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1.
ChemSusChem ; 8(15): 2492-5, 2015 Aug 10.
Article in English | MEDLINE | ID: mdl-26212121

ABSTRACT

An electrical model able to decouple the electron pathway from microbial cell machinery impedance terms is introduced. In this context, capacitance characteristics of the biofilm are clearly resolved. In other words, the model allows separating, according to the advantage of frequency and spectroscopic response approach, the different terms controlling the performance of the microbial biofilm respiratory process and thus the directly related electricity production process. The model can be accurately fitted to voltammetry measurements obtained under steady-state conditions and also to biofilm discharge amperometric measurements. The implications of biological aspects of the electrochemical or redox capacitance are discussed theoretically in the context of current knowledge with regard to structure and physiological activity of microbial Geobacter biofilms.


Subject(s)
Bioelectric Energy Sources , Geobacter/physiology , Biofilms , Electric Capacitance , Electrodes
2.
ChemSusChem ; 6(4): 711-20, 2013 Apr.
Article in English | MEDLINE | ID: mdl-23417889

ABSTRACT

Devices that exploit electricity produced by electroactive bacteria such as Geobacter sulfurreducens have not yet been demonstrated beyond the laboratory scale. The current densities are far from the maximum that the bacteria can produce because fundamental properties such as the mechanism of extracellular electron transport and factors limiting cell respiration remain unclear. In this work, a strategy for the investigation of electroactive biofilms is presented. Numerical modeling of the response of G. sulfurreducens biofilms cultured on a rotating disk electrode has allowed for the discrimination of different limiting steps in the process of current production within a biofilm. The model outputs reveal that extracellular electron transport limits the respiration rate of the cells furthest from the electrode to the extent that cell division is not possible. The mathematical model also demonstrates that recent findings such as the existence of a redox gradient in actively respiring biofilms can be explained by an electron hopping mechanism but not when considering metallic-like conductivities.


Subject(s)
Biofilms , Geobacter/physiology , Models, Theoretical , Acetates/chemistry , Bioelectric Energy Sources , Electrodes , Oxidation-Reduction
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