Literature DB >> 19540172

Improved energy output levels from small-scale Microbial Fuel Cells.

I Ieropoulos1, J Greenman, C Melhuish.   

Abstract

This study reports on the findings from the investigation into small-scale (6.25 mL) MFCs, connected together as a network of multiple units. The MFCs contained unmodified (no catalyst) carbon fibre electrodes and for initial and later experiments, a standard ion-exchange membrane for the proton transfer from the anode to the cathode. The anode microbial culture was of the type commonly found in domestic wastewater fed with 5 mM acetate as the carbon-energy (C/E) source. The cultures were mature and acclimatised in the MFC environment for approximately 2 months before being re-inoculated in the experimental MFC units. The cathode was of the O(2) diffusion open-to-air type, but for the purposes of the polarization experiments, the cathodic electrodes were moistened with ferricyanide. The main aim of this study was to investigate the effects of connecting multiples of MFC units together as a method of scale up by using stacks and comparison of the effects of different PEM and MFC structural materials on the performance. Impedance matching (maximum-power-transfer) was achieved through calculation of total internal impedance. Three different PEM materials were compared in otherwise identical MFCs in sets of three. For individual isolated MFCs, Hyflon E87-03 was shown to produce twice, whilst E87-10 produced approximately 1.5 times the power output of the control (standard) PEM. However, when MFCs containing the E87-03 and E87-10 membranes were connected in a stack, the system suffered from severe instability and cell reversal. To study the effects of the various polymeric MFC structural materials, four small-scale units were manufactured from three different types of RP material; acrylo-butadiene-styrene coated (ABS), ABS coated (ABS-MEK) and polycarbonate (polyC). The stack of four (4) units prototyped out of polyC produced the highest power density values in polarisation experiments (80 mW/m(2)). 2009 Elsevier B.V. All rights reserved.

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Year:  2009        PMID: 19540172     DOI: 10.1016/j.bioelechem.2009.05.009

Source DB:  PubMed          Journal:  Bioelectrochemistry        ISSN: 1567-5394            Impact factor:   5.373


  5 in total

1.  Electricity and disinfectant production from wastewater: Microbial Fuel Cell as a self-powered electrolyser.

Authors:  Iwona Gajda; John Greenman; Chris Melhuish; Ioannis A Ieropoulos
Journal:  Sci Rep       Date:  2016-05-12       Impact factor: 4.379

2.  Microbial fuel cells: From fundamentals to applications. A review.

Authors:  Carlo Santoro; Catia Arbizzani; Benjamin Erable; Ioannis Ieropoulos
Journal:  J Power Sources       Date:  2017-07-15       Impact factor: 9.127

Review 3.  Recent advancements in real-world microbial fuel cell applications.

Authors:  Iwona Gajda; John Greenman; Ioannis A Ieropoulos
Journal:  Curr Opin Electrochem       Date:  2018-10

4.  Halobacterium salinarum NRC-1 Sustains Voltage Production in a Dual-Chambered Closed Microbial Fuel Cell.

Authors:  Rodrigo Oliveira Goncalves; Ali Salehi; Marlon Publico; Jimmy Nyende; Nalina Nadarajah; Soheil Ghoreyshi; Padmaja Shastri
Journal:  ScientificWorldJournal       Date:  2022-09-12

5.  Developing 3D-Printable Cathode Electrode for Monolithically Printed Microbial Fuel Cells (MFCs).

Authors:  Pavlina Theodosiou; John Greenman; Ioannis A Ieropoulos
Journal:  Molecules       Date:  2020-08-10       Impact factor: 4.411

  5 in total

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