182
A. Arkatkar et al.
Ghadge AN, Sreemannarayana M, Duteanu N, Ghangrekar MM (2014) Influence of ceramic
separator’s characteristics on microbial fuel cell performance. Int J Electrochem Sci 4:315–326
Huang L, Tang J, Chen M, Liu X, Zhou S (2018) Two modes of riboflavin-mediated extracellular
electron transfer in geobacter uraniireducens. Front Microbiol 9:2886
Ieropoulos I, Melhuish C, Greenman J, Horsfield I (2005) Ecobot-ii: AN artificial agent with a
natural metabolism. Int J Adv Robot Syst 2:31
Ieropoulos IA, Ledezma P, Stinchcombe A, Papaharalabos G, Melhuish C, Greenman J (2013) Waste
to real energy: the first mfc powered mobile phone. Phys Chem Chem Phys 15:15312–15316
Jiang X, Hu J, Lieber AM, Jackan CS, Biffinger JC, Fitzgerald LA, Ringeisen BR, Lieber CM
(2014) Nanoparticle facilitated extracellular electron transfer in microbial fuel cells. Nano Lett
14:6737–6742
Kalathil S, Nguyen VH, Shim J-J, Khan MM, Lee J, Cho MH (2013) Enhanced performance
of a microbial fuel cell using CNT/MnO 2 nanocomposite as a bioanode material. J Nanosci
Nanaotechno 13:7712–7716
Liang M, Tao HC, Li SF, Li W, Zhang LJ, Ni JR (2011) Treatment of Cu 2+ containing wastewater
by microbial fuel cell with excess sludge as anodic substrate. J Environ Sci (China) 32:179–185
Logan BE (2008) Microbial fuel cells. Wiley, New Jersey
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
Lv Z, Xie D, Yue X, Feng C, Wei C (2012) Ruthenium oxide-coated carbon felt electrode: a highly
active anode for microbial fuel cell applications. J Power Sources 210:26–31
Mathuriya AS, Jadhav DA, Ghangrekar MM (2018) Architectural adaptations of microbial fuel
cells. Appl Microbiol Biotechnol 102:9419–9432
Mehdinia A, Ziaei E, Jabbari A (2014) Multi-walled carbon nanotube/SnO2 nanocomposite: a novel
anode material for microbial fuel cells. Electrochim Acta 130:512–518
Mohamed HO, Abdelkareem MA, Obaid M, Chae S-H, Park M, Kim HY, Barakat NAM (2017)
Cobalt oxides-sheathed cobalt nano flakes to improve surface properties of carbonaceous
electrodes utilized in microbial fuel cells. Chem Eng J 326:497–506
Mohamed HO, Obaid M, Poo K-M, Ali Abdelkareem M, Talas SA, Fadali OA, Kim HY, Chae K-J
(2018a) Fe/Fe 2 O 3 nanoparticles as anode catalyst for exclusive power generation and degradation
of organic compounds using microbial fuel cell. Chem Eng J 349:800–807
Mohamed HO, Sayed ET, Obaid M, Choi Y-J, Park S-G, Al-Qaradawi S, Chae K-J (2018b) Transition metal nanoparticles doped carbon paper as a cost-effective anode in a microbial fuel cell
powered by pure and mixed biocatalyst cultures. Int J Hydrog Energy 43:21560–21571
Muthukumar H, Mohammed SN, Chandrasekaran N, Sekar AD, Pugazhendhi A, Matheswaran M
(2019) Effect of iron doped zinc oxide nanoparticles coating in the anode on current generation
in microbial electrochemical cells. Int J Hydrog Energy 44:2407–2416
Ogawa T, Takeuchi M, Kajikawa Y (2018) Analysis of trends and emerging technologies in water
electrolysis research based on a computational method: a comparison with fuel cell research.
Sustainability 10:478
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
Phonsa S, Sreearunothai P, Charojrochkul S, Sombatmankhong K (2018) Electrodeposition of mno 2
on polypyrrole-coated stainless steel to enhance electrochemical activities in microbial fuel cells.
Solid State Ion 316:125–134
Pushkar P, Prakash O, Imran M, Mungray AA, Kailasa SK, Mungray AK (2018) Effect of cerium
oxide nanoparticles coating on the electrodes of benthic microbial fuel cell. Sep Sci Technol
54:213–223
Qin M, He Z (2017) Resource recovery by osmotic bioelectrochemical systems towards sustainable
wastewater treatment. Environ Sci Water Res Technol 3:583–592
A. Arkatkar et al.
Ghadge AN, Sreemannarayana M, Duteanu N, Ghangrekar MM (2014) Influence of ceramic
separator’s characteristics on microbial fuel cell performance. Int J Electrochem Sci 4:315–326
Huang L, Tang J, Chen M, Liu X, Zhou S (2018) Two modes of riboflavin-mediated extracellular
electron transfer in geobacter uraniireducens. Front Microbiol 9:2886
Ieropoulos I, Melhuish C, Greenman J, Horsfield I (2005) Ecobot-ii: AN artificial agent with a
natural metabolism. Int J Adv Robot Syst 2:31
Ieropoulos IA, Ledezma P, Stinchcombe A, Papaharalabos G, Melhuish C, Greenman J (2013) Waste
to real energy: the first mfc powered mobile phone. Phys Chem Chem Phys 15:15312–15316
Jiang X, Hu J, Lieber AM, Jackan CS, Biffinger JC, Fitzgerald LA, Ringeisen BR, Lieber CM
(2014) Nanoparticle facilitated extracellular electron transfer in microbial fuel cells. Nano Lett
14:6737–6742
Kalathil S, Nguyen VH, Shim J-J, Khan MM, Lee J, Cho MH (2013) Enhanced performance
of a microbial fuel cell using CNT/MnO 2 nanocomposite as a bioanode material. J Nanosci
Nanaotechno 13:7712–7716
Liang M, Tao HC, Li SF, Li W, Zhang LJ, Ni JR (2011) Treatment of Cu 2+ containing wastewater
by microbial fuel cell with excess sludge as anodic substrate. J Environ Sci (China) 32:179–185
Logan BE (2008) Microbial fuel cells. Wiley, New Jersey
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
Lv Z, Xie D, Yue X, Feng C, Wei C (2012) Ruthenium oxide-coated carbon felt electrode: a highly
active anode for microbial fuel cell applications. J Power Sources 210:26–31
Mathuriya AS, Jadhav DA, Ghangrekar MM (2018) Architectural adaptations of microbial fuel
cells. Appl Microbiol Biotechnol 102:9419–9432
Mehdinia A, Ziaei E, Jabbari A (2014) Multi-walled carbon nanotube/SnO2 nanocomposite: a novel
anode material for microbial fuel cells. Electrochim Acta 130:512–518
Mohamed HO, Abdelkareem MA, Obaid M, Chae S-H, Park M, Kim HY, Barakat NAM (2017)
Cobalt oxides-sheathed cobalt nano flakes to improve surface properties of carbonaceous
electrodes utilized in microbial fuel cells. Chem Eng J 326:497–506
Mohamed HO, Obaid M, Poo K-M, Ali Abdelkareem M, Talas SA, Fadali OA, Kim HY, Chae K-J
(2018a) Fe/Fe 2 O 3 nanoparticles as anode catalyst for exclusive power generation and degradation
of organic compounds using microbial fuel cell. Chem Eng J 349:800–807
Mohamed HO, Sayed ET, Obaid M, Choi Y-J, Park S-G, Al-Qaradawi S, Chae K-J (2018b) Transition metal nanoparticles doped carbon paper as a cost-effective anode in a microbial fuel cell
powered by pure and mixed biocatalyst cultures. Int J Hydrog Energy 43:21560–21571
Muthukumar H, Mohammed SN, Chandrasekaran N, Sekar AD, Pugazhendhi A, Matheswaran M
(2019) Effect of iron doped zinc oxide nanoparticles coating in the anode on current generation
in microbial electrochemical cells. Int J Hydrog Energy 44:2407–2416
Ogawa T, Takeuchi M, Kajikawa Y (2018) Analysis of trends and emerging technologies in water
electrolysis research based on a computational method: a comparison with fuel cell research.
Sustainability 10:478
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
Phonsa S, Sreearunothai P, Charojrochkul S, Sombatmankhong K (2018) Electrodeposition of mno 2
on polypyrrole-coated stainless steel to enhance electrochemical activities in microbial fuel cells.
Solid State Ion 316:125–134
Pushkar P, Prakash O, Imran M, Mungray AA, Kailasa SK, Mungray AK (2018) Effect of cerium
oxide nanoparticles coating on the electrodes of benthic microbial fuel cell. Sep Sci Technol
54:213–223
Qin M, He Z (2017) Resource recovery by osmotic bioelectrochemical systems towards sustainable
wastewater treatment. Environ Sci Water Res Technol 3:583–592
