Electric power generation by a submersible microbial fuel cell equipped with a membrane electrode assembly

被引:22
作者
Min, Booki [1 ,2 ]
Poulsen, Finn Willy [3 ]
Thygesen, Anders [4 ]
Angelidaki, Irini [2 ]
机构
[1] Kyung Hee Univ, Dept Environm Sci & Engn, Yongin 446701, Gyeonggi Do, South Korea
[2] Tech Univ Denmark, Dept Environm Engn, DK-2800 Lyngby, Denmark
[3] Tech Univ Denmark, Natl Lab Sustainable Energy, Fuel Cell & Solid State Chem Dept, DK-4000 Roskilde, Denmark
[4] Tech Univ Denmark, Dept Chem & Biochem Engn, Ctr BioProc Engn, DK-4000 Roskilde, Denmark
关键词
Microbial fuel cell; Membrane electrode assembly; Submersible microbial fuel cell; Voltage generation; Electrochemical impedance spectroscopy; WASTE-WATER; CATHODE; PERFORMANCE; CONFIGURATION; TEMPERATURE; TECHNOLOGY; REDUCTION; RECOVERY; ENERGY;
D O I
10.1016/j.biortech.2012.04.097
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Membrane electrode assemblies (MEAs) were incorporated into the cathode chamber of a submersible microbial fuel cell (SMFC). A close contact of the electrodes could produce high power output from SMFC in which anode and cathode electrodes were connected in parallel. In polarization test, the maximum power density was 631 mW/m(2) at current density of 1772 mA/m(2) at 82 Omega. With 180-Omega external resistance, one set of the electrodes on the same side could generate more power density of 832 +/- 4 mW/m(2) with current generation of 1923 +/- 4 mA/m(2). The anode, inclusive a biofilm behaved ohmic, whereas a Tafel type behavior was observed for the oxygen reduction. The various impedance contributions from electrodes, electrolyte and membrane were analyzed and identified by electrochemical impedance spectroscopy. Air flow rate to the cathode chamber affected microbial voltage generation, and higher power generation was obtained at relatively low air flow less than 2 mL/min. (c) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:412 / 417
页数:6
相关论文
共 30 条
[1]   MICROBIAL FUEL-CELLS - ELECTRICITY PRODUCTION FROM CARBOHYDRATES [J].
ALLEN, RM ;
BENNETTO, HP .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 1993, 39 :27-40
[2]   EFFECTS OF LIPIDS ON THERMOPHILIC ANAEROBIC-DIGESTION AND REDUCTION OF LIPID INHIBITION UPON ADDITION OF BENTONITE [J].
ANGELIDAKI, I ;
PETERSEN, SP ;
AHRING, BK .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 1990, 33 (04) :469-472
[3]   Directly applicable microbial fuel cells in aeration tank for wastewater treatment [J].
Cha, Jaehwan ;
Choi, Soojung ;
Yu, Hana ;
Kim, Hyosoo ;
Kim, Changwon .
BIOELECTROCHEMISTRY, 2010, 78 (01) :72-79
[4]   Increasing power generation for scaling up single-chamber air cathode microbial fuel cells [J].
Cheng, Shaoan ;
Logan, Bruce E. .
BIORESOURCE TECHNOLOGY, 2011, 102 (06) :4468-4473
[5]  
Goldblatt J., 2001, INT DICT EVENT MANAG, V2nd
[6]   Microbial fuel cell performance with non-Pt cathode catalysts [J].
HaoYu, Eileen ;
Cheng, Shaoan ;
Scott, Keith ;
Logan, Bruce .
JOURNAL OF POWER SOURCES, 2007, 171 (02) :275-281
[7]   Electricity generation from artificial wastewater using an upflow microbial fuel cell [J].
He, Z ;
Minteer, SD ;
Angenent, LT .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2005, 39 (14) :5262-5267
[8]   An upflow microbial fuel cell with an interior cathode: Assessment of the internal resistance by impedance Spectroscopy [J].
He, Zhen ;
Wagner, Norbert ;
Minteer, Shelley D. ;
Angenent, Largus T. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2006, 40 (17) :5212-5217
[9]   Adaptation to high current using low external resistances eliminates power overshoot in microbial fuel cells [J].
Hong, Yiying ;
Call, Douglas F. ;
Werner, Craig M. ;
Logan, Bruce E. .
BIOSENSORS & BIOELECTRONICS, 2011, 28 (01) :71-76
[10]   Challenges in microbial fuel cell development and operation [J].
Kim, Byung Hong ;
Chang, In Seop ;
Gadd, Geoffrey M. .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2007, 76 (03) :485-494