
Proceedings Paper
Interconnection between tricarboxylic acid cycle and energy generation in microbial fuel cell performed by desulfuromonas acetoxidans IMV B-7384Format | Member Price | Non-Member Price |
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Paper Abstract
Desulfuromonas acetoxidans IMV B-7384 is exoelectrogenic obligate anaerobic sulfur-reducing bacterium. Its one of the first described electrogenic bacterium that performs complete oxidation of an organic substrate with electron transfer directly to the electrode in microbial fuel cell (MFC). This bacterium is very promising for MFC development because of inexpensive cultivation medium, high survival rate and selective resistance to various heavy metal ions. The size of D. acetoxidans IMV B-7384 cells is comparatively small (0.4-0.8×1-2 μm) that is highly beneficial while application of porous anode material because of complete bacterial cover of an electrode area with further significant improvement of the effectiveness of its usage. The interconnection between functioning of reductive stage of tricarboxylic acid (TCA) cycle under anaerobic conditions, and MFC performance was established. Malic, pyruvic, fumaric and succinic acids in concentration 42 mM were separately added into the anode chamber of MFC as the redox agents. Application of malic acid caused the most stabile and the highest power generation in comparison with other investigated organic acids. Its maximum equaled 10.07±0.17mW/m2 on 136 hour of bacterial cultivation. Under addition of pyruvic, succinic and fumaric acids into the anode chamber of MFC the maximal power values equaled 5.80±0.25 mW/m2; 3.2±0.11 mW/m2, and 2.14±0.19 mW/m2 respectively on 40, 56 and 32 hour of bacterial cultivation. Hence the malic acid conversion via reductive stage of TCA cycle is shown to be the most efficient process in terms of electricity generation by D. acetoxidans IMV B-7384 in MFC under anaerobic conditions.
Paper Details
Date Published: 18 May 2015
PDF: 7 pages
Proc. SPIE 9493, Energy Harvesting and Storage: Materials, Devices, and Applications VI, 94930J (18 May 2015); doi: 10.1117/12.2176222
Published in SPIE Proceedings Vol. 9493:
Energy Harvesting and Storage: Materials, Devices, and Applications VI
Nibir K. Dhar; Achyut K. Dutta, Editor(s)
PDF: 7 pages
Proc. SPIE 9493, Energy Harvesting and Storage: Materials, Devices, and Applications VI, 94930J (18 May 2015); doi: 10.1117/12.2176222
Show Author Affiliations
Oresta M. Vasyliv, Arterium Corp. (Ukraine)
Olga D. Maslovska, Ivan Franko National Univ. of Lviv (Ukraine)
Yaroslav P. Ferensovych, Ivan Franko National Univ. of Lviv (Ukraine)
Olga D. Maslovska, Ivan Franko National Univ. of Lviv (Ukraine)
Yaroslav P. Ferensovych, Ivan Franko National Univ. of Lviv (Ukraine)
Oleksandr I. Bilyy, Ivan Franko National Univ. of Lviv (Ukraine)
Svitlana O. Hnatush, Ivan Franko National Univ. of Lviv (Ukraine)
Svitlana O. Hnatush, Ivan Franko National Univ. of Lviv (Ukraine)
Published in SPIE Proceedings Vol. 9493:
Energy Harvesting and Storage: Materials, Devices, and Applications VI
Nibir K. Dhar; Achyut K. Dutta, Editor(s)
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