메뉴 건너뛰기




Volumn 42, Issue 23, 2012, Pages 2504-2525

Cathode reactions and applications in microbial fuel cells: A review

Author keywords

bioelectricity; bioproduction; bioremediation; microbial fuel cell

Indexed keywords

BIO-PRODUCTION; BIOMASS WASTES; CATHODE REACTIONS; CRITICAL ASSESSMENT; ENERGY RECOVERY; FUTURE TRENDS; POTENTIAL APPLICATIONS;

EID: 84869406278     PISSN: 10643389     EISSN: 15476537     Source Type: Journal    
DOI: 10.1080/10643389.2011.592744     Document Type: Review
Times cited : (66)

References (81)
  • 3
    • 0039808935 scopus 로고
    • Bioelectrochemical energy conversion
    • Berk, R. S. and Canfield, J. H. (1964). Bioelectrochemical energy conversion. Applied Microbiology 12, 10-12.
    • (1964) Applied Microbiology , vol.12 , pp. 10-12
    • Berk, R.S.1    Canfield, J.H.2
  • 5
    • 67749116349 scopus 로고    scopus 로고
    • A completely anoxic microbial fuel cell using a photo-biocathode for cathodic carbon dioxide reduction
    • Cao, X. X., Huang, X., Liang, P., Boon, N., Fan, M. Z., Zhang, L., and Zhang, X. Y. (2009). A completely anoxic microbial fuel cell using a photo-biocathode for cathodic carbon dioxide reduction. Energy & Environmental Science 2, 498-501.
    • (2009) Energy & Environmental Science , vol.2 , pp. 498-501
    • Cao, X.X.1    Huang, X.2    Liang, P.3    Boon, N.4    Fan, M.Z.5    Zhang, L.6    Zhang, X.Y.7
  • 7
    • 77952319296 scopus 로고    scopus 로고
    • Characterization of an open biocathode microbial fuel cell for electricity generation and effluent polish
    • Chen, G. W., Cha, J. H., Choi, S. J., Lee, T. H., and Kim, C. W. (2010). Characterization of an open biocathode microbial fuel cell for electricity generation and effluent polish. Korean Journal of Chemical Engineering 27, 828-835.
    • (2010) Korean Journal of Chemical Engineering , vol.27 , pp. 828-835
    • Chen, G.W.1    Cha, J.H.2    Choi, S.J.3    Lee, T.H.4    Kim, C.W.5
  • 9
    • 30344467807 scopus 로고    scopus 로고
    • Power densities using different cathode catalysts (Pt and CoTMPP) and polymer binders (Nafion and PTFE) in single chamber microbial fuel cells
    • DOI 10.1021/es0512071
    • Cheng, S., Liu, H., and Logan, B. E. (2006). Power densities using different cathode catalysts (Pt and CoTMPP) and polymer binders (Nafion and PTFE) in single chamber microbial fuel cells. Environmental Science & Technology 40, 364-369. (Pubitemid 43069924)
    • (2006) Environmental Science and Technology , vol.40 , Issue.1 , pp. 364-369
    • Cheng, S.1    Liu, H.2    Logan, B.E.3
  • 12
    • 77953212940 scopus 로고    scopus 로고
    • Electrochemical reduction of oxygen catalyzed by Pseudomonas aeruginosa
    • Cournet, A., Berge, M., Roques, C., Bergel, A., and Delia, M. L. (2010a). Electrochemical reduction of oxygen catalyzed by Pseudomonas aeruginosa. Electrochimica Acta 55, 4902-4908.
    • (2010) Electrochimica Acta , vol.55 , pp. 4902-4908
    • Cournet, A.1    Berge, M.2    Roques, C.3    Bergel, A.4    Delia, M.L.5
  • 13
    • 77949654987 scopus 로고    scopus 로고
    • Electrochemical reduction of oxygen catalyzed by a wide range of bacteria including gram-positive
    • Cournet, A., Delia, M. L., Bergel, A., Roques, C., and Berge, M. (2010). Electrochemical reduction of oxygen catalyzed by a wide range of bacteria including gram-positive. Electrochemistry Communications 12, 505-508.
    • (2010) Electrochemistry Communications , vol.12 , pp. 505-508
    • Cournet, A.1    Delia, M.L.2    Bergel, A.3    Roques, C.4    Berge, M.5
  • 14
    • 77950339768 scopus 로고    scopus 로고
    • Effect of chemically modified Vulcan XC-72R on the performance of air-breathing cathode in a single-chamber microbial fuel cell
    • Duteanu, N., Erable, B., Kumar, S. M. S., Ghangrekar, M. M., and Scott, K. (2010). Effect of chemically modified Vulcan XC-72R on the performance of air-breathing cathode in a single-chamber microbial fuel cell. Bioresource Technology 101, 5250-5255.
    • (2010) Bioresource Technology , vol.101 , pp. 5250-5255
    • Duteanu, N.1    Erable, B.2    Kumar, S.M.S.3    Ghangrekar, M.M.4    Scott, K.5
  • 15
  • 16
    • 67649505369 scopus 로고    scopus 로고
    • Nitric acid activation of graphite granules to increase the performance of the non-catalyzed oxygen reduction reaction (ORR) for MFC applications
    • Erable, B., Duteanu, N., Kumar, S. M. S., Feng, Y. J., Ghangrekar, M. M., and Scott, K. (2009). Nitric acid activation of graphite granules to increase the performance of the non-catalyzed oxygen reduction reaction (ORR) for MFC applications. Electrochemistry Communications 11, 1547-1549.
    • (2009) Electrochemistry Communications , vol.11 , pp. 1547-1549
    • Erable, B.1    Duteanu, N.2    Kumar, S.M.S.3    Feng, Y.J.4    Ghangrekar, M.M.5    Scott, K.6
  • 19
    • 77953160485 scopus 로고    scopus 로고
    • Microbial fuel cells, a current review
    • Franks, A. E., and Nevin, K. P. (2010). Microbial fuel cells, a current review. Energies 3, 899-919.
    • (2010) Energies , vol.3 , pp. 899-919
    • Franks, A.E.1    Nevin, K.P.2
  • 20
    • 35148836695 scopus 로고    scopus 로고
    • Non-catalyzed cathodic oxygen reduction at graphite granules in microbial fuel cells
    • DOI 10.1016/j.electacta.2007.07.037, PII S0013468607008924
    • Freguia, S., Rabaey, K., Yuan, Z., and Keller, J. (2007). Non-catalyzed cathodic oxygen reduction at graphite granules in microbial fuel cells. Electrochimica Acta 53, 598-603. (Pubitemid 47539413)
    • (2007) Electrochimica Acta , vol.53 , Issue.2 , pp. 598-603
    • Freguia, S.1    Rabaey, K.2    Yuan, Z.3    Keller, J.4
  • 21
    • 70549089986 scopus 로고    scopus 로고
    • Electron transfer pathways in microbial oxygen biocathodes
    • Freguia, S., Tsujimura, S., and Kano, K. (2010). Electron transfer pathways in microbial oxygen biocathodes. Electrochimica Acta 55, 813-818.
    • (2010) Electrochimica Acta , vol.55 , pp. 813-818
    • Freguia, S.1    Tsujimura, S.2    Kano, K.3
  • 23
    • 77951142375 scopus 로고    scopus 로고
    • Degradation of azo dyes using in-situ Fenton reaction incorporated into H2O2-producing microbial fuel cell
    • Fu, L., You, S. J., Zhang, G. Q., Yang, F. L., and Fang, X. H. (2010b). Degradation of azo dyes using in-situ Fenton reaction incorporated into H2O2-producing microbial fuel cell. Chemical Engineering Journal 160, 164-169.
    • (2010) Chemical Engineering Journal , vol.160 , pp. 164-169
    • Fu, L.1    You, S.J.2    Zhang, G.Q.3    Yang, F.L.4    Fang, X.H.5
  • 25
    • 40749136258 scopus 로고    scopus 로고
    • Bio-electrochemical removal of nitrate from water and wastewater-A review
    • DOI 10.1016/j.biortech.2007.05.026, PII S0960852407004476
    • Ghafari, S., Hasan, M., and Aroua, M. K. (2008). Bio-electrochemical removal of nitrate from water and wastewater: A review. Bioresource Technology 99, 3965-3974. (Pubitemid 351380792)
    • (2008) Bioresource Technology , vol.99 , Issue.10 , pp. 3965-3974
    • Ghafari, S.1    Hasan, M.2    Aroua, M.K.3
  • 26
    • 77958034514 scopus 로고    scopus 로고
    • From MFC to MXC: Chemical and biological cathodes and their potential for microbial bioelectrochemical systems
    • Harnisch, F., and Schroder, U. (2010). From MFC to MXC: Chemical and biological cathodes and their potential for microbial bioelectrochemical systems. Chemical Society Reviews 39, 4433-4448.
    • (2010) Chemical Society Reviews , vol.39 , pp. 4433-4448
    • Harnisch, F.1    Schroder, U.2
  • 27
    • 33750443594 scopus 로고    scopus 로고
    • Application of bacterial biocathodes in microbial fuel cells
    • He, Z., and Angenent, L. T. (2006). Application of bacterial biocathodes in microbial fuel cells. Electroanalysis 18, 2009-2015.
    • (2006) Electroanalysis , vol.18 , pp. 2009-2015
    • He, Z.1    Angenent, L.T.2
  • 28
    • 77958092093 scopus 로고    scopus 로고
    • Enhancement of hexavalent chromium reduction and electricity production from a biocathode microbial fuel cell
    • Huang, L. P., Chen, J. W., Quan, X., and Yang, F. L. (2010). Enhancement of hexavalent chromium reduction and electricity production from a biocathode microbial fuel cell. Bioprocess and Biosystems Engineering 33, 937-945.
    • (2010) Bioprocess and Biosystems Engineering , vol.33 , pp. 937-945
    • Huang, L.P.1    Chen, J.W.2    Quan, X.3    Yang, F.L.4
  • 29
    • 34548017839 scopus 로고    scopus 로고
    • Challenges in microbial fuel cell development and operation
    • DOI 10.1007/s00253-007-1027-4
    • Kim, B. H., Chang, I. S., and Gadd, G. M. (2007). Challenges in microbial fuel cell development and operation. Applied Microbiology and Biotechnology 76, 485-494. (Pubitemid 47283106)
    • (2007) Applied Microbiology and Biotechnology , vol.76 , Issue.3 , pp. 485-494
    • Kim, B.H.1    Chang, I.S.2    Gadd, G.M.3
  • 30
    • 77957340296 scopus 로고    scopus 로고
    • Application of Co-naphthalocyanine (CoNPc) as alternative cathode catalyst and support structure for microbial fuel cells
    • Kim, J. R., Kim, J. Y., Han, S. B., Park, K. W., Saratale, G. D., and Oh, S. E. (2011). Application of Co-naphthalocyanine (CoNPc) as alternative cathode catalyst and support structure for microbial fuel cells. Bioresource Technology 102, 342-347.
    • (2011) Bioresource Technology , vol.102 , pp. 342-347
    • Kim, J.R.1    Kim, J.Y.2    Han, S.B.3    Park, K.W.4    Saratale, G.D.5    Oh, S.E.6
  • 31
    • 53549133386 scopus 로고    scopus 로고
    • A microbial fuel cell equipped with a biocathode for organic removal and denitrification
    • Lefebvre, O., Al-Mamun, A., and Ng, H. Y. (2008). A microbial fuel cell equipped with a biocathode for organic removal and denitrification. Water Science and Technology 58, 881-885.
    • (2008) Water Science and Technology , vol.58 , pp. 881-885
    • Lefebvre, O.1    Al-Mamun, A.2    Ng, H.Y.3
  • 32
    • 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., and Ng, H. Y. (2011). Microbial fuel cells for energy self-sufficient domestic wastewater treatment: A review and discussion from energetic consideration. Applied Microbiology and Biotechnology 89, 259-270.
    • (2011) Applied Microbiology and Biotechnology , vol.89 , pp. 259-270
    • Lefebvre, O.1    Uzabiaga, A.2    Chang, I.S.3    Kim, B.H.4    Ng, H.Y.5
  • 33
    • 68149139271 scopus 로고    scopus 로고
    • Persulfate: A selfactivated cathodic electron acceptor for microbial fuel cells
    • Li, J., Fu, Q., Liao, Q., Zhu, X., Ye, D. D., and Tian, X. (2009). Persulfate: A selfactivated cathodic electron acceptor for microbial fuel cells. Journal of Power Sources 194, 269-274.
    • (2009) Journal of Power Sources , vol.194 , pp. 269-274
    • Li, J.1    Fu, Q.2    Liao, Q.3    Zhu, X.4    Ye, D.D.5    Tian, X.6
  • 34
    • 75949108680 scopus 로고    scopus 로고
    • A solar regenerable cathodic electron acceptor for microbial fuel cells
    • Li, J., Fu, Q., Zhu, X., Liao, Q., Zhang, L., and Wang, H. (2010a). A solar regenerable cathodic electron acceptor for microbial fuel cells. Electrochimica Acta 55, 2332-2337.
    • (2010) Electrochimica Acta , vol.55 , pp. 2332-2337
    • Li, J.1    Fu, Q.2    Zhu, X.3    Liao, Q.4    Zhang, L.5    Wang, H.6
  • 35
    • 76749141878 scopus 로고    scopus 로고
    • Electricity generation by two types of microbial fuel cells using nitrobenzene as the anodic or cathodic reactants
    • Li, J., Liu, G. L., Zhang, R. D., Luo, Y., Zhang, C. P., and Li, M. C. (2010b). Electricity generation by two types of microbial fuel cells using nitrobenzene as the anodic or cathodic reactants. Bioresource Technology 101, 4013-4020.
    • (2010) Bioresource Technology , vol.101 , pp. 4013-4020
    • Li, J.1    Liu, G.L.2    Zhang, R.D.3    Luo, Y.4    Zhang, C.P.5    Li, M.C.6
  • 36
    • 73249127562 scopus 로고    scopus 로고
    • Manganese dioxide as a new cathode catalyst in microbial fuel cells
    • Li, X., Hu, B. X., Suib, S., Lei, Y., and Li, B. K. (2010c). Manganese dioxide as a new cathode catalyst in microbial fuel cells. Journal of Power Sources 195, 2586-2591.
    • (2010) Journal of Power Sources , vol.195 , pp. 2586-2591
    • Li, X.1    Hu, B.X.2    Suib, S.3    Lei, Y.4    Li, B.K.5
  • 37
    • 54949100705 scopus 로고    scopus 로고
    • Electricity production during the treatment of real electroplating wastewater containing Cr6+ using microbial fuel cell
    • Li, Z. J., Zhang, X. W., and Lei, L. C. (2008). Electricity production during the treatment of real electroplating wastewater containing Cr6+ using microbial fuel cell. Process Biochemistry 43, 1352-1358.
    • (2008) Process Biochemistry , vol.43 , pp. 1352-1358
    • Li, Z.J.1    Zhang, X.W.2    Lei, L.C.3
  • 39
    • 77957354595 scopus 로고    scopus 로고
    • Nano-structured manganese oxide as a cathodic catalyst for enhanced oxygen reduction in a microbial fuel cell fed with a synthetic wastewater
    • Liu, X. W., Sun, X. F., Huang, Y. X., Sheng, G. P., Zhou, K., Zeng, R. J., Dong, F., Wang, S. G., Xu, A. W., Tong, Z. H., and Yu, H. Q. (2010). Nano-structured manganese oxide as a cathodic catalyst for enhanced oxygen reduction in a microbial fuel cell fed with a synthetic wastewater. Water Research 44, 5298-5305.
    • (2010) Water Research , vol.44 , pp. 5298-5305
    • Liu, X.W.1    Sun, X.F.2    Huang, Y.X.3    Sheng, G.P.4    Zhou, K.5    Zeng, R.J.6    Dong, F.7    Wang, S.G.8    Xu, A.W.9    Tong, Z.H.10    Yu, H.Q.11
  • 40
    • 0036226507 scopus 로고    scopus 로고
    • Degradation of aniline by newly isolated, extremely aniline-tolerant Delftia sp. AN3
    • DOI 10.1007/s00253-002-0933-8
    • Liu, Z., Yang, H., Huang, Z., Zhou, P., and Liu, S. J. (2002). Degradation of aniline by newly isolated, extremely aniline-tolerant Delftia sp AN3. Applied Microbiology and Biotechnology 58, 679-682. (Pubitemid 34299235)
    • (2002) Applied Microbiology and Biotechnology , vol.58 , Issue.5 , pp. 679-682
    • Liu, Z.1    Yang, H.2    Huang, Z.3    Zhou, P.4    Liu, S.-J.5
  • 42
    • 76849084828 scopus 로고    scopus 로고
    • Scaling up microbial fuel cells and other bioelectrochemical systems
    • Logan, B. E. (2010). Scaling up microbial fuel cells and other bioelectrochemical systems. Applied Microbiology and Biotechnology 85, 1665-1671.
    • (2010) Applied Microbiology and Biotechnology , vol.85 , pp. 1665-1671
    • Logan, B.E.1
  • 44
    • 14644399273 scopus 로고    scopus 로고
    • Electricity generation from cysteine in a microbial fuel cell
    • Logan, B. E., Murano, C., Scott, K., Gray, N. D., and Head, I. M. (2005). Electricity generation from cysteine in a microbial fuel cell. Water Research 39, 942-952.
    • (2005) Water Research , vol.39 , pp. 942-952
    • Logan, B.E.1    Murano, C.2    Scott, K.3    Gray, N.D.4    Head, I.M.5
  • 45
    • 34250212076 scopus 로고    scopus 로고
    • Lead dioxide as an alternative catalyst to platinum in microbial fuel cells
    • DOI 10.1016/j.elecom.2007.03.028, PII S1388248107001397
    • Morris, J. M., Jin, S., Wang, J. Q., Zhu, C. Z., and Urynowicz, M. A. (2007). Lead dioxide as an alternative catalyst to platinum in microbial fuel cells. Electrochemistry Communications 9, 1730-1734. (Pubitemid 46907788)
    • (2007) Electrochemistry Communications , vol.9 , Issue.7 , pp. 1730-1734
    • Morris, J.M.1    Jin, S.2    Wang, J.3    Zhu, C.4    Urynowicz, M.A.5
  • 48
    • 51349108665 scopus 로고    scopus 로고
    • Growth kinetics of Chlorella vulgaris and its use as a cathodic half cell
    • Powell, E. E., Mapiour, M. L., Evitts, R. W., and Hill, G. A. (2009). Growth kinetics of Chlorella vulgaris and its use as a cathodic half cell. Bioresource Technology 100, 269-274.
    • (2009) Bioresource Technology , vol.100 , pp. 269-274
    • Powell, E.E.1    Mapiour, M.L.2    Evitts, R.W.3    Hill, G.A.4
  • 50
    • 70350455268 scopus 로고    scopus 로고
    • A 1.5 mu L microbial fuel cell for on-chip bioelectricity generation
    • Qian, F., Baum, M., Gu, Q., and Morse, D. E. (2009). A 1.5 mu L microbial fuel cell for on-chip bioelectricity generation. Lab on a Chip 9, 3076-3081.
    • (2009) Lab on A Chip , vol.9 , pp. 3076-3081
    • Qian, F.1    Baum, M.2    Gu, Q.3    Morse, D.E.4
  • 51
    • 4644305766 scopus 로고    scopus 로고
    • Biofuel cells select for microbial consortia that self-mediate electron transfer
    • DOI 10.1128/AEM.70.9.5373-5382.2004
    • Rabaey, K., Boon, N., Siciliano, S. D., Verhaege, M., and Verstraete, W. (2004). Biofuel cells select for microbial consortia that self-mediate electron transfer. Applied and Environmental Microbiology 70, 5373-5382. (Pubitemid 39279613)
    • (2004) Applied and Environmental Microbiology , vol.70 , Issue.9 , pp. 5373-5382
    • Rabaey, K.1    Boon, N.2    Siciliano, S.D.3    Verhaege, M.4    Verstraete, W.5
  • 52
    • 43449084074 scopus 로고    scopus 로고
    • Cathodic oxygen reduction catalyzed by bacteria in microbial fuel cells
    • DOI 10.1038/ismej.2008.1, PII ISMEJ20081
    • Rabaey, K., Read, S. T., Clauwaert, P., Freguia, S., Bond, P. L., Blackall, L. L., and Keller, J. (2008). Cathodic oxygen reduction catalyzed by bacteria in microbial fuel cells. Isme Journal 2, 519-527. (Pubitemid 351666971)
    • (2008) ISME Journal , vol.2 , Issue.5 , pp. 519-527
    • Rabaey, K.1    Read, S.T.2    Clauwaert, P.3    Freguia, S.4    Bond, P.L.5    Blackall, L.L.6    Keller, J.7
  • 53
    • 20744456285 scopus 로고    scopus 로고
    • Microbial fuel cell using anaerobic respiration as an anodic reaction and biomineralized manganese as a cathodic reactant
    • Rhoads, A., Beyenal, H., and Lewandowski, Z. (2005). Microbial fuel cell using anaerobic respiration as an anodic reaction and biomineralized manganese as a cathodic reactant. Environmental Science & Technology 39, 4666-4671.
    • (2005) Environmental Science & Technology , vol.39 , pp. 4666-4671
    • Rhoads, A.1    Beyenal, H.2    Lewandowski, Z.3
  • 55
    • 44449089547 scopus 로고    scopus 로고
    • Opportunities for renewable bioenergy using microorganisms
    • DOI 10.1002/bit.21875
    • Rittmann, B. E. (2008). Opportunities for renewable bioenergy using microorganisms. Biotechnology and Bioengineering 100, 203-212. (Pubitemid 351758163)
    • (2008) Biotechnology and Bioengineering , vol.100 , Issue.2 , pp. 203-212
    • Rittmann, B.E.1
  • 56
    • 73349121599 scopus 로고    scopus 로고
    • A microbial fuel cell using manganese oxide oxygen reduction catalysts
    • Roche, I., Katuri, K., and Scott, K. (2010). A microbial fuel cell using manganese oxide oxygen reduction catalysts. Journal of Applied Electrochemistry 40, 13-21.
    • (2010) Journal of Applied Electrochemistry , vol.40 , pp. 13-21
    • Roche, I.1    Katuri, K.2    Scott, K.3
  • 57
    • 34948887836 scopus 로고    scopus 로고
    • Microbial production of hydrogen and ethanol from glycerol-containing wastes discharged from a biodiesel fuel production plant in a bioelectrochemical reactor with thionine
    • DOI 10.1002/bit.21427
    • Sakai, S., and Yagishita, T. 2007. Microbial production of hydrogen and ethanol from glycerol-containing wastes discharged from a biodiesel fuel production plant in a bioelectrochemical reactor with thionine. Biotechnology & Bioengineering 98 (2): 340-348. (Pubitemid 47518057)
    • (2007) Biotechnology and Bioengineering , vol.98 , Issue.2 , pp. 340-348
    • Sakai, S.1    Yagishita, T.2
  • 58
    • 67449147907 scopus 로고    scopus 로고
    • An improved microbial fuel cell with laccase as the oxygen reduction catalyst
    • Schaetzle, O., Barriere, F., and Schroder, U. (2009). An improved microbial fuel cell with laccase as the oxygen reduction catalyst. Energy & Environmental Science 2, 96-99.
    • (2009) Energy & Environmental Science , vol.2 , pp. 96-99
    • Schaetzle, O.1    Barriere, F.2    Schroder, U.3
  • 62
    • 34250212127 scopus 로고    scopus 로고
    • Microbial fuel cell operation with continuous biological ferrous iron oxidation of the catholyte
    • DOI 10.1021/es0702824
    • Ter Heijne, A., Hamelers, H. V.M., and Buisman, C. J.N. (2007). Microbial fuel cell operation with continuous biological ferrous iron oxidation of the catholyte. Environmental Science & Technology 41, 4130-4134. (Pubitemid 46903231)
    • (2007) Environmental Science and Technology , vol.41 , Issue.11 , pp. 4130-4134
    • Ter Heijne, A.1    Hamelers, H.V.M.2    Buisman, C.J.N.3
  • 63
    • 33748562194 scopus 로고    scopus 로고
    • A bipolar membrane combined with ferric iron reduction as an efficient cathode system in microbial fuel cells
    • DOI 10.1021/es0608545
    • Ter Heijne, A., Hamelers, H. V.M., De Wilde, V., Rozendal, R. A., and Buisman, C. J.N. (2006). A bipolar membrane combined with ferric iron reduction as an efficient cathode system in microbial fuel cells. Environmental Science & Technology 40, 5200-5205. (Pubitemid 44373077)
    • (2006) Environmental Science and Technology , vol.40 , Issue.17 , pp. 5200-5205
    • Ter Heijne, A.1    Hamelers, H.V.M.2    De Wilde, V.3    Rozendal, R.A.4    Buisman, C.J.N.5
  • 66
    • 77950927558 scopus 로고    scopus 로고
    • Simultaneous nitrification, denitrification and carbon removal in microbial fuel cells
    • Virdis, B., Rabaey, K., Rozendal, R. A., Yuan, Z. G., and Keller, J. (2010). Simultaneous nitrification, denitrification and carbon removal in microbial fuel cells. Water Research 44, 2970-2980.
    • (2010) Water Research , vol.44 , pp. 2970-2980
    • Virdis, B.1    Rabaey, K.2    Rozendal, R.A.3    Yuan, Z.G.4    Keller, J.5
  • 67
    • 44749085795 scopus 로고    scopus 로고
    • Microbial fuel cells for simultaneous carbon and nitrogen removal
    • Virdis, B., Rabaey, K., Yuan, Z., and Keller, J. (2008). Microbial fuel cells for simultaneous carbon and nitrogen removal. Water Research 42, 3013-3024.
    • (2008) Water Research , vol.42 , pp. 3013-3024
    • Virdis, B.1    Rabaey, K.2    Yuan, Z.3    Keller, J.4
  • 69
    • 52449101935 scopus 로고    scopus 로고
    • Cathodic reduction of hexavalent chromiumm [Cr(VI)] coupled with electricity generation in microbial fuel cells
    • Wang, G., Huang, L. P., and Zhang, Y. F. (2008). Cathodic reduction of hexavalent chromiumm [Cr(VI)] coupled with electricity generation in microbial fuel cells. Biotechnology Letters 30, 1959-1966.
    • (2008) Biotechnology Letters , vol.30 , pp. 1959-1966
    • Wang, G.1    Huang, L.P.2    Zhang, Y.F.3
  • 70
    • 77954911012 scopus 로고    scopus 로고
    • Cathodic reduction of Cu2+ and electric power generation using a microbial fuel cell
    • Wang, Z., Lim, B., Lu, H., Fan, J., and Choi, C. (2010). Cathodic reduction of Cu2+ and electric power generation using a microbial fuel cell. Bulletin of the Korean Chemical Society 31, 2025-2030.
    • (2010) Bulletin of the Korean Chemical Society , vol.31 , pp. 2025-2030
    • Wang, Z.1    Lim, B.2    Lu, H.3    Fan, J.4    Choi, C.5
  • 71
    • 70350292067 scopus 로고    scopus 로고
    • Power generation and electrochemical analysis of biocathode microbial fuel cell using graphite fibre brush as cathode material
    • You, S. J., Ren, N. Q., Zhao, Q. L., Wang, J. Y., and Yang, F. L. (2009). Power generation and electrochemical analysis of biocathode microbial fuel cell using graphite fibre brush as cathode material. Fuel Cells 9, 588-596.
    • (2009) Fuel Cells , vol.9 , pp. 588-596
    • You, S.J.1    Ren, N.Q.2    Zhao, Q.L.3    Wang, J.Y.4    Yang, F.L.5
  • 72
    • 33750964484 scopus 로고    scopus 로고
    • A microbial fuel cell using permanganate as the cathodic electron acceptor
    • You, S. J., Zhao, Q. L., Zhang, J. N., Jiang, J. Q., and Zhao, S. Q. (2006). A microbial fuel cell using permanganate as the cathodic electron acceptor. Journal of Power Sources 162, 1409-1415.
    • (2006) Journal of Power Sources , vol.162 , pp. 1409-1415
    • You, S.J.1    Zhao, Q.L.2    Zhang, J.N.3    Jiang, J.Q.4    Zhao, S.Q.5
  • 73
    • 78049395471 scopus 로고    scopus 로고
    • Polyaniline/carbon black compositesupported iron phthalocyanine as an oxygen reduction catalyst for microbial fuel cells
    • Yuan, Y., Ahmed, J., and Kim, S. (2011). Polyaniline/carbon black compositesupported iron phthalocyanine as an oxygen reduction catalyst for microbial fuel cells. Journal of Power Sources 196, 1103-1106.
    • (2011) Journal of Power Sources , vol.196 , pp. 1103-1106
    • Yuan, Y.1    Ahmed, J.2    Kim, S.3
  • 74
    • 75749129791 scopus 로고    scopus 로고
    • Polypyrrole/carbon black composite as a novel oxygen reduction catalyst for microbial fuel cells
    • Yuan, Y., Zhou, S. G., and Zhuang, L. (2010). Polypyrrole/carbon black composite as a novel oxygen reduction catalyst for microbial fuel cells. Journal of Power Sources 195, 3490-3493.
    • (2010) Journal of Power Sources , vol.195 , pp. 3490-3493
    • Yuan, Y.1    Zhou, S.G.2    Zhuang, L.3
  • 75
    • 70449436466 scopus 로고    scopus 로고
    • Simultaneous removal of sulfide and organics with vanadium(V) reduction in microbial fuel cells
    • Zhang, B., Zhao, H., Shi, C., Zhou, S., and Ni, J. (2009a). Simultaneous removal of sulfide and organics with vanadium(V) reduction in microbial fuel cells. Journal of Chemical Technology and Biotechnology 84, 1780-1786.
    • (2009) Journal of Chemical Technology and Biotechnology , vol.84 , pp. 1780-1786
    • Zhang, B.1    Zhao, H.2    Shi, C.3    Zhou, S.4    Ni, J.5
  • 77
    • 64449088423 scopus 로고    scopus 로고
    • Manganese dioxide as an alternative cathodic catalyst to platinum in microbial fuel cells
    • Zhang, L. X., Liu, C. S., Zhuang, L., Li, W. S., Zhou, S. G., and Zhang, J. T. (2009b). Manganese dioxide as an alternative cathodic catalyst to platinum in microbial fuel cells. Biosensors & Bioelectronics 24, 2825-2829.
    • (2009) Biosensors & Bioelectronics , vol.24 , pp. 2825-2829
    • Zhang, L.X.1    Liu, C.S.2    Zhuang, L.3    Li, W.S.4    Zhou, S.G.5    Zhang, J.T.6
  • 78
    • 77957372857 scopus 로고    scopus 로고
    • Scalable air cathode microbial fuel cells using glass fiber separators, plastic mesh supporters, and graphite fiber brush anodes
    • Zhang, X. Y., Cheng, S. A., Liang, P., Huang, X., and Logan, B. E. (2011). Scalable air cathode microbial fuel cells using glass fiber separators, plastic mesh supporters, and graphite fiber brush anodes. Bioresource Technology 102, 372-375.
    • (2011) Bioresource Technology , vol.102 , pp. 372-375
    • Zhang, X.Y.1    Cheng, S.A.2    Liang, P.3    Huang, X.4    Logan, B.E.5
  • 79
    • 27844504697 scopus 로고    scopus 로고
    • Application of pyrolysed iron(II) phthalocyanine and CoTMPP based oxygen reduction catalysts as cathode materials in microbial fuel cells
    • DOI 10.1016/j.elecom.2005.09.032, PII S1388248105002912
    • Zhao, F., Harnisch, F., Schroder, U., Scholz, F., Bogdanoff, P., and Herrmann, I. (2005). Application of pyrolysed iron(II) phthalocyanine and CoTMPP based oxygen reduction catalysts as cathode materials in microbial fuel cells. Electrochemistry Communications 7, 1405-1410. (Pubitemid 41660204)
    • (2005) Electrochemistry Communications , vol.7 , Issue.12 , pp. 1405-1410
    • Zhao, F.1    Harnisch, F.2    Schroder, U.3    Scholz, F.4    Bogdanoff, P.5    Herrmann, I.6
  • 81
    • 71549117090 scopus 로고    scopus 로고
    • In situ Fentonenhanced cathodic reaction for sustainable increased electricity generation in microbial fuel cells
    • Zhuang, L., Zhou, S. G., Li, Y. T., Liu, T. L., and Huang, D. Y. (2010). In situ Fentonenhanced cathodic reaction for sustainable increased electricity generation in microbial fuel cells. Journal of Power Sources 195, 1379-1382.
    • (2010) Journal of Power Sources , vol.195 , pp. 1379-1382
    • Zhuang, L.1    Zhou, S.G.2    Li, Y.T.3    Liu, T.L.4    Huang, D.Y.5


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.