메뉴 건너뛰기




Volumn 168, Issue , 2016, Pages 706-723

Recent advances in the use of different substrates in microbial fuel cells toward wastewater treatment and simultaneous energy recovery

Author keywords

Bioelectricity; Bioelectrochemical systems; Electroactive bacteria; Microbial fuel cell; Wastewater treatment

Indexed keywords

BACTERIA; BIOELECTRIC PHENOMENA; CHEMICAL OXYGEN DEMAND; ELECTROPHYSIOLOGY; FUEL CELLS; MICROBIAL FUEL CELLS; MOLECULAR BIOLOGY; RECLAMATION;

EID: 84958291784     PISSN: 03062619     EISSN: None     Source Type: Journal    
DOI: 10.1016/j.apenergy.2016.01.056     Document Type: Review
Times cited : (623)

References (260)
  • 1
    • 0033153555 scopus 로고    scopus 로고
    • Sustainable development: how can biotechnology contribute?
    • Zechendorf B. Sustainable development: how can biotechnology contribute?. Trends Biotechnol 1999, 17:219-225.
    • (1999) Trends Biotechnol , vol.17 , pp. 219-225
    • Zechendorf, B.1
  • 2
    • 24944546402 scopus 로고    scopus 로고
    • Biotechnology-a sustainable alternative for chemical industry
    • Gavrilescu M., Chisti Y. Biotechnology-a sustainable alternative for chemical industry. Biotechnol Adv 2005, 23:471-499.
    • (2005) Biotechnol Adv , vol.23 , pp. 471-499
    • Gavrilescu, M.1    Chisti, Y.2
  • 3
    • 34447109082 scopus 로고    scopus 로고
    • Anaerobic biohydrogen production from dairy wastewater treatment in sequencing batch reactor (AnSBR): effect of organic loading rate
    • Venkata Mohan S., Babu V.L., Sharma P.N. Anaerobic biohydrogen production from dairy wastewater treatment in sequencing batch reactor (AnSBR): effect of organic loading rate. Enzyme Microbiol Technol 2007, 41:506-515.
    • (2007) Enzyme Microbiol Technol , vol.41 , pp. 506-515
    • Venkata Mohan, S.1    Babu, V.L.2    Sharma, P.N.3
  • 4
    • 84897586232 scopus 로고    scopus 로고
    • Towards sustainable wastewater treatment by using microbial fuel cells-centered technologies
    • Li W.W., Yu H.Q., He Z. Towards sustainable wastewater treatment by using microbial fuel cells-centered technologies. Energy Environ Sci 2014, 7:911-924.
    • (2014) Energy Environ Sci , vol.7 , pp. 911-924
    • Li, W.W.1    Yu, H.Q.2    He, Z.3
  • 5
    • 84886078974 scopus 로고    scopus 로고
    • Integrated conversion of food waste diluted with sewage into volatile fatty acids through fermentation and electricity through a fuel cell
    • Pant D., Arslan D., Bogaert G.V., Gallego Y.A., Wever H.D., Diels L., et al. Integrated conversion of food waste diluted with sewage into volatile fatty acids through fermentation and electricity through a fuel cell. Environ Technol 2013, 34:1935-1945.
    • (2013) Environ Technol , vol.34 , pp. 1935-1945
    • Pant, D.1    Arslan, D.2    Bogaert, G.V.3    Gallego, Y.A.4    Wever, H.D.5    Diels, L.6
  • 6
    • 84870791628 scopus 로고    scopus 로고
    • Electron transfer mechanisms between microorganisms and electrodes in bioelectrochemical systems
    • Patil S.A., Hägerhäll C., Gorton L. Electron transfer mechanisms between microorganisms and electrodes in bioelectrochemical systems. Bioanal Rev 2012, 4:159-192.
    • (2012) Bioanal Rev , vol.4 , pp. 159-192
    • Patil, S.A.1    Hägerhäll, C.2    Gorton, L.3
  • 7
    • 0003932256 scopus 로고
    • Electrical effects accompanying the decomposition of organic compounds
    • Potter M.C. Electrical effects accompanying the decomposition of organic compounds. Proc R Soc Lond B Biol Sci 1911, 84:260-276.
    • (1911) Proc R Soc Lond B Biol Sci , vol.84 , pp. 260-276
    • Potter, M.C.1
  • 8
    • 2342470161 scopus 로고    scopus 로고
    • Extracting hydrogen and electricity from renewable resources
    • Logan B.E. Extracting hydrogen and electricity from renewable resources. Environ Sci Technol 2004, 38:160-167.
    • (2004) Environ Sci Technol , vol.38 , pp. 160-167
    • Logan, B.E.1
  • 9
    • 19444367096 scopus 로고    scopus 로고
    • Microbial fuel cells: novel biotechnology for energy generation
    • Rabaey K., Verstraete W. Microbial fuel cells: novel biotechnology for energy generation. Trends Biotechnol 2005, 23:291-298.
    • (2005) Trends Biotechnol , vol.23 , pp. 291-298
    • Rabaey, K.1    Verstraete, W.2
  • 10
    • 84897521772 scopus 로고    scopus 로고
    • Microbial fuel cells for sustainable bioenergy generation: principles and perspective applications
    • Springer, Berlin Heidelberg, V.K. Gupta, M.G. Tuohy (Eds.)
    • Venkata Mohan S., Srikanth S., Velvizhi G., Babu L.M. Microbial fuel cells for sustainable bioenergy generation: principles and perspective applications. Biofuel Technologies 2013, 335-368. Springer, Berlin Heidelberg. 10.1007/978-3-642-34519-7_14. V.K. Gupta, M.G. Tuohy (Eds.).
    • (2013) Biofuel Technologies , pp. 335-368
    • Venkata Mohan, S.1    Srikanth, S.2    Velvizhi, G.3    Babu, L.M.4
  • 11
    • 84874707527 scopus 로고    scopus 로고
    • The modeling of gold recovery from tetrachloroaurate wastewater using a microbial fuel cell
    • Choi C., Hu N. The modeling of gold recovery from tetrachloroaurate wastewater using a microbial fuel cell. Bioresour Technol 2013, 133:589-598.
    • (2013) Bioresour Technol , vol.133 , pp. 589-598
    • Choi, C.1    Hu, N.2
  • 12
    • 84864831407 scopus 로고    scopus 로고
    • Conversion of wastes into bioelectricity and chemicals by using microbial electrochemical technologies
    • Logan B.E., Rabaey K. Conversion of wastes into bioelectricity and chemicals by using microbial electrochemical technologies. Science 2012, 337:686-690.
    • (2012) Science , vol.337 , pp. 686-690
    • Logan, B.E.1    Rabaey, K.2
  • 13
    • 84859130349 scopus 로고    scopus 로고
    • Bioelectrochemical systems (BES) for sustainable energy production and product recovery from organic wastes and industrial wastewaters
    • Pant D., Singh A., Bogaert G.V., Olsen S.I., Nigam P.S., Diels L., et al. Bioelectrochemical systems (BES) for sustainable energy production and product recovery from organic wastes and industrial wastewaters. RSC Adv 2012, 2:1248-1263.
    • (2012) RSC Adv , vol.2 , pp. 1248-1263
    • Pant, D.1    Singh, A.2    Bogaert, G.V.3    Olsen, S.I.4    Nigam, P.S.5    Diels, L.6
  • 14
    • 84930177424 scopus 로고    scopus 로고
    • Food and agricultural wastes as substrates for bioelectrochemical system (BES): the synchronized recovery of sustainable energy and waste treatment
    • ElMekawy A., Srikanth S., Bajracharya S., Hegab H.M., Nigam P.S., Singh A., et al. Food and agricultural wastes as substrates for bioelectrochemical system (BES): the synchronized recovery of sustainable energy and waste treatment. Food Res Int 2015, 73:213-225.
    • (2015) Food Res Int , vol.73 , pp. 213-225
    • ElMekawy, A.1    Srikanth, S.2    Bajracharya, S.3    Hegab, H.M.4    Nigam, P.S.5    Singh, A.6
  • 15
    • 80053436905 scopus 로고    scopus 로고
    • From wastewater to bioenergy and biochemicals via two-stage bioconversion processes: a future paradigm
    • Li W., Yu H. From wastewater to bioenergy and biochemicals via two-stage bioconversion processes: a future paradigm. Biotechnol Adv 2011, 29:972-982.
    • (2011) Biotechnol Adv , vol.29 , pp. 972-982
    • Li, W.1    Yu, H.2
  • 16
    • 65449157363 scopus 로고    scopus 로고
    • Controlling accumulation of fermentation inhibitors in biorefinery recycle water using microbial fuel cells
    • Borole A.P., Mielenz J.R., Vishnivetskaya T.A., Hamilton C.Y. Controlling accumulation of fermentation inhibitors in biorefinery recycle water using microbial fuel cells. Biotechnol Biofuels 2009, 2:7. 10.1186/1754-6834-2-7.
    • (2009) Biotechnol Biofuels , vol.2 , pp. 7
    • Borole, A.P.1    Mielenz, J.R.2    Vishnivetskaya, T.A.3    Hamilton, C.Y.4
  • 17
    • 84927176865 scopus 로고    scopus 로고
    • Conversion of activated-sludge reactors to microbial fuel cells for wastewater treatment coupled to electricity generation
    • Yoshizawa T., Miyahara M., Kouzuma A., Watanabe K. Conversion of activated-sludge reactors to microbial fuel cells for wastewater treatment coupled to electricity generation. J Biosci Bioeng 2014, 118:533-539.
    • (2014) J Biosci Bioeng , vol.118 , pp. 533-539
    • Yoshizawa, T.1    Miyahara, M.2    Kouzuma, A.3    Watanabe, K.4
  • 18
    • 85126817962 scopus 로고    scopus 로고
    • Development of bioelectrochemical systems to promote sustainable agriculture
    • Li X., Abu-Reesh I.M., He Z. Development of bioelectrochemical systems to promote sustainable agriculture. Agriculture 2015, 5:367-388.
    • (2015) Agriculture , vol.5 , pp. 367-388
    • Li, X.1    Abu-Reesh, I.M.2    He, Z.3
  • 19
    • 84891137409 scopus 로고    scopus 로고
    • Design of microbial fuel cells for practical application: a review & analysis of scale-up studies
    • Janicek A., Fan Y., Liu H. Design of microbial fuel cells for practical application: a review & analysis of scale-up studies. Biofuels 2014, 5:79-92.
    • (2014) Biofuels , vol.5 , pp. 79-92
    • Janicek, A.1    Fan, Y.2    Liu, H.3
  • 20
    • 34447285505 scopus 로고    scopus 로고
    • A state of the art review on microbial fuel cells: a promising technology for wastewater treatment and bioenergy
    • Du Z.W., Li H.R., Gu T.Y. A state of the art review on microbial fuel cells: a promising technology for wastewater treatment and bioenergy. Biotechnol Adv 2007, 25:464-482.
    • (2007) Biotechnol Adv , vol.25 , pp. 464-482
    • Du, Z.W.1    Li, H.R.2    Gu, T.Y.3
  • 21
    • 58949088600 scopus 로고    scopus 로고
    • Microbial fuel cells: recent advances, bacterial communities and application beyond electricity generation
    • Kim I.S., Chae K.J., Choi M.J., Verstraete W. Microbial fuel cells: recent advances, bacterial communities and application beyond electricity generation. Environ Eng Res 2008, 13:51-65.
    • (2008) Environ Eng Res , vol.13 , pp. 51-65
    • Kim, I.S.1    Chae, K.J.2    Choi, M.J.3    Verstraete, W.4
  • 22
  • 23
    • 84942018860 scopus 로고    scopus 로고
    • Novel microbial fuel cell design to operate with different wastewaters simultaneously
    • Mathuriya A.S. Novel microbial fuel cell design to operate with different wastewaters simultaneously. J Environ Sci 2015, 10.1016/j.jes.2015.06.014.
    • (2015) J Environ Sci
    • Mathuriya, A.S.1
  • 24
    • 77957019058 scopus 로고    scopus 로고
    • Sustainable wastewater treatment: how might microbial fuel cells contribute
    • Oh S.T., Kim J.R., Premier G.C., Lee T.H., Kim C., Sloan W.T. Sustainable wastewater treatment: how might microbial fuel cells contribute. Biotechnol Adv 2010, 28:871-881.
    • (2010) Biotechnol Adv , vol.28 , pp. 871-881
    • Oh, S.T.1    Kim, J.R.2    Premier, G.C.3    Lee, T.H.4    Kim, C.5    Sloan, W.T.6
  • 25
    • 84875486681 scopus 로고    scopus 로고
    • Recent advances in microbial fuel cells (MFCs) and microbial electrolysis cells (MECs) for wastewater treatment, bioenergy and bioproducts
    • Zhou M., Wang H., Hassett D.J., Gu T. Recent advances in microbial fuel cells (MFCs) and microbial electrolysis cells (MECs) for wastewater treatment, bioenergy and bioproducts. J Chem Technol Biotechnol 2013, 88:508-518.
    • (2013) J Chem Technol Biotechnol , vol.88 , pp. 508-518
    • Zhou, M.1    Wang, H.2    Hassett, D.J.3    Gu, T.4
  • 26
    • 78651107055 scopus 로고    scopus 로고
    • Microbial fuel cells for energy self-sufficient domestic wastewater treatment-a review and discussion from energetic consideration
    • Lefebvre O., Uzabiaga A., Chang I.S., Kim B.H., Ng H.Y. Microbial fuel cells for energy self-sufficient domestic wastewater treatment-a review and discussion from energetic consideration. Appl Microbiol Biot 2011, 89:259-270.
    • (2011) Appl Microbiol Biot , vol.89 , pp. 259-270
    • Lefebvre, O.1    Uzabiaga, A.2    Chang, I.S.3    Kim, B.H.4    Ng, H.Y.5
  • 28
    • 84926182952 scopus 로고    scopus 로고
    • A novel small scale microbial fuel cell design for increased electricity generation and waste water treatment
    • Papaharalabos G., Greenman J., Melhuish C., Ieropoulos I. A novel small scale microbial fuel cell design for increased electricity generation and waste water treatment. Int J Hydrogen Energy 2015, 40:4263-4268.
    • (2015) Int J Hydrogen Energy , vol.40 , pp. 4263-4268
    • Papaharalabos, G.1    Greenman, J.2    Melhuish, C.3    Ieropoulos, I.4
  • 29
    • 80052699260 scopus 로고    scopus 로고
    • Recent progress in electrodes for microbial fuel cells
    • Wei J., Liang P., Huang X. Recent progress in electrodes for microbial fuel cells. Bioresour Technol 2011, 102:9335-9344.
    • (2011) Bioresour Technol , vol.102 , pp. 9335-9344
    • Wei, J.1    Liang, P.2    Huang, X.3
  • 30
    • 79952280859 scopus 로고    scopus 로고
    • An overview of electrode materials in microbial fuel cells
    • Zhou M., Chi M., Luo J., He H., Jin T. An overview of electrode materials in microbial fuel cells. J Power Sources 2011, 196:4427-4435.
    • (2011) J Power Sources , vol.196 , pp. 4427-4435
    • Zhou, M.1    Chi, M.2    Luo, J.3    He, H.4    Jin, T.5
  • 31
    • 79953649134 scopus 로고    scopus 로고
    • Electrospun and solution blown three-dimensional carbon fiber nonwovens for application as electrodes in microbial fuel cells
    • Chen S., Hou H., Harnisch F., Patil S.A., Carmona-Martinez A.A., Agarwal S., et al. Electrospun and solution blown three-dimensional carbon fiber nonwovens for application as electrodes in microbial fuel cells. Energ Environ Sci 2011, 4:1417-1421.
    • (2011) Energ Environ Sci , vol.4 , pp. 1417-1421
    • Chen, S.1    Hou, H.2    Harnisch, F.3    Patil, S.A.4    Carmona-Martinez, A.A.5    Agarwal, S.6
  • 33
    • 84866657416 scopus 로고    scopus 로고
    • Improved microbial electrocatalysis with osmium polymer modified electrodes
    • Patil S.A., Hasan K., Leech D., Hägerhäll C., Gorton L. Improved microbial electrocatalysis with osmium polymer modified electrodes. Chem Commun 2012, 48:10183-10185.
    • (2012) Chem Commun , vol.48 , pp. 10183-10185
    • Patil, S.A.1    Hasan, K.2    Leech, D.3    Hägerhäll, C.4    Gorton, L.5
  • 34
    • 84873606036 scopus 로고    scopus 로고
    • Electrospun carbon nanofibers from polyacrylonitrile blended with activated or graphitized carbonaceous materials for improving anodic bioelectrocatalysis
    • Patil S.A., Chigome S., Hägerhäll C., Torto N., Gorton L. Electrospun carbon nanofibers from polyacrylonitrile blended with activated or graphitized carbonaceous materials for improving anodic bioelectrocatalysis. Bioresour Technol 2013, 132:121-126.
    • (2013) Bioresour Technol , vol.132 , pp. 121-126
    • Patil, S.A.1    Chigome, S.2    Hägerhäll, C.3    Torto, N.4    Gorton, L.5
  • 35
    • 84921720666 scopus 로고    scopus 로고
    • Long-term performance of chemically and physically modified activated carbons in air cathodes of microbial fuel cells
    • Zhang X., Pant D., Zhang F., Liu J., He W., Logan B.E. Long-term performance of chemically and physically modified activated carbons in air cathodes of microbial fuel cells. ChemElectroChem 2014, 1:1859-1866.
    • (2014) ChemElectroChem , vol.1 , pp. 1859-1866
    • Zhang, X.1    Pant, D.2    Zhang, F.3    Liu, J.4    He, W.5    Logan, B.E.6
  • 37
    • 33751004376 scopus 로고    scopus 로고
    • Electricity producing bacterial communities in microbial fuel cells
    • Logan B.E., Regan J.M. Electricity producing bacterial communities in microbial fuel cells. Trends Microbiol 2006, 14:512-518.
    • (2006) Trends Microbiol , vol.14 , pp. 512-518
    • Logan, B.E.1    Regan, J.M.2
  • 38
    • 84867743199 scopus 로고    scopus 로고
    • Convergent development of anodic bacterial communities in microbial fuel cells
    • Yates M.D., Kiely P.D., Call D.F., Rismani-Yazdi H., Bibby K., Peccia J., et al. Convergent development of anodic bacterial communities in microbial fuel cells. ISME J 2012, 6:2002-2013.
    • (2012) ISME J , vol.6 , pp. 2002-2013
    • Yates, M.D.1    Kiely, P.D.2    Call, D.F.3    Rismani-Yazdi, H.4    Bibby, K.5    Peccia, J.6
  • 39
    • 64749084426 scopus 로고    scopus 로고
    • Exoelectrogenic bacteria that power microbial fuel cells
    • Logan B.E. Exoelectrogenic bacteria that power microbial fuel cells. Nat Rev Microbiol 2009, 7:375-381.
    • (2009) Nat Rev Microbiol , vol.7 , pp. 375-381
    • Logan, B.E.1
  • 40
    • 67650269404 scopus 로고    scopus 로고
    • Electricity generation using chocolate industry wastewater and its treatment in activated sludge based microbial fuel cell and analysis of developed microbial community in the anode chamber
    • Patil S.A., Surakasi V.P., Koul S., Ijmulwar S., Vivek A., Shouche Y.S., et al. Electricity generation using chocolate industry wastewater and its treatment in activated sludge based microbial fuel cell and analysis of developed microbial community in the anode chamber. Bioresour Technol 2009, 100:5132-5139.
    • (2009) Bioresour Technol , vol.100 , pp. 5132-5139
    • Patil, S.A.1    Surakasi, V.P.2    Koul, S.3    Ijmulwar, S.4    Vivek, A.5    Shouche, Y.S.6
  • 41
    • 60349091877 scopus 로고    scopus 로고
    • Bioanode performance in bioelectrochemical systems: recent improvements and prospects
    • Pham T.H., Aelterman P., Verstraete W. Bioanode performance in bioelectrochemical systems: recent improvements and prospects. Trends Biotechnol 2013, 27:168-178.
    • (2013) Trends Biotechnol , vol.27 , pp. 168-178
    • Pham, T.H.1    Aelterman, P.2    Verstraete, W.3
  • 42
    • 77956925968 scopus 로고    scopus 로고
    • Electroactive mixed culture biofilms in microbial bioelectrochemical systems: the role of temperature for biofilm formation and performance
    • Patil S.A., Harnisch F., Kapadnis B., Schröder U. Electroactive mixed culture biofilms in microbial bioelectrochemical systems: the role of temperature for biofilm formation and performance. Biosens Bioelectron 2010, 26:803-808.
    • (2010) Biosens Bioelectron , vol.26 , pp. 803-808
    • Patil, S.A.1    Harnisch, F.2    Kapadnis, B.3    Schröder, U.4
  • 43
    • 77955425014 scopus 로고    scopus 로고
    • The influence of operational conditions on the performance of a microbial fuel cell seeded with mesophilic anaerobic sludge
    • Martin E., Savadogo O., Guiot S.R., Tartakovsky B. The influence of operational conditions on the performance of a microbial fuel cell seeded with mesophilic anaerobic sludge. Biochem Eng J 2010, 51:132-139.
    • (2010) Biochem Eng J , vol.51 , pp. 132-139
    • Martin, E.1    Savadogo, O.2    Guiot, S.R.3    Tartakovsky, B.4
  • 44
    • 80052739603 scopus 로고    scopus 로고
    • Electroactive mixed culture derived biofilms in microbial bioelectrochemical systems: the role of pH on biofilm formation, performance and composition
    • Patil S.A., Harnisch F., Koch C., Hübschmann T., Fetzer I., Carmona-Martínez A.A., et al. Electroactive mixed culture derived biofilms in microbial bioelectrochemical systems: the role of pH on biofilm formation, performance and composition. Bioresour Technol 2011, 102:9683-9690.
    • (2011) Bioresour Technol , vol.102 , pp. 9683-9690
    • Patil, S.A.1    Harnisch, F.2    Koch, C.3    Hübschmann, T.4    Fetzer, I.5    Carmona-Martínez, A.A.6
  • 45
    • 34548017839 scopus 로고    scopus 로고
    • Challenges in microbial fuel cell development and operation
    • Kim B.H., Chang I.S., Gadd G.M. Challenges in microbial fuel cell development and operation. Appl Microbiol Biot 2007, 76:485-494.
    • (2007) Appl Microbiol Biot , vol.76 , pp. 485-494
    • Kim, B.H.1    Chang, I.S.2    Gadd, G.M.3
  • 46
    • 84984911588 scopus 로고    scopus 로고
    • Sediment microbial fuel cells for wastewater treatment: challenges and opportunities
    • Xu B., Ge Z., He Z. Sediment microbial fuel cells for wastewater treatment: challenges and opportunities. Environ Sci: Water Res Technol 2015, 1:279-284.
    • (2015) Environ Sci: Water Res Technol , vol.1 , pp. 279-284
    • Xu, B.1    Ge, Z.2    He, Z.3
  • 47
    • 84979243457 scopus 로고    scopus 로고
    • Investigating microbial activities of electrode-associated microorganisms in real-time
    • Aracic S., Semenec L., Franks A.E. Investigating microbial activities of electrode-associated microorganisms in real-time. Front Microbiol 2014, 5:1-7.
    • (2014) Front Microbiol , vol.5 , pp. 1-7
    • Aracic, S.1    Semenec, L.2    Franks, A.E.3
  • 48
    • 84905659322 scopus 로고    scopus 로고
    • Recovery of freshwater from wastewater: upgrading process configurations to maximize energy recovery and minimize residuals
    • Scherson Y.D., Criddle C.S. Recovery of freshwater from wastewater: upgrading process configurations to maximize energy recovery and minimize residuals. Environ Sci Technol 2014, 10.1021/es501701.
    • (2014) Environ Sci Technol
    • Scherson, Y.D.1    Criddle, C.S.2
  • 49
    • 84908655636 scopus 로고    scopus 로고
    • Methods for understanding microbial community structures and functions in microbial fuel cells: a review
    • Zhi W., Ge Z., He Z., Zhang H. Methods for understanding microbial community structures and functions in microbial fuel cells: a review. Bioresour Technol 2014, 171:461-468.
    • (2014) Bioresour Technol , vol.171 , pp. 461-468
    • Zhi, W.1    Ge, Z.2    He, Z.3    Zhang, H.4
  • 50
    • 84991747205 scopus 로고    scopus 로고
    • Electron transfer mechanisms, characteristics and applications of biological cathode microbial fuel cells - a mini review
    • [In Press].
    • Song HL, Zhu Y, Li J. Electron transfer mechanisms, characteristics and applications of biological cathode microbial fuel cells - a mini review. Arab J Chem 2015. doi:http://dx.doi.org/10.1016/j.arabjc.2015.01.008 [In Press]. doi:10.1016/j.arabjc.2015.01.008.
    • (2015) Arab J Chem
    • Song, H.L.1    Zhu, Y.2    Li, J.3
  • 51
    • 33748564008 scopus 로고    scopus 로고
    • Microbial fuel cells-challenges and applications
    • Logan B.E., Regan J.M. Microbial fuel cells-challenges and applications. Environ Sci Technol 2006, 40:5172-5180.
    • (2006) Environ Sci Technol , vol.40 , pp. 5172-5180
    • Logan, B.E.1    Regan, J.M.2
  • 53
    • 78049372060 scopus 로고    scopus 로고
    • Power management system for a 2.5 W remote sensor powered by a sediment microbial fuel cell
    • Donovan C., Dewan A., Peng H., Heo D., Beyenal H. Power management system for a 2.5 W remote sensor powered by a sediment microbial fuel cell. J Power Sources 2011, 196:1171-1177.
    • (2011) J Power Sources , vol.196 , pp. 1171-1177
    • Donovan, C.1    Dewan, A.2    Peng, H.3    Heo, D.4    Beyenal, H.5
  • 54
    • 84912016337 scopus 로고    scopus 로고
    • Extended petroleum hydrocarbon bioremediation in saline soil using Pt-free multianodes microbial fuel cells
    • Li X., Wang X., Zhang Y., Cheng L., Liu J., Li F., et al. Extended petroleum hydrocarbon bioremediation in saline soil using Pt-free multianodes microbial fuel cells. RSC Adv 2014, 4:59803-59808.
    • (2014) RSC Adv , vol.4 , pp. 59803-59808
    • Li, X.1    Wang, X.2    Zhang, Y.3    Cheng, L.4    Liu, J.5    Li, F.6
  • 55
    • 84893905130 scopus 로고    scopus 로고
    • Microbial-electrochemical bioremediation and detoxification of dibenzothiophene-polluted soil
    • Rodrigo J., Boltes K., Esteve-Nuñez A. Microbial-electrochemical bioremediation and detoxification of dibenzothiophene-polluted soil. Chemosphere 2014, 101:61-65.
    • (2014) Chemosphere , vol.101 , pp. 61-65
    • Rodrigo, J.1    Boltes, K.2    Esteve-Nuñez, A.3
  • 56
    • 84919644406 scopus 로고    scopus 로고
    • Environmental parameters monitoring in precision agriculture using wireless sensor networks
    • Srbinovska M., Gavrovski C., Dimcev V., Krkoleva A., Borozan V. Environmental parameters monitoring in precision agriculture using wireless sensor networks. J Clean Prod 2015, 88:297-307.
    • (2015) J Clean Prod , vol.88 , pp. 297-307
    • Srbinovska, M.1    Gavrovski, C.2    Dimcev, V.3    Krkoleva, A.4    Borozan, V.5
  • 57
    • 84930088795 scopus 로고    scopus 로고
    • A logical data representation framework for electricity-driven bioproduction processes
    • Patil S.A., Gildemyn S., Pant D., Zengler K., Logan B.E., Rabaey K. A logical data representation framework for electricity-driven bioproduction processes. Biotechnol Adv 2015, 33(6):736-744.
    • (2015) Biotechnol Adv , vol.33 , Issue.6 , pp. 736-744
    • Patil, S.A.1    Gildemyn, S.2    Pant, D.3    Zengler, K.4    Logan, B.E.5    Rabaey, K.6
  • 58
    • 84926683751 scopus 로고    scopus 로고
    • Microbial electrochemistry and technology: terminology and classification
    • Schröder U., Harnisch F., Angenent L.T. Microbial electrochemistry and technology: terminology and classification. Energy Environ Sci 2015, 8:513-519.
    • (2015) Energy Environ Sci , vol.8 , pp. 513-519
    • Schröder, U.1    Harnisch, F.2    Angenent, L.T.3
  • 59
    • 33749534171 scopus 로고    scopus 로고
    • Biomass to biofuels: a chemical perspective
    • Petrus L., Noordermeer M.A. Biomass to biofuels: a chemical perspective. Green Chem 2006, 8:861-867.
    • (2006) Green Chem , vol.8 , pp. 861-867
    • Petrus, L.1    Noordermeer, M.A.2
  • 60
    • 36349027640 scopus 로고    scopus 로고
    • Electricity production from twelve monosaccharides using microbial fuel cells
    • Catal T., Li K., Bermek H., Liu H. Electricity production from twelve monosaccharides using microbial fuel cells. J Power Sources 2008, 175:196-200.
    • (2008) J Power Sources , vol.175 , pp. 196-200
    • Catal, T.1    Li, K.2    Bermek, H.3    Liu, H.4
  • 62
    • 67549145647 scopus 로고    scopus 로고
    • Electricity generation from polyalcohols in single-chamber microbial fuel cells
    • Catal T., Xu S., Li K., Bermek H., Liu H. Electricity generation from polyalcohols in single-chamber microbial fuel cells. Biosens Bioelectron 2008, 24:849-854.
    • (2008) Biosens Bioelectron , vol.24 , pp. 849-854
    • Catal, T.1    Xu, S.2    Li, K.3    Bermek, H.4    Liu, H.5
  • 63
    • 84866451194 scopus 로고    scopus 로고
    • Electricity generation using eight amino acids by air-cathode microbial fuel cells
    • Yang Q., Wang X., Feng Y., Lee H., Liu J., Shi X., et al. Electricity generation using eight amino acids by air-cathode microbial fuel cells. Fuel 2012, 102:478-482.
    • (2012) Fuel , vol.102 , pp. 478-482
    • Yang, Q.1    Wang, X.2    Feng, Y.3    Lee, H.4    Liu, J.5    Shi, X.6
  • 64
    • 77955848617 scopus 로고    scopus 로고
    • Long-term cathode performance and the microbial communities that develop in microbial fuel cells fed different fermentation endproducts
    • Kiely P.D., Rader G., Regan J.M., Logan B.E. Long-term cathode performance and the microbial communities that develop in microbial fuel cells fed different fermentation endproducts. Bioresour Technol 2011, 102:361-366.
    • (2011) Bioresour Technol , vol.102 , pp. 361-366
    • Kiely, P.D.1    Rader, G.2    Regan, J.M.3    Logan, B.E.4
  • 65
    • 12344306121 scopus 로고    scopus 로고
    • Production of electricity from acetate or butyrate using a single-chamber microbial fuel cell
    • Liu H., Cheng S., Logan B.E. Production of electricity from acetate or butyrate using a single-chamber microbial fuel cell. Environ Sci Technol 2005, 39:658-662.
    • (2005) Environ Sci Technol , vol.39 , pp. 658-662
    • Liu, H.1    Cheng, S.2    Logan, B.E.3
  • 66
    • 39049085838 scopus 로고    scopus 로고
    • Performance and bacterial consortium of microbial fuel cell fed with formate
    • Ha P.T., Tae B., Chang I.S. Performance and bacterial consortium of microbial fuel cell fed with formate. Energy Fuel 2008, 22:164-168.
    • (2008) Energy Fuel , vol.22 , pp. 164-168
    • Ha, P.T.1    Tae, B.2    Chang, I.S.3
  • 67
    • 79251598946 scopus 로고    scopus 로고
    • Microbial community differences between propionate-fed MFC systems under open and closed circuit conditions
    • Cárcer D.A., Ha P.T., Jang J.K., Chang I.S. Microbial community differences between propionate-fed MFC systems under open and closed circuit conditions. Appl Microbiol Biot 2011, 89:605-612.
    • (2011) Appl Microbiol Biot , vol.89 , pp. 605-612
    • Cárcer, D.A.1    Ha, P.T.2    Jang, J.K.3    Chang, I.S.4
  • 68
    • 84874339032 scopus 로고    scopus 로고
    • Adaptation of soil microbes during establishment of microbial fuel cell consortium fed with lactate
    • Futamata H., Bretschger O., Cheung A., Kan J., Owen R., Nealson K.H. Adaptation of soil microbes during establishment of microbial fuel cell consortium fed with lactate. J Biosci Bioeng 2013, 115:58-63.
    • (2013) J Biosci Bioeng , vol.115 , pp. 58-63
    • Futamata, H.1    Bretschger, O.2    Cheung, A.3    Kan, J.4    Owen, R.5    Nealson, K.H.6
  • 69
    • 33947385817 scopus 로고    scopus 로고
    • Electricity generation and microbial community analysis of alcohols powered microbial fuel cells
    • Kim J.R., Jung S.H., Regan J.M., Logan B.E. Electricity generation and microbial community analysis of alcohols powered microbial fuel cells. Bioresour Technol 2007, 98:2568-2577.
    • (2007) Bioresour Technol , vol.98 , pp. 2568-2577
    • Kim, J.R.1    Jung, S.H.2    Regan, J.M.3    Logan, B.E.4
  • 71
    • 79952561928 scopus 로고    scopus 로고
    • Nitrogenous heterocyclic compounds degradation in the microbial fuel cells
    • Hu W.J., Niu C.G., Wang Y., Zeng G.M., Wu Z. Nitrogenous heterocyclic compounds degradation in the microbial fuel cells. Process Saf Environ 2011, 89:133-140.
    • (2011) Process Saf Environ , vol.89 , pp. 133-140
    • Hu, W.J.1    Niu, C.G.2    Wang, Y.3    Zeng, G.M.4    Wu, Z.5
  • 72
    • 84893851676 scopus 로고    scopus 로고
    • Effect of different acclimation methods on the performance of microbial fuel cells using phenol as substrate
    • Song T.S., Wu X.Y., Zhou C.C. Effect of different acclimation methods on the performance of microbial fuel cells using phenol as substrate. Bioprocess Biosyst Eng 2014, 37:133-138.
    • (2014) Bioprocess Biosyst Eng , vol.37 , pp. 133-138
    • Song, T.S.1    Wu, X.Y.2    Zhou, C.C.3
  • 73
    • 84866462291 scopus 로고    scopus 로고
    • Electricity harvest from wastewaters using microbial fuel cell with sulfide as sole electron donor
    • Lee C.Y., Ho K.L., Lee D.J., Su A., Chang J.S. Electricity harvest from wastewaters using microbial fuel cell with sulfide as sole electron donor. Int J Hydrogen Energy 2012, 37:15787-15791.
    • (2012) Int J Hydrogen Energy , vol.37 , pp. 15787-15791
    • Lee, C.Y.1    Ho, K.L.2    Lee, D.J.3    Su, A.4    Chang, J.S.5
  • 74
    • 84911389733 scopus 로고    scopus 로고
    • Electricity generation from tetrathionate in microbial fuel cells by acidophiles
    • Sulonen M.L.K., Kokko M.E., Lakaniemi A.M., Puhakka J.A. Electricity generation from tetrathionate in microbial fuel cells by acidophiles. J Hazard Mater 2015, 284:182-189.
    • (2015) J Hazard Mater , vol.284 , pp. 182-189
    • Sulonen, M.L.K.1    Kokko, M.E.2    Lakaniemi, A.M.3    Puhakka, J.A.4
  • 75
    • 69349099320 scopus 로고    scopus 로고
    • Power generation from furfural using the microbial fuel cell
    • Luo Y., Liu G., Zhang R., Zhang C. Power generation from furfural using the microbial fuel cell. J Power Sources 2010, 195:190-194.
    • (2010) J Power Sources , vol.195 , pp. 190-194
    • Luo, Y.1    Liu, G.2    Zhang, R.3    Zhang, C.4
  • 76
    • 0034610098 scopus 로고    scopus 로고
    • Effect of initial carbon sources on the performance of microbial fuel cells containing Proteus vulgaris
    • Kim N., Choi Y., Jung S., Kim S. Effect of initial carbon sources on the performance of microbial fuel cells containing Proteus vulgaris. Biotechnol Bioeng 2000, 70:109-114.
    • (2000) Biotechnol Bioeng , vol.70 , pp. 109-114
    • Kim, N.1    Choi, Y.2    Jung, S.3    Kim, S.4
  • 77
    • 0141542682 scopus 로고    scopus 로고
    • Electricity generation by direct oxidation of glucose in mediatorless microbial fuel cells
    • Chaudhuri S.K., Lovley D.R. Electricity generation by direct oxidation of glucose in mediatorless microbial fuel cells. Nat Biotechnol 2003, 21:1229-1232.
    • (2003) Nat Biotechnol , vol.21 , pp. 1229-1232
    • Chaudhuri, S.K.1    Lovley, D.R.2
  • 79
    • 33846464636 scopus 로고    scopus 로고
    • Microbial fuel cells utilizing carbohydrates
    • Scott K., Murano C. Microbial fuel cells utilizing carbohydrates. J Chem Technol Biotechnol 2007, 82:92-100.
    • (2007) J Chem Technol Biotechnol , vol.82 , pp. 92-100
    • Scott, K.1    Murano, C.2
  • 83
    • 33748616912 scopus 로고    scopus 로고
    • Production of electricity from proteins using a microbial fuel cell
    • Heilmann J., Logan B.E. Production of electricity from proteins using a microbial fuel cell. Water Environ Res 2006, 78:531-537.
    • (2006) Water Environ Res , vol.78 , pp. 531-537
    • Heilmann, J.1    Logan, B.E.2
  • 84
    • 79952740416 scopus 로고    scopus 로고
    • Performance of microbial fuel cell with volatile fatty acids from food wastes
    • Choi J., Chang H.N., Han J. Performance of microbial fuel cell with volatile fatty acids from food wastes. Biotechnol Lett 2011, 33:705-714.
    • (2011) Biotechnol Lett , vol.33 , pp. 705-714
    • Choi, J.1    Chang, H.N.2    Han, J.3
  • 85
    • 7444235902 scopus 로고    scopus 로고
    • Continuous electricity generation from domestic wastewater and organic substrates in a flat plate microbial fuel cell
    • Min B., Logan B.E. Continuous electricity generation from domestic wastewater and organic substrates in a flat plate microbial fuel cell. Environ Sci Technol 2004, 38:5809-5814.
    • (2004) Environ Sci Technol , vol.38 , pp. 5809-5814
    • Min, B.1    Logan, B.E.2
  • 86
  • 87
    • 40749115223 scopus 로고    scopus 로고
    • Evaluation of energy-conversion efficiencies in microbial fuel cells (MFCs) utilizing fermentable and non-fermentable substrates
    • Lee H.S., Parameswaran P., Kato-Marcus A., Torres C.I., Rittmann B.E. Evaluation of energy-conversion efficiencies in microbial fuel cells (MFCs) utilizing fermentable and non-fermentable substrates. Water Res 2008, 42:1501-1510.
    • (2008) Water Res , vol.42 , pp. 1501-1510
    • Lee, H.S.1    Parameswaran, P.2    Kato-Marcus, A.3    Torres, C.I.4    Rittmann, B.E.5
  • 88
    • 84969339620 scopus 로고    scopus 로고
    • Employment of microbial fuel cell technology to biodegrade naphthalene and benzidine for bioelectricity generation
    • Al-Shehri A.N.Z. Employment of microbial fuel cell technology to biodegrade naphthalene and benzidine for bioelectricity generation. Int J Curr Microbiol App Sci 2015, 4:134-149.
    • (2015) Int J Curr Microbiol App Sci , vol.4 , pp. 134-149
    • Al-Shehri, A.N.Z.1
  • 89
    • 84922350849 scopus 로고    scopus 로고
    • Enhancement of power generation by toluene biodegradation in a microbial fuel cell in the presence of pyocyanin
    • Wu C.H., Yet-Pole I., Chiu Y.H., Lin C.W. Enhancement of power generation by toluene biodegradation in a microbial fuel cell in the presence of pyocyanin. J Taiwan Inst Chem Eng 2015, 45:2319-2324.
    • (2015) J Taiwan Inst Chem Eng , vol.45 , pp. 2319-2324
    • Wu, C.H.1    Yet-Pole, I.2    Chiu, Y.H.3    Lin, C.W.4
  • 90
    • 84875252903 scopus 로고    scopus 로고
    • Bioelectricity production from acidic food waste leachate using microbial fuel cells: effect of microbial inocula
    • Li X.M., Cheng K.Y., Selvam A., Wong J.W.C. Bioelectricity production from acidic food waste leachate using microbial fuel cells: effect of microbial inocula. Process Biochem 2013, 48:283-288.
    • (2013) Process Biochem , vol.48 , pp. 283-288
    • Li, X.M.1    Cheng, K.Y.2    Selvam, A.3    Wong, J.W.C.4
  • 91
    • 79959534055 scopus 로고    scopus 로고
    • Electricity generation during wastewater treatment: an approach using an AFB-MFC for alcohol distillery wastewater
    • Huang J., Yang P., Guo Y., Zhang K. Electricity generation during wastewater treatment: an approach using an AFB-MFC for alcohol distillery wastewater. Desalination 2011, 276:373-378.
    • (2011) Desalination , vol.276 , pp. 373-378
    • Huang, J.1    Yang, P.2    Guo, Y.3    Zhang, K.4
  • 92
    • 84870176331 scopus 로고    scopus 로고
    • Animal carcass wastewater treatment and bioelectricity generation in up-flow tubular microbial fuel cells: effects of HRT and non-precious metallic catalyst
    • Li X., Zhu N., Wang Y., Li P., Wu P., Wu J. Animal carcass wastewater treatment and bioelectricity generation in up-flow tubular microbial fuel cells: effects of HRT and non-precious metallic catalyst. Bioresour Technol 2013, 128:454-460.
    • (2013) Bioresour Technol , vol.128 , pp. 454-460
    • Li, X.1    Zhu, N.2    Wang, Y.3    Li, P.4    Wu, P.5    Wu, J.6
  • 93
    • 77957359934 scopus 로고    scopus 로고
    • Treatment of biodiesel production wastes with simultaneous electricity generation using a single-chamber microbial fuel cell
    • Feng Y., Yang Q., Wang X., Liu Y., Lee H., Ren N. Treatment of biodiesel production wastes with simultaneous electricity generation using a single-chamber microbial fuel cell. Bioresour Technol 2011, 102:411-415.
    • (2011) Bioresour Technol , vol.102 , pp. 411-415
    • Feng, Y.1    Yang, Q.2    Wang, X.3    Liu, Y.4    Lee, H.5    Ren, N.6
  • 94
    • 77951258716 scopus 로고    scopus 로고
    • Production of electricity from the treatment of continuous brewery wastewater using a microbial fuel cell
    • Wen Q., Wu Y., Zhao L., Sun Q. Production of electricity from the treatment of continuous brewery wastewater using a microbial fuel cell. Fuel 2010, 89:1381-1385.
    • (2010) Fuel , vol.89 , pp. 1381-1385
    • Wen, Q.1    Wu, Y.2    Zhao, L.3    Sun, Q.4
  • 95
    • 84655160836 scopus 로고    scopus 로고
    • Simultaneous degradation of bad wine and electricity generation with the aid of the coexisting biocatalysts Acetobacter aceti and Gluconobacter roseus
    • Rengasamy K., Berchmans S. Simultaneous degradation of bad wine and electricity generation with the aid of the coexisting biocatalysts Acetobacter aceti and Gluconobacter roseus. Bioresour Technol 2012, 104:388-393.
    • (2012) Bioresour Technol , vol.104 , pp. 388-393
    • Rengasamy, K.1    Berchmans, S.2
  • 96
    • 78149410761 scopus 로고    scopus 로고
    • Cattle wastes as substrates for bioelectricity production via microbial fuel cells
    • Zheng X., Nirmalakhandan N. Cattle wastes as substrates for bioelectricity production via microbial fuel cells. Biotechnol Lett 2010, 32:1809-1814.
    • (2010) Biotechnol Lett , vol.32 , pp. 1809-1814
    • Zheng, X.1    Nirmalakhandan, N.2
  • 97
    • 79957448939 scopus 로고    scopus 로고
    • Treatment of cassava mill wastewater and production of electricity through microbial fuel cell technology
    • Kaewkannetra P., Chiwes W., Chiu T. Treatment of cassava mill wastewater and production of electricity through microbial fuel cell technology. Fuel 2011, 90:2746-2750.
    • (2011) Fuel , vol.90 , pp. 2746-2750
    • Kaewkannetra, P.1    Chiwes, W.2    Chiu, T.3
  • 98
    • 77957335505 scopus 로고    scopus 로고
    • Pre-acclimation of a wastewater inoculum to cellulose in an aqueous-cathode MEC improves power generation in air-cathode MFCs
    • Cheng S., Kiely P., Logan B.E. Pre-acclimation of a wastewater inoculum to cellulose in an aqueous-cathode MEC improves power generation in air-cathode MFCs. Bioresour Technol 2011, 102:367-371.
    • (2011) Bioresour Technol , vol.102 , pp. 367-371
    • Cheng, S.1    Kiely, P.2    Logan, B.E.3
  • 99
    • 84873176943 scopus 로고    scopus 로고
    • Operation and characterization of a microbial fuel cell fed with pretreated cheese whey at different organic loads
    • Tremouli A., Antonopoulou G., Bebelis S., Lyberatos G. Operation and characterization of a microbial fuel cell fed with pretreated cheese whey at different organic loads. Bioresour Technol 2013, 131:380-389.
    • (2013) Bioresour Technol , vol.131 , pp. 380-389
    • Tremouli, A.1    Antonopoulou, G.2    Bebelis, S.3    Lyberatos, G.4
  • 100
    • 84864652549 scopus 로고    scopus 로고
    • Coal tar wastewater treatment and electricity production using a membrane-less tubular microbial fuel cell
    • Park H.I., Wu C., Lin L.S. Coal tar wastewater treatment and electricity production using a membrane-less tubular microbial fuel cell. Biotechnol Bioprocess Eng 2012, 17:654-660.
    • (2012) Biotechnol Bioprocess Eng , vol.17 , pp. 654-660
    • Park, H.I.1    Wu, C.2    Lin, L.S.3
  • 101
    • 77950816428 scopus 로고    scopus 로고
    • A microbial fuel cell-electro-oxidation system for coking wastewater treatment and bioelectricity generation
    • Huang L., Yang X., Quan X., Chen J., Yang F. A microbial fuel cell-electro-oxidation system for coking wastewater treatment and bioelectricity generation. J Chem Technol Biotechnol 2010, 85:621-627.
    • (2010) J Chem Technol Biotechnol , vol.85 , pp. 621-627
    • Huang, L.1    Yang, X.2    Quan, X.3    Chen, J.4    Yang, F.5
  • 102
    • 70450129275 scopus 로고    scopus 로고
    • Composite vegetable waste as renewable resource for bioelectricity generation through non-catalyzed open-air cathode microbial fuel cell
    • Venkata Mohan S., Mohanakrishna G., Sarma P.N. Composite vegetable waste as renewable resource for bioelectricity generation through non-catalyzed open-air cathode microbial fuel cell. Bioresour Technol 2010, 101:970-976.
    • (2010) Bioresour Technol , vol.101 , pp. 970-976
    • Venkata Mohan, S.1    Mohanakrishna, G.2    Sarma, P.N.3
  • 103
    • 33746940430 scopus 로고    scopus 로고
    • Electricity production from steam-exploded corn stover biomass
    • Zuo Y., Maness P.C., Logan B.E. Electricity production from steam-exploded corn stover biomass. Energy Fuel 2006, 20:1716-1721.
    • (2006) Energy Fuel , vol.20 , pp. 1716-1721
    • Zuo, Y.1    Maness, P.C.2    Logan, B.E.3
  • 104
    • 84893641160 scopus 로고    scopus 로고
    • Two-stage conversion of crude glycerol to energy using dark fermentation linked with microbial fuel cell or microbial electrolysis cell
    • Chookaew T., Prasertsan P., Ren Z.J. Two-stage conversion of crude glycerol to energy using dark fermentation linked with microbial fuel cell or microbial electrolysis cell. New Biotechnol 2014, 31:179-184.
    • (2014) New Biotechnol , vol.31 , pp. 179-184
    • Chookaew, T.1    Prasertsan, P.2    Ren, Z.J.3
  • 105
    • 84957052086 scopus 로고    scopus 로고
    • Evaluation of dairy industry wastewater treatment and simultaneous bioelectricity generation in a catalyst-less and mediator-less membrane microbial fuel cell
    • Mansoorian H.J., Mahvi A.H., Jafari A.J., Khanjani J. Evaluation of dairy industry wastewater treatment and simultaneous bioelectricity generation in a catalyst-less and mediator-less membrane microbial fuel cell. J Saudi Chem Soc 2014, 10.1016/j.jscs.2014.08.002.
    • (2014) J Saudi Chem Soc
    • Mansoorian, H.J.1    Mahvi, A.H.2    Jafari, A.J.3    Khanjani, J.4
  • 106
    • 84946492414 scopus 로고    scopus 로고
    • Bioelectricity production from microbial fuel cell using mixed bacterial culture isolated from distillery wastewater
    • Samsudeen N., Radhakrishnan T.K., Matheswaran M. Bioelectricity production from microbial fuel cell using mixed bacterial culture isolated from distillery wastewater. Bioresour Technol 2015, 195:242-247.
    • (2015) Bioresour Technol , vol.195 , pp. 242-247
    • Samsudeen, N.1    Radhakrishnan, T.K.2    Matheswaran, M.3
  • 107
    • 84890467526 scopus 로고    scopus 로고
    • A system combining microbial fuel cell with photobioreactor for continuous domestic wastewater treatment and bioelectricity generation
    • Jiang H., Luo S., Shi X., Dai M., Guo R. A system combining microbial fuel cell with photobioreactor for continuous domestic wastewater treatment and bioelectricity generation. J Cent South Univ 2013, 20:488-494.
    • (2013) J Cent South Univ , vol.20 , pp. 488-494
    • Jiang, H.1    Luo, S.2    Shi, X.3    Dai, M.4    Guo, R.5
  • 108
    • 84873557059 scopus 로고    scopus 로고
    • Electricity Generation by Microbial Fuel Cells Fuelled with Enteromorpha Prolifera Hydrolysis
    • Wang M., Yan Z., Huang B., Zhao J., Liu R. Electricity Generation by Microbial Fuel Cells Fuelled with Enteromorpha Prolifera Hydrolysis. Int J Electrochem Sci 2013, 8:2104-2111.
    • (2013) Int J Electrochem Sci , vol.8 , pp. 2104-2111
    • Wang, M.1    Yan, Z.2    Huang, B.3    Zhao, J.4    Liu, R.5
  • 110
    • 73749085901 scopus 로고    scopus 로고
    • Testing various food-industry wastes for electricity production in microbial fuel cell
    • Cercado-Quezada B., Delia M., Bergel A. Testing various food-industry wastes for electricity production in microbial fuel cell. Bioresour Technol 2010, 101:2748-2754.
    • (2010) Bioresour Technol , vol.101 , pp. 2748-2754
    • Cercado-Quezada, B.1    Delia, M.2    Bergel, A.3
  • 111
    • 84871742617 scopus 로고    scopus 로고
    • Conversion of residual organics in corn stover-derived biorefinery stream to bioenergy via a microbial fuel cell
    • Borole A.P., Hamilton C.Y., Schell D.J. Conversion of residual organics in corn stover-derived biorefinery stream to bioenergy via a microbial fuel cell. Environ Sci Technol 2013, 47:642-648.
    • (2013) Environ Sci Technol , vol.47 , pp. 642-648
    • Borole, A.P.1    Hamilton, C.Y.2    Schell, D.J.3
  • 112
    • 84876715261 scopus 로고    scopus 로고
    • Bioelectricity generation using two chamber microbial fuel cell treating wastewater from food processing
    • Mansoorian H.J., Mahvi A.H., Jafari A.J. Bioelectricity generation using two chamber microbial fuel cell treating wastewater from food processing. Enzyme Microbiol Technol 2013, 52:352-357.
    • (2013) Enzyme Microbiol Technol , vol.52 , pp. 352-357
    • Mansoorian, H.J.1    Mahvi, A.H.2    Jafari, A.J.3
  • 113
    • 84882449265 scopus 로고    scopus 로고
    • Power generation and contaminant removal in single chamber microbial fuel cells (SCMFCs) treating human urine
    • Santoro C., Ieropoulos I., Greenman J., Cristiani P., Vadas T., Mackay A., et al. Power generation and contaminant removal in single chamber microbial fuel cells (SCMFCs) treating human urine. Int J Hydrogen Energy 2013, 38:11543-11551.
    • (2013) Int J Hydrogen Energy , vol.38 , pp. 11543-11551
    • Santoro, C.1    Ieropoulos, I.2    Greenman, J.3    Cristiani, P.4    Vadas, T.5    Mackay, A.6
  • 114
    • 79952624791 scopus 로고    scopus 로고
    • Electricity generation directly using human feces wastewater for life support system
    • Fangzhou D., Zhenglong L., Shaoqiang Y., Beizhen X., Hong L. Electricity generation directly using human feces wastewater for life support system. Acta Astronaut 2011, 68:1537-1547.
    • (2011) Acta Astronaut , vol.68 , pp. 1537-1547
    • Fangzhou, D.1    Zhenglong, L.2    Shaoqiang, Y.3    Beizhen, X.4    Hong, L.5
  • 115
    • 68649121076 scopus 로고    scopus 로고
    • A novel UASB-MFC-BAF integrated system for high strength molasses wastewater treatment and bioelectricity generation
    • Zhang B., Zhao H., Zhou S., Shi C., Wang C., Ni J. A novel UASB-MFC-BAF integrated system for high strength molasses wastewater treatment and bioelectricity generation. Bioresour Technol 2009, 100:5687-5693.
    • (2009) Bioresour Technol , vol.100 , pp. 5687-5693
    • Zhang, B.1    Zhao, H.2    Zhou, S.3    Shi, C.4    Wang, C.5    Ni, J.6
  • 116
    • 84876331012 scopus 로고    scopus 로고
    • Mustard tuber wastewater treatment and simultaneous electricity generation using microbial fuel cells
    • Guo F., Fu G., Zhang Z., Zhang C. Mustard tuber wastewater treatment and simultaneous electricity generation using microbial fuel cells. Bioresour Technol 2013, 136:425-430.
    • (2013) Bioresour Technol , vol.136 , pp. 425-430
    • Guo, F.1    Fu, G.2    Zhang, Z.3    Zhang, C.4
  • 117
    • 84930177849 scopus 로고    scopus 로고
    • Bioelectricity generation in microbial fuel cell using natural microflora and isolated pure culture bacteria from anaerobic palm oil mill effluent sludge
    • Nor M.H.M., Mubarak M.F.M., Elmi H.S.A., Ibrahim N., Wahab M.F.A., Ibrahim Z. Bioelectricity generation in microbial fuel cell using natural microflora and isolated pure culture bacteria from anaerobic palm oil mill effluent sludge. Bioresour Technol 2015, 190:458-465.
    • (2015) Bioresour Technol , vol.190 , pp. 458-465
    • Nor, M.H.M.1    Mubarak, M.F.M.2    Elmi, H.S.A.3    Ibrahim, N.4    Wahab, M.F.A.5    Ibrahim, Z.6
  • 118
    • 84945583413 scopus 로고    scopus 로고
    • Influence of packing material characteristics on the performance of microbial fuel cells using petroleum refinery wastewater as fuel
    • Guo X., Zhan Y., Chen C., Cai B., Wang Y., Guo S. Influence of packing material characteristics on the performance of microbial fuel cells using petroleum refinery wastewater as fuel. Renew Energy 2016, 87:437-444.
    • (2016) Renew Energy , vol.87 , pp. 437-444
    • Guo, X.1    Zhan, Y.2    Chen, C.3    Cai, B.4    Wang, Y.5    Guo, S.6
  • 119
    • 84880057471 scopus 로고    scopus 로고
    • Simultaneous carbon and nitrogen removal from piggery wastewater using loop configuration microbial fuel cell
    • Ryu J.H., Lee H.L., Lee Y.P., Kim T.S., Kim M.K., Anh D.T.N., et al. Simultaneous carbon and nitrogen removal from piggery wastewater using loop configuration microbial fuel cell. Process Biochem 2013, 48:1080-1085.
    • (2013) Process Biochem , vol.48 , pp. 1080-1085
    • Ryu, J.H.1    Lee, H.L.2    Lee, Y.P.3    Kim, T.S.4    Kim, M.K.5    Anh, D.T.N.6
  • 120
    • 84872778847 scopus 로고    scopus 로고
    • Bimodal electricity generation and aromatic compounds removal from purified terephthalic acid plant wastewater in a microbial fuel cell
    • Foad Marashi S.K., Kariminia H.R., Savizi I.S.P. Bimodal electricity generation and aromatic compounds removal from purified terephthalic acid plant wastewater in a microbial fuel cell. Biotechnol Lett 2013, 35:197-203.
    • (2013) Biotechnol Lett , vol.35 , pp. 197-203
    • Foad Marashi, S.K.1    Kariminia, H.R.2    Savizi, I.S.P.3
  • 121
    • 84862330857 scopus 로고    scopus 로고
    • Efficient decolorization of real dye wastewater and bioelectricity generation using a novel single chamber biocathode-microbial fuel cell
    • Kalathil S., Lee J., Cho M.H. Efficient decolorization of real dye wastewater and bioelectricity generation using a novel single chamber biocathode-microbial fuel cell. Bioresour Technol 2012, 119:22-27.
    • (2012) Bioresour Technol , vol.119 , pp. 22-27
    • Kalathil, S.1    Lee, J.2    Cho, M.H.3
  • 122
    • 77954315542 scopus 로고    scopus 로고
    • Bio-catalyzed electrochemical treatment of real field dairy wastewater with simultaneous power generation
    • Venkata Mohan S., Mohanakrishna G., Velvizhi G., Lalit Babu V., Sarma P.N. Bio-catalyzed electrochemical treatment of real field dairy wastewater with simultaneous power generation. Biochem Eng J 2010, 51:32-39.
    • (2010) Biochem Eng J , vol.51 , pp. 32-39
    • Venkata Mohan, S.1    Mohanakrishna, G.2    Velvizhi, G.3    Lalit Babu, V.4    Sarma, P.N.5
  • 123
    • 84858291145 scopus 로고    scopus 로고
    • Electrogenic activity and electron losses under increasing organic load of recalcitrant pharmaceutical wastewater
    • Velvizhi G., Venkata Mohan S. Electrogenic activity and electron losses under increasing organic load of recalcitrant pharmaceutical wastewater. Int J Hydrogen Energy 2012, 37:5969-5978.
    • (2012) Int J Hydrogen Energy , vol.37 , pp. 5969-5978
    • Velvizhi, G.1    Venkata Mohan, S.2
  • 124
    • 77955270901 scopus 로고    scopus 로고
    • Rice mill wastewater treatment in microbial fuel cells fabricated using proton exchange membrane and earthen pot at different pH
    • Behera M., Jana P.S., More T.T., Ghangrekar M.M. Rice mill wastewater treatment in microbial fuel cells fabricated using proton exchange membrane and earthen pot at different pH. Bioelectrochemistry 2010, 79:228-233.
    • (2010) Bioelectrochemistry , vol.79 , pp. 228-233
    • Behera, M.1    Jana, P.S.2    More, T.T.3    Ghangrekar, M.M.4
  • 125
    • 84949663451 scopus 로고    scopus 로고
    • Rice straw as a potential biomass for generation of bioelectrical energy using Microbial Fuel Cells (MFCs)
    • Gurung A., Oh S.E. Rice straw as a potential biomass for generation of bioelectrical energy using Microbial Fuel Cells (MFCs). Energy Source Part A 2015, 37:2625-2631.
    • (2015) Energy Source Part A , vol.37 , pp. 2625-2631
    • Gurung, A.1    Oh, S.E.2
  • 126
    • 84908334993 scopus 로고    scopus 로고
    • Electricity generation using white and red wine lees in air cathode microbial fuel cells
    • Sciarria T.P., Merlino G., Scaglia B., D'Epifanio A., Mecheri B., Borin S., et al. Electricity generation using white and red wine lees in air cathode microbial fuel cells. J Power Sources 2015, 274:393-399.
    • (2015) J Power Sources , vol.274 , pp. 393-399
    • Sciarria, T.P.1    Merlino, G.2    Scaglia, B.3    D'Epifanio, A.4    Mecheri, B.5    Borin, S.6
  • 127
    • 84942526212 scopus 로고    scopus 로고
    • Electricity generation from retting wastewater consisting of recalcitrant compounds using continuous upflow microbial fuel cell
    • Jayashree C., Singh S., Arulazhagan P., Yeom I.T., Iqbal M.I.I., Rajesh Banu J. Electricity generation from retting wastewater consisting of recalcitrant compounds using continuous upflow microbial fuel cell. Biotechnol Bioprocess Eng 2015, 20:753-759.
    • (2015) Biotechnol Bioprocess Eng , vol.20 , pp. 753-759
    • Jayashree, C.1    Singh, S.2    Arulazhagan, P.3    Yeom, I.T.4    Iqbal, M.I.I.5    Rajesh Banu, J.6
  • 128
    • 77955350473 scopus 로고    scopus 로고
    • Development of microbial fuel cell with anoxic/oxic design for treatment of saline seafood wastewater and biological electricity generation
    • You S.J., Zhang J.N., Yuan Y.X., Ren N.Q., Wang X.H. Development of microbial fuel cell with anoxic/oxic design for treatment of saline seafood wastewater and biological electricity generation. J Chem Technol Biot 2010, 85:1077-1083.
    • (2010) J Chem Technol Biot , vol.85 , pp. 1077-1083
    • You, S.J.1    Zhang, J.N.2    Yuan, Y.X.3    Ren, N.Q.4    Wang, X.H.5
  • 129
    • 50249109052 scopus 로고    scopus 로고
    • Simultaneous sewage treatment and electricity generation in membrane-less microbial fuel cell
    • Ghangrekar M.M., Shinde V.B. Simultaneous sewage treatment and electricity generation in membrane-less microbial fuel cell. Water Sci Technol 2008, 58:37-43.
    • (2008) Water Sci Technol , vol.58 , pp. 37-43
    • Ghangrekar, M.M.1    Shinde, V.B.2
  • 130
    • 84865172371 scopus 로고    scopus 로고
    • Microbial analysis of anodic biofilm in a microbial fuel cell using slaughterhouse wastewater
    • Katuri K.P., Enright A.M., O'Flaherty V., Leech D. Microbial analysis of anodic biofilm in a microbial fuel cell using slaughterhouse wastewater. Bioelectrochemistry 2011, 87:164-171.
    • (2011) Bioelectrochemistry , vol.87 , pp. 164-171
    • Katuri, K.P.1    Enright, A.M.2    O'Flaherty, V.3    Leech, D.4
  • 131
    • 58349084508 scopus 로고    scopus 로고
    • Electricity generation from starch processing wastewater using microbial fuel cell technology
    • Lu N., Zhou S., Zhuang L., Zhang J., Ni J. Electricity generation from starch processing wastewater using microbial fuel cell technology. Biochem Eng J 2009, 43:246-251.
    • (2009) Biochem Eng J , vol.43 , pp. 246-251
    • Lu, N.1    Zhou, S.2    Zhuang, L.3    Zhang, J.4    Ni, J.5
  • 132
    • 84865557414 scopus 로고    scopus 로고
    • Biological treatment of steroidal drug industrial effluent and electricity generation in the microbial fuel cells
    • Liu R., Gao C., Zhao Y., Wang A., Lu S., Wang M., et al. Biological treatment of steroidal drug industrial effluent and electricity generation in the microbial fuel cells. Bioresour Technol 2012, 123:86-91.
    • (2012) Bioresour Technol , vol.123 , pp. 86-91
    • Liu, R.1    Gao, C.2    Zhao, Y.3    Wang, A.4    Lu, S.5    Wang, M.6
  • 133
    • 42349110122 scopus 로고    scopus 로고
    • Removal of odors from swine wastewater by using microbial fuel cells
    • Kim J.R., Dec J., Bruns M.A., Logan B.E. Removal of odors from swine wastewater by using microbial fuel cells. Appl Environ Microbiol 2008, 74:2540-2543.
    • (2008) Appl Environ Microbiol , vol.74 , pp. 2540-2543
    • Kim, J.R.1    Dec, J.2    Bruns, M.A.3    Logan, B.E.4
  • 134
    • 36849065283 scopus 로고    scopus 로고
    • Electricity generation from synthetic acid-mine drainage (AMD) water using fuel cell technologies
    • Cheng S., Dempsey B.A., Logan B.E. Electricity generation from synthetic acid-mine drainage (AMD) water using fuel cell technologies. Environ Sci Technol 2007, 41:8149-8153.
    • (2007) Environ Sci Technol , vol.41 , pp. 8149-8153
    • Cheng, S.1    Dempsey, B.A.2    Logan, B.E.3
  • 135
    • 79953330527 scopus 로고    scopus 로고
    • Electricity generation from synthetic penicillin wastewater in an air-cathode single chamber microbial fuel cell
    • Wen Q., Kong F., Zheng H., Cao D., Ren Y., Yin J. Electricity generation from synthetic penicillin wastewater in an air-cathode single chamber microbial fuel cell. Chem Eng J 2011, 168:572-576.
    • (2011) Chem Eng J , vol.168 , pp. 572-576
    • Wen, Q.1    Kong, F.2    Zheng, H.3    Cao, D.4    Ren, Y.5    Yin, J.6
  • 136
    • 84865726628 scopus 로고    scopus 로고
    • Electricity generation from wastewaters with starch as carbon source using a mediatorless microbial fuel cell
    • Herrero-Hernandez E., Smith T.J., Akid R. Electricity generation from wastewaters with starch as carbon source using a mediatorless microbial fuel cell. Biosens Bioelectron 2013, 39:194-198.
    • (2013) Biosens Bioelectron , vol.39 , pp. 194-198
    • Herrero-Hernandez, E.1    Smith, T.J.2    Akid, R.3
  • 137
    • 84926432451 scopus 로고    scopus 로고
    • Simultaneous degradation of toxic refractory organic pesticide and bioelectricity generation using a soil microbial fuel cell
    • Cao X., Song H., Yu C., Li X. Simultaneous degradation of toxic refractory organic pesticide and bioelectricity generation using a soil microbial fuel cell. Bioresour Technol 2015, 189:87-93.
    • (2015) Bioresour Technol , vol.189 , pp. 87-93
    • Cao, X.1    Song, H.2    Yu, C.3    Li, X.4
  • 138
    • 81555228591 scopus 로고    scopus 로고
    • Electricity generation by microbial fuel cells fuelled with wheat straw hydrolysate
    • Thygesen A., Poulsen F.W., Angelidaki I., Min B., Bjerre A.B. Electricity generation by microbial fuel cells fuelled with wheat straw hydrolysate. Biomass Bioenerg 2011, 35:4732-4739.
    • (2011) Biomass Bioenerg , vol.35 , pp. 4732-4739
    • Thygesen, A.1    Poulsen, F.W.2    Angelidaki, I.3    Min, B.4    Bjerre, A.B.5
  • 139
    • 77955919482 scopus 로고    scopus 로고
    • A monetary comparison of energy recovered from microbial fuel cells and microbial electrolysis cells fed winery or domestic wastewater
    • Cusick R.D., Kiely P.D., Logan B.E. A monetary comparison of energy recovered from microbial fuel cells and microbial electrolysis cells fed winery or domestic wastewater. Int J Hydrogen Energ 2010, 35:8855-8861.
    • (2010) Int J Hydrogen Energ , vol.35 , pp. 8855-8861
    • Cusick, R.D.1    Kiely, P.D.2    Logan, B.E.3
  • 140
    • 77957308668 scopus 로고    scopus 로고
    • Food waste within food supply chains: quantification and potential for change to 2050
    • Parfitt J., Barthel M., Macnaughton S. Food waste within food supply chains: quantification and potential for change to 2050. Philos Trans R Soc B 2010, 365:3065-3081.
    • (2010) Philos Trans R Soc B , vol.365 , pp. 3065-3081
    • Parfitt, J.1    Barthel, M.2    Macnaughton, S.3
  • 142
    • 77953611833 scopus 로고    scopus 로고
    • Methane production from food waste leachate in laboratory-scale simulated landfill
    • Behera S.K., Park J.M., Kim K.H., Park H.S. Methane production from food waste leachate in laboratory-scale simulated landfill. Waste Manage 2010, 30:1502-1508.
    • (2010) Waste Manage , vol.30 , pp. 1502-1508
    • Behera, S.K.1    Park, J.M.2    Kim, K.H.3    Park, H.S.4
  • 143
    • 79957834448 scopus 로고    scopus 로고
    • Solid phase MFC (SMFC) for harnessing bioelectricity from composite food waste fermentation: influence of electrode assembly and buffering capacity
    • Venkata Mohan S., Chandrasekhar K. Solid phase MFC (SMFC) for harnessing bioelectricity from composite food waste fermentation: influence of electrode assembly and buffering capacity. Bioresour Technol 2011, 102:7077-7085.
    • (2011) Bioresour Technol , vol.102 , pp. 7077-7085
    • Venkata Mohan, S.1    Chandrasekhar, K.2
  • 144
    • 79955477732 scopus 로고    scopus 로고
    • Canteen based composite food waste as potential anodic fuel for bioelectricity generation in single chambered microbial fuel cell (MFC): bio-electrochemical evaluation under increasing substrate loading condition
    • Goud R.K., Pasupuleti S.B., Venkata Mohan S. Canteen based composite food waste as potential anodic fuel for bioelectricity generation in single chambered microbial fuel cell (MFC): bio-electrochemical evaluation under increasing substrate loading condition. Int J Hydrogen Energy 2011, 36:6210-6218.
    • (2011) Int J Hydrogen Energy , vol.36 , pp. 6210-6218
    • Goud, R.K.1    Pasupuleti, S.B.2    Venkata Mohan, S.3
  • 145
    • 79958713347 scopus 로고    scopus 로고
    • Catholyte performance as an influencing factor on electricity production in a dual-chambered microbial fuel cell employing food processing wastewater
    • Sangeetha T., Muthukumar M. Catholyte performance as an influencing factor on electricity production in a dual-chambered microbial fuel cell employing food processing wastewater. Energy Source Part A 2011, 33:1514-1522.
    • (2011) Energy Source Part A , vol.33 , pp. 1514-1522
    • Sangeetha, T.1    Muthukumar, M.2
  • 146
    • 84945953772 scopus 로고    scopus 로고
    • Sustainable electricity generation by biodegradation of low-cost lemon peel biomass in a dual chamber microbial fuel cell
    • Miran W., Nawaz M., Jang J., Lee D.S. Sustainable electricity generation by biodegradation of low-cost lemon peel biomass in a dual chamber microbial fuel cell. Int Biodeter Biodegr 2016, 106:75-79.
    • (2016) Int Biodeter Biodegr , vol.106 , pp. 75-79
    • Miran, W.1    Nawaz, M.2    Jang, J.3    Lee, D.S.4
  • 147
    • 0036211310 scopus 로고    scopus 로고
    • A comprehensive pilot plant system for fungal biomass protein production and wastewater reclamation
    • Jin B., Yan X.Q., Yu Q., Van-Leeuwen J.H. A comprehensive pilot plant system for fungal biomass protein production and wastewater reclamation. Adv Environ Res 2002, 6:179-189.
    • (2002) Adv Environ Res , vol.6 , pp. 179-189
    • Jin, B.1    Yan, X.Q.2    Yu, Q.3    Van-Leeuwen, J.H.4
  • 148
    • 0024508443 scopus 로고
    • SCP production and removal of organic load from cassava starch industry by yeasts
    • Jamuna R., Ramakrishna S.V. SCP production and removal of organic load from cassava starch industry by yeasts. J Ferment Bioeng 1989, 67:126-131.
    • (1989) J Ferment Bioeng , vol.67 , pp. 126-131
    • Jamuna, R.1    Ramakrishna, S.V.2
  • 149
    • 0033035119 scopus 로고    scopus 로고
    • Production of fungal protein and glucoamylase by Rhizopus oligosporus from starch processing wastewater
    • Jin B., Van-Leeuwen H.J., Patel B., Doelle H.W., Yu Q. Production of fungal protein and glucoamylase by Rhizopus oligosporus from starch processing wastewater. Process Biochem 1999, 34:59-65.
    • (1999) Process Biochem , vol.34 , pp. 59-65
    • Jin, B.1    Van-Leeuwen, H.J.2    Patel, B.3    Doelle, H.W.4    Yu, Q.5
  • 150
    • 58349091101 scopus 로고    scopus 로고
    • Factors affecting the production of Bacillus thuringiensis biopesticide using corn steep water as raw material
    • Lu N., Zhou S.G., Chang M., Ni J.R. Factors affecting the production of Bacillus thuringiensis biopesticide using corn steep water as raw material. Chin J Environ Eng 2007, 1:126-130.
    • (2007) Chin J Environ Eng , vol.1 , pp. 126-130
    • Lu, N.1    Zhou, S.G.2    Chang, M.3    Ni, J.R.4
  • 152
    • 27744556556 scopus 로고    scopus 로고
    • Hydrogen and electricity production from food processing wastewater using fermentation and microbial fuel cell technologies
    • Oh S.E., Logan B.E. Hydrogen and electricity production from food processing wastewater using fermentation and microbial fuel cell technologies. Water Res 2005, 39:4673-4682.
    • (2005) Water Res , vol.39 , pp. 4673-4682
    • Oh, S.E.1    Logan, B.E.2
  • 154
    • 0036755253 scopus 로고    scopus 로고
    • Characterization of humic substances present in landfill leachates with different landfill ages and its implications
    • Kang K., Shin H., Park H. Characterization of humic substances present in landfill leachates with different landfill ages and its implications. Water Res 2002, 36:4023-4032.
    • (2002) Water Res , vol.36 , pp. 4023-4032
    • Kang, K.1    Shin, H.2    Park, H.3
  • 155
    • 84867653713 scopus 로고    scopus 로고
    • Electricity generation from acidogenic food waste leachate using dual chamber mediator less microbial fuel cell
    • Rikame S.S., Mungray A.A., Mungray A.K. Electricity generation from acidogenic food waste leachate using dual chamber mediator less microbial fuel cell. Int Biodeter Biodegr 2012, 75:131-137.
    • (2012) Int Biodeter Biodegr , vol.75 , pp. 131-137
    • Rikame, S.S.1    Mungray, A.A.2    Mungray, A.K.3
  • 156
    • 33947096572 scopus 로고    scopus 로고
    • Aerobic granulation with brewery wastewater in a sequencing batch reactor
    • Wang S.G., Liu X.W., Gong W.X., Gao B.Y., Zhang D.H., Yu H.Q. Aerobic granulation with brewery wastewater in a sequencing batch reactor. Bioresour Technol 2007, 98:2142-2147.
    • (2007) Bioresour Technol , vol.98 , pp. 2142-2147
    • Wang, S.G.1    Liu, X.W.2    Gong, W.X.3    Gao, B.Y.4    Zhang, D.H.5    Yu, H.Q.6
  • 157
    • 0034333699 scopus 로고    scopus 로고
    • Inert COD production in a membrane anaerobic reactor treating brewery wastewater
    • Ince B.K., Ince O., Sallis P.J., Anderson G.K. Inert COD production in a membrane anaerobic reactor treating brewery wastewater. Water Res 2000, 34:3943-3948.
    • (2000) Water Res , vol.34 , pp. 3943-3948
    • Ince, B.K.1    Ince, O.2    Sallis, P.J.3    Anderson, G.K.4
  • 158
    • 7444235946 scopus 로고    scopus 로고
    • A study of industrial anaerobic treatment of opaque beer brewery wastewater in a tropical climate using a full-scale UASB reactor seeded with activated sludge
    • Parawira W., Kudita I., Nyandoroh M.G., Zvauya R. A study of industrial anaerobic treatment of opaque beer brewery wastewater in a tropical climate using a full-scale UASB reactor seeded with activated sludge. Process Biochem 2005, 40:593-599.
    • (2005) Process Biochem , vol.40 , pp. 593-599
    • Parawira, W.1    Kudita, I.2    Nyandoroh, M.G.3    Zvauya, R.4
  • 159
    • 33947289482 scopus 로고    scopus 로고
    • Biological approaches for treatment of distillery wastewater: a review
    • Pant D., Adholeya A. Biological approaches for treatment of distillery wastewater: a review. Bioresour Technol 2007, 98:2321-2334.
    • (2007) Bioresour Technol , vol.98 , pp. 2321-2334
    • Pant, D.1    Adholeya, A.2
  • 160
    • 41049085567 scopus 로고    scopus 로고
    • Brewery wastewater treatment using air-cathode microbial fuel cells
    • Feng Y., Wang X., Logan B.E., Lee H. Brewery wastewater treatment using air-cathode microbial fuel cells. Appl Microbiol Biot 2008, 78:873-880.
    • (2008) Appl Microbiol Biot , vol.78 , pp. 873-880
    • Feng, Y.1    Wang, X.2    Logan, B.E.3    Lee, H.4
  • 161
    • 43949119108 scopus 로고    scopus 로고
    • Electricity production from beer brewery wastewater using single chamber microbial fuel cell
    • Wang X., Feng Y.J., Lee H. Electricity production from beer brewery wastewater using single chamber microbial fuel cell. Water Sci Technol 2008, 57:1117-1121.
    • (2008) Water Sci Technol , vol.57 , pp. 1117-1121
    • Wang, X.1    Feng, Y.J.2    Lee, H.3
  • 163
    • 0034026174 scopus 로고    scopus 로고
    • Energy recovery from dairy wastewater: impacts of biofilm support systems on anaerobic CST reactors
    • Ramasamy E.V., Abbasi S.A. Energy recovery from dairy wastewater: impacts of biofilm support systems on anaerobic CST reactors. Appl Energy 2000, 65:91-98.
    • (2000) Appl Energy , vol.65 , pp. 91-98
    • Ramasamy, E.V.1    Abbasi, S.A.2
  • 164
    • 84864380548 scopus 로고    scopus 로고
    • Single chamber microbial fuel cell with spiral anode for dairy wastewater treatment
    • Mardanpour M.M., Esfahany M.N., Behzad T., Sedaqatvand R. Single chamber microbial fuel cell with spiral anode for dairy wastewater treatment. Biosens Bioelectron 2012, 38:264-269.
    • (2012) Biosens Bioelectron , vol.38 , pp. 264-269
    • Mardanpour, M.M.1    Esfahany, M.N.2    Behzad, T.3    Sedaqatvand, R.4
  • 165
    • 77953712851 scopus 로고    scopus 로고
    • Electricity generation from synthetic substrates and cheese whey using a two chamber microbial fuel cell
    • Antonopoulou G., Stamatelatou K., Bebelis S., Lyberatos G. Electricity generation from synthetic substrates and cheese whey using a two chamber microbial fuel cell. Biochem Eng J 2010, 50:10-15.
    • (2010) Biochem Eng J , vol.50 , pp. 10-15
    • Antonopoulou, G.1    Stamatelatou, K.2    Bebelis, S.3    Lyberatos, G.4
  • 166
    • 84873191680 scopus 로고    scopus 로고
    • Microbial fuel cell for production of bioelectricity from whey and biological wastewater
    • Dalvi A.D., Mohandas N., Shinde O.A., Kininge P.T. Microbial fuel cell for production of bioelectricity from whey and biological wastewater. Int J Adv Biotechnol Res 2011, 2:263-268.
    • (2011) Int J Adv Biotechnol Res , vol.2 , pp. 263-268
    • Dalvi, A.D.1    Mohandas, N.2    Shinde, O.A.3    Kininge, P.T.4
  • 167
    • 78649385508 scopus 로고    scopus 로고
    • The prospect of whey in driving microbial fuel cells: a dual prospect of energy recovery and remediation
    • Kassongo J., Togo C.A. The prospect of whey in driving microbial fuel cells: a dual prospect of energy recovery and remediation. Afr J Biotechnol 2010, 9:7885-7890.
    • (2010) Afr J Biotechnol , vol.9 , pp. 7885-7890
    • Kassongo, J.1    Togo, C.A.2
  • 168
    • 80052682213 scopus 로고    scopus 로고
    • Whey as a substrate for generation of bioelectricity in microbial fuel cell using E. coli
    • Nasirahmadi S., Safekordi A.A. Whey as a substrate for generation of bioelectricity in microbial fuel cell using E. coli. Int J Environ Sci Technol 2011, 8:823-830.
    • (2011) Int J Environ Sci Technol , vol.8 , pp. 823-830
    • Nasirahmadi, S.1    Safekordi, A.A.2
  • 169
    • 33947591483 scopus 로고    scopus 로고
    • Optimization of biogas production by co-digesting whey with diluted poultry manure
    • Gelegenis J., Georgakakis D., Angelidaki I., Mavris V. Optimization of biogas production by co-digesting whey with diluted poultry manure. Renew Energy 2007, 32:2147-2160.
    • (2007) Renew Energy , vol.32 , pp. 2147-2160
    • Gelegenis, J.1    Georgakakis, D.2    Angelidaki, I.3    Mavris, V.4
  • 170
    • 79961134691 scopus 로고    scopus 로고
    • Performance improvement of whey-driven microbial fuel cells by acclimation of indigenous anodophilic microbes
    • Kassongo J., Togo C.A. Performance improvement of whey-driven microbial fuel cells by acclimation of indigenous anodophilic microbes. Afr J Biotechnol 2011, 10:7846-7852.
    • (2011) Afr J Biotechnol , vol.10 , pp. 7846-7852
    • Kassongo, J.1    Togo, C.A.2
  • 172
    • 77950459244 scopus 로고    scopus 로고
    • Converting waste to energy and profit, tapioca starch power in Thailand
    • Plevin R, Donnelly D. Converting waste to energy and profit, tapioca starch power in Thailand 2004.
    • (2004)
    • Plevin, R.1    Donnelly, D.2
  • 173
    • 34247231545 scopus 로고    scopus 로고
    • Repeated batch fermentative for biohydrogen production from cassava starch manufacturing wastewater
    • Sangyoka S., Reungsang A., Samart M. Repeated batch fermentative for biohydrogen production from cassava starch manufacturing wastewater. Pak J Biol Sci 2007, 10:1782-1789.
    • (2007) Pak J Biol Sci , vol.10 , pp. 1782-1789
    • Sangyoka, S.1    Reungsang, A.2    Samart, M.3
  • 174
    • 70350538900 scopus 로고    scopus 로고
    • Cyanide removal from cassava mill wastewater using Azotobactor vinelandii TISTR 1094 with mixed microorganisms in activated sludge treatment system
    • Kaewkannetra P., Imai T., Garcia-Garcia F.J., Chiu T.Y. Cyanide removal from cassava mill wastewater using Azotobactor vinelandii TISTR 1094 with mixed microorganisms in activated sludge treatment system. J Hazard Mater 2009, 172:224-228.
    • (2009) J Hazard Mater , vol.172 , pp. 224-228
    • Kaewkannetra, P.1    Imai, T.2    Garcia-Garcia, F.J.3    Chiu, T.Y.4
  • 175
    • 0028165657 scopus 로고
    • Fate and effects of cyanide during wastewater treatment processes
    • Wild S.R., Rudd T., Neller A. Fate and effects of cyanide during wastewater treatment processes. Sci Total Environ 1994, 156:93-107.
    • (1994) Sci Total Environ , vol.156 , pp. 93-107
    • Wild, S.R.1    Rudd, T.2    Neller, A.3
  • 176
    • 84969334737 scopus 로고    scopus 로고
    • Soil contamination from cassava wastewater discharges in a rural community in the Niger delta, Nigeria
    • Izonfuo W.-A.L., Bariweni P.A., George D.M.C. Soil contamination from cassava wastewater discharges in a rural community in the Niger delta, Nigeria. J Appl Sci Environ Manage 2013, 17:105-110.
    • (2013) J Appl Sci Environ Manage , vol.17 , pp. 105-110
    • Izonfuo, W.-A.L.1    Bariweni, P.A.2    George, D.M.C.3
  • 177
    • 77953126617 scopus 로고    scopus 로고
    • Ammonia inhibition of electricity generation in single-chambered microbial fuel cells
    • Nam J.Y., Kim H.W., Shin H.S. Ammonia inhibition of electricity generation in single-chambered microbial fuel cells. J Power Sources 2010, 195:6428-6433.
    • (2010) J Power Sources , vol.195 , pp. 6428-6433
    • Nam, J.Y.1    Kim, H.W.2    Shin, H.S.3
  • 178
    • 84876282290 scopus 로고    scopus 로고
    • Influence of electrode material and electrode distance on bioelectricity production from sago-processing wastewater using microbial fuel cell
    • Sangeetha T., Muthukumar M. Influence of electrode material and electrode distance on bioelectricity production from sago-processing wastewater using microbial fuel cell. Environ Prog Sustain Energy 2013, 32:390-395.
    • (2013) Environ Prog Sustain Energy , vol.32 , pp. 390-395
    • Sangeetha, T.1    Muthukumar, M.2
  • 179
    • 62349118099 scopus 로고    scopus 로고
    • Palm oil boom in Indonesia: from plantation to downstream products and biodiesel
    • Santosa S.J. Palm oil boom in Indonesia: from plantation to downstream products and biodiesel. Clean 2008, 36:453-465.
    • (2008) Clean , vol.36 , pp. 453-465
    • Santosa, S.J.1
  • 180
    • 0042342441 scopus 로고    scopus 로고
    • Water recycling from palm oil mill effluent (POME) using membrane technology
    • Ahmad A.D., Ismail S., Bhatia S. Water recycling from palm oil mill effluent (POME) using membrane technology. Desalination 2003, 157:87-95.
    • (2003) Desalination , vol.157 , pp. 87-95
    • Ahmad, A.D.1    Ismail, S.2    Bhatia, S.3
  • 181
    • 0343396426 scopus 로고    scopus 로고
    • Anaerobic treatment of palm oil mill effluent in a two-stage up-flow anaerobic sludge blanket (UASB) system
    • Borja R., Bank C.J., Sanchez E. Anaerobic treatment of palm oil mill effluent in a two-stage up-flow anaerobic sludge blanket (UASB) system. J Biotechnol 1996, 45:125-135.
    • (1996) J Biotechnol , vol.45 , pp. 125-135
    • Borja, R.1    Bank, C.J.2    Sanchez, E.3
  • 182
    • 0023693015 scopus 로고
    • Palm oil mill effluent treatment-liquid-solid separation with dissolved air flotation
    • Ng W.J., Goh A.C.C., Tay J.H. Palm oil mill effluent treatment-liquid-solid separation with dissolved air flotation. Biol Waste 1988, 25:257-268.
    • (1988) Biol Waste , vol.25 , pp. 257-268
    • Ng, W.J.1    Goh, A.C.C.2    Tay, J.H.3
  • 183
    • 0022619983 scopus 로고
    • Palm oil processing-new development in effluent treatment
    • Ma A.N., Ong A.S.H. Palm oil processing-new development in effluent treatment. Water Sci Technol 1986, 18:35-40.
    • (1986) Water Sci Technol , vol.18 , pp. 35-40
    • Ma, A.N.1    Ong, A.S.H.2
  • 184
    • 0023594338 scopus 로고
    • The use of coagulating and polymeric flocculating agents in the treatment of palm oil mill effluent (POME)
    • Karim M.I.A., Hie L.L. The use of coagulating and polymeric flocculating agents in the treatment of palm oil mill effluent (POME). Biol Waste 1987, 22:209-218.
    • (1987) Biol Waste , vol.22 , pp. 209-218
    • Karim, M.I.A.1    Hie, L.L.2
  • 185
    • 0024533215 scopus 로고
    • Biological treatment of palm oil mill effluent using Trichodermu uiridr
    • Abdul K., Mohamed I., Kamil A.Q.A. Biological treatment of palm oil mill effluent using Trichodermu uiridr. Biol Waste 1989, 27:143-152.
    • (1989) Biol Waste , vol.27 , pp. 143-152
    • Abdul, K.1    Mohamed, I.2    Kamil, A.Q.A.3
  • 186
    • 0022713002 scopus 로고
    • A comparison of treatment methods for palm oil mill effluent (POME) wastes
    • Edewor J.O. A comparison of treatment methods for palm oil mill effluent (POME) wastes. J Chem Technol Biot 1986, 36:212-218.
    • (1986) J Chem Technol Biot , vol.36 , pp. 212-218
    • Edewor, J.O.1
  • 189
    • 84882702796 scopus 로고    scopus 로고
    • Valorization of cereal based biorefinery by-products: reality and expectations
    • ElMekawy A., Diels L., Wever H.D., Pant D. Valorization of cereal based biorefinery by-products: reality and expectations. Environ Sci Technol 2013, 47:9014-9027.
    • (2013) Environ Sci Technol , vol.47 , pp. 9014-9027
    • ElMekawy, A.1    Diels, L.2    Wever, H.D.3    Pant, D.4
  • 190
    • 84875688109 scopus 로고    scopus 로고
    • Bioelectricity generation from palm oil mill effluent in microbial fuel cell using polacrylonitrile carbon felt as electrode
    • Baranitharan E., Khan M.R., Prasad D.M.R., Salihon J.B. Bioelectricity generation from palm oil mill effluent in microbial fuel cell using polacrylonitrile carbon felt as electrode. Water Air Soil Poll 2013, 1524:33.
    • (2013) Water Air Soil Poll , vol.1524 , pp. 33
    • Baranitharan, E.1    Khan, M.R.2    Prasad, D.M.R.3    Salihon, J.B.4
  • 191
    • 73749088450 scopus 로고    scopus 로고
    • Palm oil mill effluent treatment using a two-stage microbial fuel cells system integrated with immobilized biological aerated filters
    • Cheng J., Zhu X., Ni J., Borthwick A. Palm oil mill effluent treatment using a two-stage microbial fuel cells system integrated with immobilized biological aerated filters. Bioresour Technol 2010, 101:2729-2734.
    • (2010) Bioresour Technol , vol.101 , pp. 2729-2734
    • Cheng, J.1    Zhu, X.2    Ni, J.3    Borthwick, A.4
  • 192
    • 84919949186 scopus 로고    scopus 로고
    • Enhanced power generation using controlled inoculum from palm oil mill effluent fed microbial fuel cell
    • Baranitharan E., Khan M.R., Yousuf A., Teo W.F.A., Tan G.Y.A., Cheng C.K. Enhanced power generation using controlled inoculum from palm oil mill effluent fed microbial fuel cell. Fuel 2015, 143:72-79.
    • (2015) Fuel , vol.143 , pp. 72-79
    • Baranitharan, E.1    Khan, M.R.2    Yousuf, A.3    Teo, W.F.A.4    Tan, G.Y.A.5    Cheng, C.K.6
  • 193
    • 84871759196 scopus 로고    scopus 로고
    • Influence of biofilm density on anaerobic sequencing batch biofilm reactor treating mustard tuber wastewater
    • Chai H., Kang W. Influence of biofilm density on anaerobic sequencing batch biofilm reactor treating mustard tuber wastewater. Appl Biochem Biotechnol 2012, 168:1664-1671.
    • (2012) Appl Biochem Biotechnol , vol.168 , pp. 1664-1671
    • Chai, H.1    Kang, W.2
  • 194
    • 84929654325 scopus 로고    scopus 로고
    • Electrochemical oxidation of mustard tuber wastewater on boron-doped diamond anode
    • Sheng G., Xiang P., Jiang S., Ma D. Electrochemical oxidation of mustard tuber wastewater on boron-doped diamond anode. Desalin Water Treat 2015, 54:3184-3191.
    • (2015) Desalin Water Treat , vol.54 , pp. 3184-3191
    • Sheng, G.1    Xiang, P.2    Jiang, S.3    Ma, D.4
  • 195
    • 84921419449 scopus 로고    scopus 로고
    • Performance of mixed-species biocathode microbial fuel cells using saline mustard tuber wastewater as self-buffered catholyte
    • Guo F., Fu G., Zhang Z. Performance of mixed-species biocathode microbial fuel cells using saline mustard tuber wastewater as self-buffered catholyte. Bioresour Technol 2015, 180:137-143.
    • (2015) Bioresour Technol , vol.180 , pp. 137-143
    • Guo, F.1    Fu, G.2    Zhang, Z.3
  • 196
    • 2542584724 scopus 로고    scopus 로고
    • Efficacy of alkaline hydrolysis as an alternative method for treatment and disposal of infectious animal waste
    • Kaye G.I., Weber P.B., Evans A., Venezia R.A. Efficacy of alkaline hydrolysis as an alternative method for treatment and disposal of infectious animal waste. Contemp Top Lab Anim Sci 1998, 37:43-46.
    • (1998) Contemp Top Lab Anim Sci , vol.37 , pp. 43-46
    • Kaye, G.I.1    Weber, P.B.2    Evans, A.3    Venezia, R.A.4
  • 197
    • 48049123705 scopus 로고    scopus 로고
    • Co-composting of alkaline tissue digester effluent with yard trimmings
    • Das K.C. Co-composting of alkaline tissue digester effluent with yard trimmings. Waste Manage 2008, 28:1785-1790.
    • (2008) Waste Manage , vol.28 , pp. 1785-1790
    • Das, K.C.1
  • 198
  • 199
    • 2442612560 scopus 로고    scopus 로고
    • Enhanced nitrogen removal using C/N load adjustment and real-time control strategy in sequencing batch reactors for swine wastewater treatment
    • Chen M., Kim J.H., Kishida N., Nishimura O., Sudo R. Enhanced nitrogen removal using C/N load adjustment and real-time control strategy in sequencing batch reactors for swine wastewater treatment. Water Sci Technol 2004, 49:309-314.
    • (2004) Water Sci Technol , vol.49 , pp. 309-314
    • Chen, M.1    Kim, J.H.2    Kishida, N.3    Nishimura, O.4    Sudo, R.5
  • 200
    • 25144458884 scopus 로고    scopus 로고
    • Dissimilatory iron reduction and odor indicator abatement by biofilm communities in swine manure microcosms
    • Castillo-Gonzalez H.A., Bruns M.A. Dissimilatory iron reduction and odor indicator abatement by biofilm communities in swine manure microcosms. Appl Environ Microbiol 2005, 71:4972-4978.
    • (2005) Appl Environ Microbiol , vol.71 , pp. 4972-4978
    • Castillo-Gonzalez, H.A.1    Bruns, M.A.2
  • 201
    • 3343024735 scopus 로고    scopus 로고
    • Integrated real-time control strategy for nitrogen removal in swine wastewater treatment using sequencing batch reactors
    • Kim J.H., Chen M., Kishida N., Sudo R. Integrated real-time control strategy for nitrogen removal in swine wastewater treatment using sequencing batch reactors. Water Res 2004, 38:3340-3348.
    • (2004) Water Res , vol.38 , pp. 3340-3348
    • Kim, J.H.1    Chen, M.2    Kishida, N.3    Sudo, R.4
  • 202
    • 28844458951 scopus 로고    scopus 로고
    • Electricity generation from swine wastewater using microbial fuel cells
    • Min B., Kim J.R., Oh S.E., Regan J.M., Logan B.E. Electricity generation from swine wastewater using microbial fuel cells. Water Res 2005, 39:4961-4968.
    • (2005) Water Res , vol.39 , pp. 4961-4968
    • Min, B.1    Kim, J.R.2    Oh, S.E.3    Regan, J.M.4    Logan, B.E.5
  • 203
    • 84904047109 scopus 로고    scopus 로고
    • Continuous electricity generation and pollutant removal from Swine wastewater using a single-chambered air-cathode microbial fuel cell
    • Cheng C.Y., Li C.C., Chung Y.C. Continuous electricity generation and pollutant removal from Swine wastewater using a single-chambered air-cathode microbial fuel cell. Adv Mater Res 2014, 953-954:158-162.
    • (2014) Adv Mater Res , pp. 158-162
    • Cheng, C.Y.1    Li, C.C.2    Chung, Y.C.3
  • 204
    • 84879816958 scopus 로고    scopus 로고
    • Treatment of swine wastewater using chemically modified zeolite and bioflocculant from activated sludge
    • Guo J., Yang C., Zeng G. Treatment of swine wastewater using chemically modified zeolite and bioflocculant from activated sludge. Bioresour Technol 2013, 143:289-297.
    • (2013) Bioresour Technol , vol.143 , pp. 289-297
    • Guo, J.1    Yang, C.2    Zeng, G.3
  • 205
    • 84890159364 scopus 로고    scopus 로고
    • Preparation and characteristics of bacterial polymer using pre-treated sludge from swine wastewater treatment plant
    • Guo J., Yang C., Zeng G. Preparation and characteristics of bacterial polymer using pre-treated sludge from swine wastewater treatment plant. Bioresour Technol 2014, 152:490-498.
    • (2014) Bioresour Technol , vol.152 , pp. 490-498
    • Guo, J.1    Yang, C.2    Zeng, G.3
  • 206
    • 85068791986 scopus 로고    scopus 로고
    • Bioflocculant from pre-treated sludge and its applications in sludge dewatering and swine wastewater pretreatment
    • Guo J., Ma J. Bioflocculant from pre-treated sludge and its applications in sludge dewatering and swine wastewater pretreatment. Bioresour Technol 2015, 196:736-740.
    • (2015) Bioresour Technol , vol.196 , pp. 736-740
    • Guo, J.1    Ma, J.2
  • 207
    • 33845343603 scopus 로고    scopus 로고
    • Progress and recent trends in biofuels
    • Demirbas A. Progress and recent trends in biofuels. Prog Energy Combust 2007, 33:1-18.
    • (2007) Prog Energy Combust , vol.33 , pp. 1-18
    • Demirbas, A.1
  • 208
    • 59349087992 scopus 로고    scopus 로고
    • Theoretical study of the transesterification of triglycerides to biodiesel fuel
    • Asakuma Y., Maeda K., Kuramochi H., Fukui K. Theoretical study of the transesterification of triglycerides to biodiesel fuel. Fuel 2009, 88:786-791.
    • (2009) Fuel , vol.88 , pp. 786-791
    • Asakuma, Y.1    Maeda, K.2    Kuramochi, H.3    Fukui, K.4
  • 209
    • 52449110327 scopus 로고    scopus 로고
    • Energy recovery from energy rich vegetable products with microbial fuel cells
    • Clauwaert P., Ha D., Verstraete W. Energy recovery from energy rich vegetable products with microbial fuel cells. Biotechnol Lett 2008, 30:1947-1951.
    • (2008) Biotechnol Lett , vol.30 , pp. 1947-1951
    • Clauwaert, P.1    Ha, D.2    Verstraete, W.3
  • 211
    • 0030378473 scopus 로고    scopus 로고
    • Overview and evaluation of fuel ethanol from cellulosic biomass
    • Lynd L.R. Overview and evaluation of fuel ethanol from cellulosic biomass. Annu Rev Energy Environ 1996, 21:403-465.
    • (1996) Annu Rev Energy Environ , vol.21 , pp. 403-465
    • Lynd, L.R.1
  • 212
    • 68049143444 scopus 로고    scopus 로고
    • Bioaugmentation for electricity generation from corn stover biomass using microbial fuel cells
    • Wang X., Feng Y., Wang H., Qu Y., Yu Y., Nanqiren, et al. Bioaugmentation for electricity generation from corn stover biomass using microbial fuel cells. Environ Sci Technol 2009, 43:6088-6093.
    • (2009) Environ Sci Technol , vol.43 , pp. 6088-6093
    • Wang, X.1    Feng, Y.2    Wang, H.3    Qu, Y.4    Yu, Y.N.5
  • 213
    • 84928738749 scopus 로고    scopus 로고
    • Bio-electrochemical degradation of paracetamol in a microbial fuel cell-fenton system
    • Zhang L., Yin X., Li S.F.Y. Bio-electrochemical degradation of paracetamol in a microbial fuel cell-fenton system. Chem Eng J 2015, 276:185-192.
    • (2015) Chem Eng J , vol.276 , pp. 185-192
    • Zhang, L.1    Yin, X.2    Li, S.F.Y.3
  • 214
    • 62649172117 scopus 로고    scopus 로고
    • Pilot treatment of wastewater from Dioscorea zingiberensis CH-Wright production by anaerobic digestion combined with a biological aerated filter
    • Cheng P., Zhao H.Z., Zhao B., Ni J.R. Pilot treatment of wastewater from Dioscorea zingiberensis CH-Wright production by anaerobic digestion combined with a biological aerated filter. Bioresour Technol 2009, 100:2918-2925.
    • (2009) Bioresour Technol , vol.100 , pp. 2918-2925
    • Cheng, P.1    Zhao, H.Z.2    Zhao, B.3    Ni, J.R.4
  • 215
    • 77955849430 scopus 로고    scopus 로고
    • Cleaner production alternatives for saponin industry by recycling starch
    • Li H., Ni J.R., Liu W., Zhu Y.L. Cleaner production alternatives for saponin industry by recycling starch. Resour Conserv and Recy 2010, 54:1145-1151.
    • (2010) Resour Conserv and Recy , vol.54 , pp. 1145-1151
    • Li, H.1    Ni, J.R.2    Liu, W.3    Zhu, Y.L.4
  • 216
    • 48349122821 scopus 로고    scopus 로고
    • Electricity generation and treatment of paper recycling wastewater using a microbial fuel cell
    • Huang L., Logan B.E. Electricity generation and treatment of paper recycling wastewater using a microbial fuel cell. Appl Microbiol Biot 2008, 80:349-355.
    • (2008) Appl Microbiol Biot , vol.80 , pp. 349-355
    • Huang, L.1    Logan, B.E.2
  • 217
    • 80755123414 scopus 로고    scopus 로고
    • Evaluation of full-strength paper mill effluent for electricity generation in mediator-less microbial fuel cells
    • Kassongo J., Togo C.A. Evaluation of full-strength paper mill effluent for electricity generation in mediator-less microbial fuel cells. Afr J Biotechnol 2011, 10:15564-15570.
    • (2011) Afr J Biotechnol , vol.10 , pp. 15564-15570
    • Kassongo, J.1    Togo, C.A.2
  • 218
    • 0037623933 scopus 로고    scopus 로고
    • The removal of colour from textiles wastewater using whole bacteria cells: a review
    • Pearce C.I., Lloyd J.R., Guthrie J.T. The removal of colour from textiles wastewater using whole bacteria cells: a review. Dyes Pigments 2003, 58:179-196.
    • (2003) Dyes Pigments , vol.58 , pp. 179-196
    • Pearce, C.I.1    Lloyd, J.R.2    Guthrie, J.T.3
  • 219
    • 77953121000 scopus 로고    scopus 로고
    • Peroxidase mediated decolorization and remediation of wastewater containing industrial dyes: a review
    • Husain Q. Peroxidase mediated decolorization and remediation of wastewater containing industrial dyes: a review. Rev Environ Sci Biotechnol 2010, 9:117-140.
    • (2010) Rev Environ Sci Biotechnol , vol.9 , pp. 117-140
    • Husain, Q.1
  • 220
    • 38849108043 scopus 로고    scopus 로고
    • Effect of carbon and nitrogen source amendment on synthetic dyes decolorizing efficiency of white-rot fungus Phanerochaete chrysosporium
    • Pant D., Singh A., Satyawali Y., Gupta R.K. Effect of carbon and nitrogen source amendment on synthetic dyes decolorizing efficiency of white-rot fungus Phanerochaete chrysosporium. J Environ Biol 2008, 29:79-84.
    • (2008) J Environ Biol , vol.29 , pp. 79-84
    • Pant, D.1    Singh, A.2    Satyawali, Y.3    Gupta, R.K.4
  • 221
    • 84958235375 scopus 로고
    • Color Chemistry Applenton-Century-Crofts, New York
    • Rlm A. The chemistry of azo dyes 1971, Color Chemistry Applenton-Century-Crofts, New York.
    • (1971) The chemistry of azo dyes
    • Rlm, A.1
  • 222
    • 0035813552 scopus 로고    scopus 로고
    • Studies on the production of enzymes by white rot-fungi for the decolorisation of textile dyes
    • Robinson T., Chandran B., Nigam P. Studies on the production of enzymes by white rot-fungi for the decolorisation of textile dyes. Enzyme Microbiol Technol 2001, 29:575-579.
    • (2001) Enzyme Microbiol Technol , vol.29 , pp. 575-579
    • Robinson, T.1    Chandran, B.2    Nigam, P.3
  • 224
    • 82755193768 scopus 로고    scopus 로고
    • Granular activated carbon based microbial fuel cell for simultaneous decolorization of real dye wastewater and electricity generation
    • Kalathil S., Lee J., Cho M.H. Granular activated carbon based microbial fuel cell for simultaneous decolorization of real dye wastewater and electricity generation. New Biotechnol 2011, 29:32-37.
    • (2011) New Biotechnol , vol.29 , pp. 32-37
    • Kalathil, S.1    Lee, J.2    Cho, M.H.3
  • 225
    • 84920264988 scopus 로고    scopus 로고
    • Electricity production from Azo dye wastewater using a microbial fuel cell coupled constructed wetland operating under different operating conditions
    • Fang Z., Song H., Cang N., Li X. Electricity production from Azo dye wastewater using a microbial fuel cell coupled constructed wetland operating under different operating conditions. Biosens Bioelectron 2015, 68:135-141.
    • (2015) Biosens Bioelectron , vol.68 , pp. 135-141
    • Fang, Z.1    Song, H.2    Cang, N.3    Li, X.4
  • 226
    • 84858279627 scopus 로고    scopus 로고
    • Bio-electrochemical remediation of real field petroleum sludge as an electron donor with simultaneous power generation facilitates biotransformation of PAH: effect of substrate concentration
    • Chandrasekhar K., Venkata Mohan S. Bio-electrochemical remediation of real field petroleum sludge as an electron donor with simultaneous power generation facilitates biotransformation of PAH: effect of substrate concentration. Bioresour Technol 2012, 110:517-525.
    • (2012) Bioresour Technol , vol.110 , pp. 517-525
    • Chandrasekhar, K.1    Venkata Mohan, S.2
  • 227
    • 57349153557 scopus 로고    scopus 로고
    • Microbial fuel cell in enhancing anaerobic biodegradation of diesel
    • Morris J.M., Jin S., Crimi B., Pruden A. Microbial fuel cell in enhancing anaerobic biodegradation of diesel. Chem Eng J 2009, 146:161-167.
    • (2009) Chem Eng J , vol.146 , pp. 161-167
    • Morris, J.M.1    Jin, S.2    Crimi, B.3    Pruden, A.4
  • 228
    • 84858341131 scopus 로고    scopus 로고
    • Enhanced biodegradation of hydrocarbon contaminated sediments using microbial fuel cells
    • Morris J.M., Jin S. Enhanced biodegradation of hydrocarbon contaminated sediments using microbial fuel cells. J Hazard Mater 2012, 213:474-477.
    • (2012) J Hazard Mater , vol.213 , pp. 474-477
    • Morris, J.M.1    Jin, S.2
  • 229
    • 58549106748 scopus 로고    scopus 로고
    • Influences of organic loading disturbances on the performance of anaerobic filter process to treat purified terephthalic acid wastewater
    • Joung J.Y., Lee H.W., Choi H., Lee M.W., Park J.M. Influences of organic loading disturbances on the performance of anaerobic filter process to treat purified terephthalic acid wastewater. Bioresour Technol 2009, 100:2457-2461.
    • (2009) Bioresour Technol , vol.100 , pp. 2457-2461
    • Joung, J.Y.1    Lee, H.W.2    Choi, H.3    Lee, M.W.4    Park, J.M.5
  • 230
    • 84928045328 scopus 로고    scopus 로고
    • Performance of a single chamber microbial fuel cell at different organic loads and pH values using purified terephthalic acid wastewater
    • Foad Marashi S.K., Kariminia H.R. Performance of a single chamber microbial fuel cell at different organic loads and pH values using purified terephthalic acid wastewater. J Environ Health Sci Eng 2015, 13:27.
    • (2015) J Environ Health Sci Eng , vol.13 , pp. 27
    • Foad Marashi, S.K.1    Kariminia, H.R.2
  • 231
    • 3242707506 scopus 로고    scopus 로고
    • Electricity generation using an air cathode single chamber microbial fuel cell in the presence and absence of a proton exchange membrane
    • Liu H., Logan B.E. Electricity generation using an air cathode single chamber microbial fuel cell in the presence and absence of a proton exchange membrane. Environ Sci Technol 2004, 38:4040-4046.
    • (2004) Environ Sci Technol , vol.38 , pp. 4040-4046
    • Liu, H.1    Logan, B.E.2
  • 232
    • 1842778990 scopus 로고    scopus 로고
    • Production of electricity during wastewater treatment using a single chamber microbial fuel cell
    • Liu H., Ramnarayanan R., Logan B.E. Production of electricity during wastewater treatment using a single chamber microbial fuel cell. Environ Sci Technol 2004, 38:2281-2285.
    • (2004) Environ Sci Technol , vol.38 , pp. 2281-2285
    • Liu, H.1    Ramnarayanan, R.2    Logan, B.E.3
  • 233
    • 70349428300 scopus 로고    scopus 로고
    • Effectiveness of domestic wastewater treatment using microbial fuel cells at ambient and mesophilic temperatures
    • Ahn Y., Logan B.E. Effectiveness of domestic wastewater treatment using microbial fuel cells at ambient and mesophilic temperatures. Bioresour Technol 2010, 101:469-475.
    • (2010) Bioresour Technol , vol.101 , pp. 469-475
    • Ahn, Y.1    Logan, B.E.2
  • 234
    • 79955008125 scopus 로고    scopus 로고
    • Electricity production in membrane-less microbial fuel cell fed with livestock organic solid waste
    • Lee Y., Nirmalakhandan N. Electricity production in membrane-less microbial fuel cell fed with livestock organic solid waste. Bioresour Technol 2011, 102:5831-5835.
    • (2011) Bioresour Technol , vol.102 , pp. 5831-5835
    • Lee, Y.1    Nirmalakhandan, N.2
  • 235
    • 84883262988 scopus 로고    scopus 로고
    • Using olive mill wastewater to improve performance in producing electricity from domestic wastewater by using single-chamber microbial fuel cell
    • Sciarria T.P., Tenca A., D'Epifanio A., Mecheri B., Merlino G., Barbato M., et al. Using olive mill wastewater to improve performance in producing electricity from domestic wastewater by using single-chamber microbial fuel cell. Bioresour Technol 2013, 147:246-253.
    • (2013) Bioresour Technol , vol.147 , pp. 246-253
    • Sciarria, T.P.1    Tenca, A.2    D'Epifanio, A.3    Mecheri, B.4    Merlino, G.5    Barbato, M.6
  • 236
    • 84888055100 scopus 로고    scopus 로고
    • Removal of heavy metals from fly ash leachate using combined bioelectrochemical systems and electrolysis
    • Tao H.C., Lei T., Shi G., Sun X.N., Wei X.Y., Zhang L.J., et al. Removal of heavy metals from fly ash leachate using combined bioelectrochemical systems and electrolysis. J Hazard Mater 2014, 264:1-7.
    • (2014) J Hazard Mater , vol.264 , pp. 1-7
    • Tao, H.C.1    Lei, T.2    Shi, G.3    Sun, X.N.4    Wei, X.Y.5    Zhang, L.J.6
  • 237
  • 238
    • 84969360606 scopus 로고    scopus 로고
    • Fuel cell treats wastewater and harvests energy
    • Tweed K. Fuel cell treats wastewater and harvests energy. Scientific American; 2012. http://www.scientificamerican.com/article.cfm?id=microbial-fuel-cell-treats-wastewater-harvests-energy%26page=2.
    • (2012) Scientific American
    • Tweed, K.1
  • 239
    • 34248181574 scopus 로고    scopus 로고
    • Graphite fiber brush anodes for increased power production in air-cathode microbial fuel cells
    • Logan B., Cheng S., Watson V., Estadt G. Graphite fiber brush anodes for increased power production in air-cathode microbial fuel cells. Environ Sci Technol 2007, 41:3341-3346.
    • (2007) Environ Sci Technol , vol.41 , pp. 3341-3346
    • Logan, B.1    Cheng, S.2    Watson, V.3    Estadt, G.4
  • 240
    • 84969129977 scopus 로고    scopus 로고
    • Assessment of microbial fuel cell configurations and power densities
    • [In Press].
    • Logan BE, Wallack MJ, Kim KY, He W, Feng Y, Saikaly PE. Assessment of microbial fuel cell configurations and power densities. Environ Sci Technol Lett 2015. doi:http://dx.doi.org/10.1021/acs.estlett.5b00180 [In Press]. doi:10.1021/acs.estlett.5b00180.
    • (2015) Environ Sci Technol Lett
    • Logan, B.E.1    Wallack, M.J.2    Kim, K.Y.3    He, W.4    Feng, Y.5    Saikaly, P.E.6
  • 241
    • 84937066269 scopus 로고    scopus 로고
    • Relationship between surface chemistry, biofilm structure, and electron transfer in Shewanella anodes
    • Artyushkova K., Cornejo J.A., Ista L.K., Babanova S., Santoro C., Atanassov P., et al. Relationship between surface chemistry, biofilm structure, and electron transfer in Shewanella anodes. Biointerphases 2015, 10.1116/1.4913783.
    • (2015) Biointerphases
    • Artyushkova, K.1    Cornejo, J.A.2    Ista, L.K.3    Babanova, S.4    Santoro, C.5    Atanassov, P.6
  • 243
    • 84930377796 scopus 로고    scopus 로고
    • Exoelectrogens in microbial fuel cells toward bioelectricity generation: a review
    • Kumar R., Singh L., Wahid Z.A., Din M.F.M. Exoelectrogens in microbial fuel cells toward bioelectricity generation: a review. Int J Energy Res 2015, 39:1048-1067.
    • (2015) Int J Energy Res , vol.39 , pp. 1048-1067
    • Kumar, R.1    Singh, L.2    Wahid, Z.A.3    Din, M.F.M.4
  • 244
    • 84946498389 scopus 로고    scopus 로고
    • Electrochemical and impedance characterization of Microbial Fuel Cells based on 2D and 3D anodic electrodes working with seawater microorganisms under continuous operation
    • Hidalgo D., Sacco A., Hernández S., Tommasi T. Electrochemical and impedance characterization of Microbial Fuel Cells based on 2D and 3D anodic electrodes working with seawater microorganisms under continuous operation. Bioresour Technol 2015, 195:139-146.
    • (2015) Bioresour Technol , vol.195 , pp. 139-146
    • Hidalgo, D.1    Sacco, A.2    Hernández, S.3    Tommasi, T.4
  • 245
    • 84872320351 scopus 로고    scopus 로고
    • Power generation and organics removal from wastewater using activated carbon nanofiber (ACNF) microbial fuel cells (MFCs)
    • Karra U., Manickam S.S., McCutcheon J.R., Patel N., Li B. Power generation and organics removal from wastewater using activated carbon nanofiber (ACNF) microbial fuel cells (MFCs). Int J Hydrogen Energy 2013, 38:1588-1597.
    • (2013) Int J Hydrogen Energy , vol.38 , pp. 1588-1597
    • Karra, U.1    Manickam, S.S.2    McCutcheon, J.R.3    Patel, N.4    Li, B.5
  • 246
    • 84889824941 scopus 로고    scopus 로고
    • Sustainable energy recovery in wastewater treatment by microbial fuel cells: stable power generation with nitrogen-doped graphene cathode
    • Yuan L., Hong L., Wang C., XiaHou S., Nuan Y. Sustainable energy recovery in wastewater treatment by microbial fuel cells: stable power generation with nitrogen-doped graphene cathode. Environ Sci Technol 2013, 47:13889-13895.
    • (2013) Environ Sci Technol , vol.47 , pp. 13889-13895
    • Yuan, L.1    Hong, L.2    Wang, C.3    XiaHou, S.4    Nuan, Y.5
  • 247
    • 84923374923 scopus 로고    scopus 로고
    • Silver/iron oxide/graphitic carbon composite as bacteriostatic catalysts for enhancing oxygen reduction in microbial fuel cells
    • Ma M., You S., Gong X., Dai Y., Zou J., Fu H. Silver/iron oxide/graphitic carbon composite as bacteriostatic catalysts for enhancing oxygen reduction in microbial fuel cells. J Power Sources 2015, 283:74-83.
    • (2015) J Power Sources , vol.283 , pp. 74-83
    • Ma, M.1    You, S.2    Gong, X.3    Dai, Y.4    Zou, J.5    Fu, H.6
  • 249
    • 84938943565 scopus 로고    scopus 로고
    • Energy extraction from a large-scale microbial fuel cell system treating municipal wastewater
    • Ge Z., Wu L., Zhang F., He Z. Energy extraction from a large-scale microbial fuel cell system treating municipal wastewater. J Power Sources 2015, 297:260-264.
    • (2015) J Power Sources , vol.297 , pp. 260-264
    • Ge, Z.1    Wu, L.2    Zhang, F.3    He, Z.4
  • 250
    • 84925012687 scopus 로고    scopus 로고
    • Practical energy harvesting for microbial fuel cells: a review
    • Wang H., Park J.D., Ren Z.J. Practical energy harvesting for microbial fuel cells: a review. Environ Sci Technol 2015, 49:3267-3277.
    • (2015) Environ Sci Technol , vol.49 , pp. 3267-3277
    • Wang, H.1    Park, J.D.2    Ren, Z.J.3
  • 251
    • 55949104194 scopus 로고    scopus 로고
    • Microbial fuel cells based on carbon veil electrodes: stack configuration and scalability
    • Ieropoulos I., Greenman J., Melhuish C. Microbial fuel cells based on carbon veil electrodes: stack configuration and scalability. Int J Energy Res 2008, 32:1228-1240.
    • (2008) Int J Energy Res , vol.32 , pp. 1228-1240
    • Ieropoulos, I.1    Greenman, J.2    Melhuish, C.3
  • 253
    • 84875263858 scopus 로고    scopus 로고
    • MFC-cascade stacks maximise COD reduction and avoid voltage reversal under adverse conditions
    • Ledezma P., Greenman J., Ieropoulos I. MFC-cascade stacks maximise COD reduction and avoid voltage reversal under adverse conditions. Bioresour Technol 2013, 134:158-165.
    • (2013) Bioresour Technol , vol.134 , pp. 158-165
    • Ledezma, P.1    Greenman, J.2    Ieropoulos, I.3
  • 254
    • 84907305184 scopus 로고    scopus 로고
    • Increased performance of a tubular microbial fuel cell with a rotating carbon-brush anode
    • Liao Q., Zhang J., Li J., Ye D., Zhu X., Zhang B. Increased performance of a tubular microbial fuel cell with a rotating carbon-brush anode. Biosens Bioelectron 2015, 63:558-561.
    • (2015) Biosens Bioelectron , vol.63 , pp. 558-561
    • Liao, Q.1    Zhang, J.2    Li, J.3    Ye, D.4    Zhu, X.5    Zhang, B.6
  • 255
    • 84941093645 scopus 로고    scopus 로고
    • Endogenously enhanced biosurfactant production promotes electricity generation from microbial fuel cells
    • Zheng T., Xu Y.S., Yong X.Y., Li B., Yin D., Cheng Q.W., et al. Endogenously enhanced biosurfactant production promotes electricity generation from microbial fuel cells. Bioresour Technol 2015, 197:416-421.
    • (2015) Bioresour Technol , vol.197 , pp. 416-421
    • Zheng, T.1    Xu, Y.S.2    Yong, X.Y.3    Li, B.4    Yin, D.5    Cheng, Q.W.6
  • 257
    • 33745225414 scopus 로고    scopus 로고
    • Bug juice: harvesting electricity with microorganisms
    • Lovley D.R. Bug juice: harvesting electricity with microorganisms. Nat Rev Microbiol 2006, 4:497-508.
    • (2006) Nat Rev Microbiol , vol.4 , pp. 497-508
    • Lovley, D.R.1
  • 258
    • 77957359097 scopus 로고    scopus 로고
    • Cathodes as electron donors for microbial metabolism: which extracellular electron transfer mechanisms are involved?
    • Rosenbaum M., Aulenta F., Villano M., Angenent L.T. Cathodes as electron donors for microbial metabolism: which extracellular electron transfer mechanisms are involved?. Bioresour Technol 2011, 102:324-333.
    • (2011) Bioresour Technol , vol.102 , pp. 324-333
    • Rosenbaum, M.1    Aulenta, F.2    Villano, M.3    Angenent, L.T.4
  • 259
    • 78650173757 scopus 로고    scopus 로고
    • Microbial electrosynthesis: feeding microbes electricity to convert carbon dioxide and water to multicarbon extracellular organic compounds
    • Nevin K.P., Woodard T.L., Franks A.E., Summers Z.M., Lovley D.R. Microbial electrosynthesis: feeding microbes electricity to convert carbon dioxide and water to multicarbon extracellular organic compounds. mBio 2010, 1:e00103-e00110.
    • (2010) mBio , vol.1 , pp. e00103-e00110
    • Nevin, K.P.1    Woodard, T.L.2    Franks, A.E.3    Summers, Z.M.4    Lovley, D.R.5
  • 260
    • 77957147094 scopus 로고    scopus 로고
    • Microbial electrosynthesis-revisiting the electrical route for microbial production
    • Rabaey K., Rozendal R.A. Microbial electrosynthesis-revisiting the electrical route for microbial production. Nat Rev Microbiol 2010, 8:706-716.
    • (2010) Nat Rev Microbiol , vol.8 , pp. 706-716
    • Rabaey, K.1    Rozendal, R.A.2


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.