Bettin C (2006) Applicability and feasibility of incorporating microbial fuel cell technology into
implantable biomedical devices. College of Engineering, 122 Hitchcock Hall, The Ohio University. https://kb.osu.edu/bitstream/handle/1811/6443/bettinthesisPDF.pdf;sequence¼1
Bezerra CW, Zhang L, Lee K, Liu H, Marques AL, Marques EP, Wang H, Zhang J (2008) Carbon
nanotube/polyaniline composite as anode material for microbial fuel cells. Electrochim Acta
53:4937–4951
Bond DR, Holmes DE, Tender LM, Lovley DR (2002) Electrode-reducing microorganisms that
harvest energy from marine sediments. Science 295:483–485
Bullen RA, Arnot T, Lakeman J, Walsh F (2006) Biofuel cells and their development. Biosens
Bioelectron 21:2015–2045
Chen GW, Choi SJ, Lee TH, Lee GY, Cha JH, Kim CW (2008) Application of biocathode in
microbial fuel cells: cell performance and microbial community. Appl Microbiol Biotechnol
79:379–388
Cheng S, Liu H, Logan BE (2006a) Increased performance of single-chamber microbial fuel cells
using an improved cathode structure. Electrochem Commun 8:489–494
Cheng S, Liu H, Logan BE (2006b) Increased power generation in a continuous flow MFC with
advective flow through the porous anode and reduced electrode spacing. Environ Sci Technol
40:2426–2432
Cheng S, Liu H, Logan BE (2006c) Power densities using different cathode catalysts (Pt and
CoTMPP) and polymer binders (Nafion and PTFE) in single chamber microbial fuel cells.
Environ Sci Technol 40:364–369
Chouler J, Di Lorenzo M (2015) Water quality monitoring in developing countries; can microbial
fuel cells be the answer? Biosensors 5:450–470
Dai C, Choi S (2013) Technology and applications of microbial biosensor. Open J Appl Biosen
2:83–93
Das D (2009) Advances in biohydrogen production processes: an approach towards commercialization. Int J Hydrog Energy 34:7349–7357
Daud WRW, Najafpour G, Rahimnejad M (2011) Clean energy for tomorrow: towards zero
emission and carbon free future: a review. Iran J Energy Environ 2:262–273
Debabov V (2008) Electricity from microorganisms. Microbiology 77:123
Deng Q, Li X, Zuo J, Ling A, Logan BE (2010) Power generation using an activated carbon fiber
felt cathode in an upflow microbial fuel cell. J Power Sources 195:1130–1135
Du Z, Li H, Gu T (2007) A state of the art review on microbial fuel cells: a promising technology for
wastewater treatment and bioenergy. Biotechnol Adv 25:464–482
Esmaeili C, Ghasemi M, Heng LY, Hassan SH, Abdi MM, Daud WRW, Ilbeygi H, Ismail AF
(2014) Synthesis and application of polypyrrole/carrageenan nano-bio composite as a cathode
catalyst in microbial fuel cells. Carbohydr Polym 114:253–259
Gil GC, Chang IS, Kim BH, Kim M, Jang JK, Park HS, Kim HJ (2003) Operational parameters
affecting the performance of a mediator-less microbial fuel cell. Biosens Bioelectron
18:327–334
Grote M (2010) Surfaces of action. Cells and membranes in electrochemistry and the life sciences.
Stud Hist Phil Biol Biomed Sci 41:183–193
Guo Q, Furukawa K, Sopher BL, Pham DG, Xie J, Robinson N, Martin GM, Mattson MP (1996)
Alzheimer’s PS-1 mutation perturbs calcium homeostasis and sensitizes PC12 cells to death
induced by amyloid β-peptide. Neuroreport 8:379–383
Habermann W, Pommer E (1991) Biological fuel cells with sulphide storage capacity. Appl
Microbiol Biotechnol 35:128–133
Ivanov I, Vidaković-Koch T, Sundmacher K (2010) Recent advances in enzymatic fuel cells:
experiments and modeling. Energies 3:803–846
Izadi P, Rahimnejad M (2013) Simultaneous electricity generation and sulfide removal via a dual
chamber microbial fuel cell. Biofuel Res J 1:34–38
232
M. Rahimnejad et al.
implantable biomedical devices. College of Engineering, 122 Hitchcock Hall, The Ohio University. https://kb.osu.edu/bitstream/handle/1811/6443/bettinthesisPDF.pdf;sequence¼1
Bezerra CW, Zhang L, Lee K, Liu H, Marques AL, Marques EP, Wang H, Zhang J (2008) Carbon
nanotube/polyaniline composite as anode material for microbial fuel cells. Electrochim Acta
53:4937–4951
Bond DR, Holmes DE, Tender LM, Lovley DR (2002) Electrode-reducing microorganisms that
harvest energy from marine sediments. Science 295:483–485
Bullen RA, Arnot T, Lakeman J, Walsh F (2006) Biofuel cells and their development. Biosens
Bioelectron 21:2015–2045
Chen GW, Choi SJ, Lee TH, Lee GY, Cha JH, Kim CW (2008) Application of biocathode in
microbial fuel cells: cell performance and microbial community. Appl Microbiol Biotechnol
79:379–388
Cheng S, Liu H, Logan BE (2006a) Increased performance of single-chamber microbial fuel cells
using an improved cathode structure. Electrochem Commun 8:489–494
Cheng S, Liu H, Logan BE (2006b) Increased power generation in a continuous flow MFC with
advective flow through the porous anode and reduced electrode spacing. Environ Sci Technol
40:2426–2432
Cheng S, Liu H, Logan BE (2006c) Power densities using different cathode catalysts (Pt and
CoTMPP) and polymer binders (Nafion and PTFE) in single chamber microbial fuel cells.
Environ Sci Technol 40:364–369
Chouler J, Di Lorenzo M (2015) Water quality monitoring in developing countries; can microbial
fuel cells be the answer? Biosensors 5:450–470
Dai C, Choi S (2013) Technology and applications of microbial biosensor. Open J Appl Biosen
2:83–93
Das D (2009) Advances in biohydrogen production processes: an approach towards commercialization. Int J Hydrog Energy 34:7349–7357
Daud WRW, Najafpour G, Rahimnejad M (2011) Clean energy for tomorrow: towards zero
emission and carbon free future: a review. Iran J Energy Environ 2:262–273
Debabov V (2008) Electricity from microorganisms. Microbiology 77:123
Deng Q, Li X, Zuo J, Ling A, Logan BE (2010) Power generation using an activated carbon fiber
felt cathode in an upflow microbial fuel cell. J Power Sources 195:1130–1135
Du Z, Li H, Gu T (2007) A state of the art review on microbial fuel cells: a promising technology for
wastewater treatment and bioenergy. Biotechnol Adv 25:464–482
Esmaeili C, Ghasemi M, Heng LY, Hassan SH, Abdi MM, Daud WRW, Ilbeygi H, Ismail AF
(2014) Synthesis and application of polypyrrole/carrageenan nano-bio composite as a cathode
catalyst in microbial fuel cells. Carbohydr Polym 114:253–259
Gil GC, Chang IS, Kim BH, Kim M, Jang JK, Park HS, Kim HJ (2003) Operational parameters
affecting the performance of a mediator-less microbial fuel cell. Biosens Bioelectron
18:327–334
Grote M (2010) Surfaces of action. Cells and membranes in electrochemistry and the life sciences.
Stud Hist Phil Biol Biomed Sci 41:183–193
Guo Q, Furukawa K, Sopher BL, Pham DG, Xie J, Robinson N, Martin GM, Mattson MP (1996)
Alzheimer’s PS-1 mutation perturbs calcium homeostasis and sensitizes PC12 cells to death
induced by amyloid β-peptide. Neuroreport 8:379–383
Habermann W, Pommer E (1991) Biological fuel cells with sulphide storage capacity. Appl
Microbiol Biotechnol 35:128–133
Ivanov I, Vidaković-Koch T, Sundmacher K (2010) Recent advances in enzymatic fuel cells:
experiments and modeling. Energies 3:803–846
Izadi P, Rahimnejad M (2013) Simultaneous electricity generation and sulfide removal via a dual
chamber microbial fuel cell. Biofuel Res J 1:34–38
232
M. Rahimnejad et al.
