence of a different concentration of PQ in solution. The growth curves of bakers' yeast showed that they were more resistant to PQ. Electrochemical measurements were performed with PQ as a redox mediator, which was (i) dissolved in solution and (ii) adsorbed on a graphite electrode. Differently modified graphite electrodes (namely: (i) non-modified, (ii) yeast-modified, (iii) modified by PQ and yeast) were evaluated. The modified electrodes were evaluated as anodes of MFC. The dependence of potential on external resistance and generated power of MFC was evaluated. Maximal open circuit potential was 178 mV at 7.8 mM of glucose and 23 mM of potassium ferricyanide. Maximal power of BFC calculated at the same conditions was registered at 56 mV, and it reached 22.2 mW/m2 (at 30 mM of glucose). The application of PQ as a redox mediator for yeast-based MFC improves electron transfer through the yeast cell membrane and cell wall towards electrode without any noticeable decrease of yeast cell viability.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.electacta.2021.137918

Additional details

Additional titles

Augmented title (English)
Carbon nanotubes

Identifiers

DOI
10.1016/j.electacta.2021.137918;
PII
S0013468621002085;

Publishing Information

Journal Title
Electrochimica Acta
Journal Volume
373
Journal Page Range
vp.
ISSN
0013-4686
CODEN
ELCAAV

Optional Information

Copyright
Copyright (c) 2021 Elsevier Ltd. All rights reserved.