The three-compartment microbial fuel cell: a new sustainable approach to bioelectricity generation from lignocellulosic biomass

被引:33
作者
Krishnaraj, R. Navanietha [1 ]
Berchmans, Sheela [2 ]
Pal, Parimal [1 ]
机构
[1] Natl Inst Technol, Dept Chem Engn, Durgapur 713209, W Bengal, India
[2] CSIR Cent Electrochem Res Inst, Karaikkudi 630006, Tamil Nadu, India
关键词
Lignocellulose; Sugar bagasse; Corn cob; Microbial fuel cell; Coulombic efficiency; Internal resistance; ELECTRON-TRANSFER; ENERGY; PRETREATMENT; CONVERSION; FERMENTATION; VALORIZATION; DEGRADATION; CELLULOSE; COMPOST;
D O I
10.1007/s10570-014-0463-4
中图分类号
TB3 [工程材料学]; TS [轻工业、手工业、生活服务业];
学科分类号
0805 ; 080502 ; 0822 ;
摘要
Herein, we report a new strategy for the simultaneous degradation of lignocellulosic biomass and bioelectricity generation using a novel three-chamber microbial fuel cell (MFC). Oscillatoria annae, a freshwater cyanobacterium, was used for the hydrolysis of cellulose to glucose. The electrocatalytic activity of the coculture of Acetobacter aceti and Gluconobacter roseus was used to oxidize the glucose for current generation in the MFC. Carbon felt was used as the anode and cathode material. Lignocellulosic materials such as sugarcane bagasse and corn cob were used as substrates. The performances of the MFC with two different substrates were analyzed by polarization studies, coulombic efficiency, percentage of COD removal and internal resistance. The three-chamber MFC produced a maximum power output of 8.78 W/m(3) at 20.95 A/m(3) and 6.73 W/m(3) at 17.28 A/m(3) with sugarcane bagasse and corn cob as substrates, respectively.
引用
收藏
页码:655 / 662
页数:8
相关论文
共 41 条
[1]  
[Anonymous], WOOD
[2]   Degradation of cellulose by basidiomycetous fungi [J].
Baldrian, Petr ;
Valaskova, Vendula .
FEMS MICROBIOLOGY REVIEWS, 2008, 32 (03) :501-521
[3]   Metamorphosis of pathogen to electrigen at the electrode/electrolyte interface: Direct electron transfer of Staphylococcus aureus leading to superior electrocatalytic activity [J].
Bhuvaneswari, A. ;
Navanietha Krishnaraj, R. ;
Berchmans, Sheela .
ELECTROCHEMISTRY COMMUNICATIONS, 2013, 34 :25-28
[4]   Reduction of Carbon Dioxide Emission by Using Microbial Fuel Cells during Wastewater Treatment [J].
Chen, Bor Yann ;
Liu, Shi-Qi ;
Hung, Jhao Yin ;
Shiau, Tz Jau ;
Wang, Yu-Min .
AEROSOL AND AIR QUALITY RESEARCH, 2013, 13 (01) :266-274
[5]   Hydrolysis of lignocellulosic feedstock by novel cellulases originating from Pseudomonas sp CL3 for fermentative hydrogen production [J].
Cheng, Chieh-Lun ;
Chang, Jo-Shu .
BIORESOURCE TECHNOLOGY, 2011, 102 (18) :8628-8634
[6]   Bioelectro-catalytic valorization of dark fermentation effluents by acetate oxidizing bacteria in bioelectrochemical system (BES) [J].
ElMekawy, Ahmed ;
Srikanth, Sandipam ;
Vanbroekhoven, Karolien ;
De Wever, Heleen ;
Pant, Deepak .
JOURNAL OF POWER SOURCES, 2014, 262 :183-191
[7]   Valorization of Cereal Based Biorefinery Byproducts: Reality and Expectations [J].
ElMekawy, Ahmed ;
Diels, Ludo ;
De Wever, Heleen ;
Pant, Deepak .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2013, 47 (16) :9014-9027
[8]   Quantification of the Internal Resistance Distribution of Microbial Fuel Cells [J].
Fan, Yanzhen ;
Sharbrough, Evan ;
Liu, Hong .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2008, 42 (21) :8101-8107
[9]   The effects of a microwave heating method on the production of activated carbon from agricultural waste: A review [J].
Hesas, Roozbeh Hoseinzadeh ;
Daud, Wan Mohd Ashri Wan ;
Sahu, J. N. ;
Arami-Niya, Arash .
JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2013, 100 :1-11
[10]   Microbial Fuel Cells for Robotics: Energy Autonomy through Artificial Symbiosis [J].
Ieropoulos, Ioannis A. ;
Greenman, John ;
Melhuish, Chris ;
Horsfield, Ian .
CHEMSUSCHEM, 2012, 5 (06) :1020-1026