Logan BE, Regan JM (2006) Electricity-producing bacterial communities in microbial fuel cells.
Trends Microbiol 14:512–518
Logan BE, Murano C, Scott K, Gray ND, Head IM (2005) Electricity generation from cysteine in a
microbial fuel cell. Water Res 39:942–952
Logan BE, Hamelers B, Rozendal R, Schröder U, Keller J, Freguia S, Aelterman P, Verstraete W,
Rabaey K (2006) Microbial fuel cells: methodology and technology. Environ Sci Technol
40:5181–5192
Lovley DR (2011) Powering microbes with electricity: direct electron transfer from electrodes to
microbes. Environ Microbiol Rep 3:27–35
Min B, Cheng S, Logan BE (2005) Thermodynamic analysis of a single chamber microbial fuel
cell. Water Res 39:1675–1686
Moon H, Chang IS, Jang JK, Kim KS, Lee J, Lovitt RW, Kim BH (2005) On-line monitoring of low
biochemical oxygen demand through continuous operation of a mediator-less microbial fuel
cell. J Microbiol Biotechnol 15:192–196
Nevin KP, Richter H, Covalla S, Johnson J, Woodard T, Orloff A, Jia H, Zhang M, Lovley D (2008)
Power output and columbic efficiencies from biofilms of Geobacter sulfurreducens comparable
to mixed community microbial fuel cells. Environ Microbiol 10:2505–2514
Oh S, Logan BE (2005) Hydrogen and electricity production from a food processing wastewater
using fermentation and microbial fuel cell technologies. Water Res 39:4673–4682
Orta SV, Werner D, Varia J, Mgana S (2017) Microbial fuel cells for inexpensive continuous in-situ
monitoring of groundwater quality. Water Res 117:9–17
Palmer I, Seymour CM, Dams RA (1995) Application of fuel cells to power generation systems.
Google Patents
Pant D, Van Bogaert G, Diels L, Vanbroekhoven K (2010) A review of the substrates used in
microbial fuel cells (MFCs) for sustainable energy production. Bioresour Technol
101:1533–1543
Park D, Zeikus J (2002) Impact of electrode composition on electricity generation in a singlecompartment fuel cell using Shewanella putrefaciens. Appl Microbiol Biotechnol 59:58–61
Park DH, Zeikus JG (2003) Improved fuel cell and electrode designs for producing electricity from
microbial degradation. Biotechnol Bioeng 81:348–355
Park D, Laivenieks M, Guettler M, Jain M, Zeikus J (1999) Microbial utilization of electrically
reduced neutral red as the sole electron donor for growth and metabolite production. Appl
Environ Microbiol 65:2912–2917
Park HS, Kim BH, Kim HS, Kim HJ, Kim GT, Kim M, Chang IS, Park YK, Chang HI (2001) A
novel electrochemically active and Fe (III)-reducing bacterium phylogenetically related to
Clostridium butyricum isolated from a microbial fuel cell. Anaerobe 7:297–306
Pham TH, Aelterman P, Verstraete W (2009) Bioanode performance in bioelectrochemical systems:
recent improvements and prospects. Trends Biotechnol 27:168–178
Phung NT, Lee J, Kang KH, Chang IS, Gadd GM, Kim BH (2004) Analysis of microbial diversity
in oligotrophic microbial fuel cells using 16S rDNA sequences. FEMS Microbiol Lett
233:77–82
Qiao Y, Li CM, Bao SJ, Bao QL (2007) Carbon nanotube/polyaniline composite as anode material
for microbial fuel cells. J Power Sources 170:79–84
Rabaey K, Verstraete W (2005) Microbial fuel cells: novel biotechnology for energy generation.
Trends Biotechnol 23:291–298
Rabaey K, Van de Sompel K, Maignien L, Boon N, Aelterman P, Clauwaert P, De
Schamphelaire L, Pham HT, Vermeulen J, Verhaege M (2006) Microbial fuel cells for sulfide
removal Environmental science. Technology 40:5218–5224
Rahimnejad M, Najafpour GA (2018) Microbial fuel cells: a new source of power. Biochemical
Engineering and Biotechnology. https://www.researchgate.net/profile/Ghasem_Najafpour/pub
lication/283350025_Microbial_fuel_Cell/links/5637b4c208ae78d01d394e35/Microbial-fuelCell.pdf. https://doi.org/10.1016/B978-0-444-63357-6.00018-3
Rahimnejad M, Mokhtarian N, Najafpour G, Daud W, Ghoreyshi A (2009) Low voltage power
generation in a biofuel cell using anaerobic cultures. World Appl Sci J 6:1585–1588
234
M. Rahimnejad et al.
Trends Microbiol 14:512–518
Logan BE, Murano C, Scott K, Gray ND, Head IM (2005) Electricity generation from cysteine in a
microbial fuel cell. Water Res 39:942–952
Logan BE, Hamelers B, Rozendal R, Schröder U, Keller J, Freguia S, Aelterman P, Verstraete W,
Rabaey K (2006) Microbial fuel cells: methodology and technology. Environ Sci Technol
40:5181–5192
Lovley DR (2011) Powering microbes with electricity: direct electron transfer from electrodes to
microbes. Environ Microbiol Rep 3:27–35
Min B, Cheng S, Logan BE (2005) Thermodynamic analysis of a single chamber microbial fuel
cell. Water Res 39:1675–1686
Moon H, Chang IS, Jang JK, Kim KS, Lee J, Lovitt RW, Kim BH (2005) On-line monitoring of low
biochemical oxygen demand through continuous operation of a mediator-less microbial fuel
cell. J Microbiol Biotechnol 15:192–196
Nevin KP, Richter H, Covalla S, Johnson J, Woodard T, Orloff A, Jia H, Zhang M, Lovley D (2008)
Power output and columbic efficiencies from biofilms of Geobacter sulfurreducens comparable
to mixed community microbial fuel cells. Environ Microbiol 10:2505–2514
Oh S, Logan BE (2005) Hydrogen and electricity production from a food processing wastewater
using fermentation and microbial fuel cell technologies. Water Res 39:4673–4682
Orta SV, Werner D, Varia J, Mgana S (2017) Microbial fuel cells for inexpensive continuous in-situ
monitoring of groundwater quality. Water Res 117:9–17
Palmer I, Seymour CM, Dams RA (1995) Application of fuel cells to power generation systems.
Google Patents
Pant D, Van Bogaert G, Diels L, Vanbroekhoven K (2010) A review of the substrates used in
microbial fuel cells (MFCs) for sustainable energy production. Bioresour Technol
101:1533–1543
Park D, Zeikus J (2002) Impact of electrode composition on electricity generation in a singlecompartment fuel cell using Shewanella putrefaciens. Appl Microbiol Biotechnol 59:58–61
Park DH, Zeikus JG (2003) Improved fuel cell and electrode designs for producing electricity from
microbial degradation. Biotechnol Bioeng 81:348–355
Park D, Laivenieks M, Guettler M, Jain M, Zeikus J (1999) Microbial utilization of electrically
reduced neutral red as the sole electron donor for growth and metabolite production. Appl
Environ Microbiol 65:2912–2917
Park HS, Kim BH, Kim HS, Kim HJ, Kim GT, Kim M, Chang IS, Park YK, Chang HI (2001) A
novel electrochemically active and Fe (III)-reducing bacterium phylogenetically related to
Clostridium butyricum isolated from a microbial fuel cell. Anaerobe 7:297–306
Pham TH, Aelterman P, Verstraete W (2009) Bioanode performance in bioelectrochemical systems:
recent improvements and prospects. Trends Biotechnol 27:168–178
Phung NT, Lee J, Kang KH, Chang IS, Gadd GM, Kim BH (2004) Analysis of microbial diversity
in oligotrophic microbial fuel cells using 16S rDNA sequences. FEMS Microbiol Lett
233:77–82
Qiao Y, Li CM, Bao SJ, Bao QL (2007) Carbon nanotube/polyaniline composite as anode material
for microbial fuel cells. J Power Sources 170:79–84
Rabaey K, Verstraete W (2005) Microbial fuel cells: novel biotechnology for energy generation.
Trends Biotechnol 23:291–298
Rabaey K, Van de Sompel K, Maignien L, Boon N, Aelterman P, Clauwaert P, De
Schamphelaire L, Pham HT, Vermeulen J, Verhaege M (2006) Microbial fuel cells for sulfide
removal Environmental science. Technology 40:5218–5224
Rahimnejad M, Najafpour GA (2018) Microbial fuel cells: a new source of power. Biochemical
Engineering and Biotechnology. https://www.researchgate.net/profile/Ghasem_Najafpour/pub
lication/283350025_Microbial_fuel_Cell/links/5637b4c208ae78d01d394e35/Microbial-fuelCell.pdf. https://doi.org/10.1016/B978-0-444-63357-6.00018-3
Rahimnejad M, Mokhtarian N, Najafpour G, Daud W, Ghoreyshi A (2009) Low voltage power
generation in a biofuel cell using anaerobic cultures. World Appl Sci J 6:1585–1588
234
M. Rahimnejad et al.
