Anolyte recirculation effects in buffered and unbuffered single-chamber air-cathode microbial fuel cells

被引:28
作者
Zhang, Liang [1 ,2 ]
Zhu, Xun [1 ,2 ]
Kashima, Hiroyuki [3 ]
Li, Jun [1 ,2 ]
Ye, Ding-ding [1 ,2 ]
Liao, Qiang [1 ,2 ]
Regan, John M. [3 ]
机构
[1] Chongqing Univ, Key Lab Low Grade Energy Utilizat Technol & Syst, Minist Educ, Chongqing 40003, Peoples R China
[2] Chongqing Univ, Inst Engn Thermophys, Chongqing 400030, Peoples R China
[3] Penn State Univ, Dept Civil & Environm Engn, University Pk, PA 16802 USA
关键词
Microbial fuel cell; Bufferless; Anolyte recirculation; Proton transfer; Oxygen transfer; DOMESTIC WASTE-WATER; PROTON-EXCHANGE MEMBRANE; ELECTRICITY-GENERATION; POWER-GENERATION; BIOELECTROCHEMICAL SYSTEMS; PERFORMANCE; BIOFILM; TRANSPORT; REDUCTION; COMMUNITY;
D O I
10.1016/j.biortech.2014.11.106
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Two identical microbial fuel cells (MFCs) with a floating air-cathode were operated under either buffered (MFC-B) or bufferless (MFC-BL) conditions to investigate anolyte recirculation effects on enhancing proton transfer. With an external resistance of 50 X and recirculation rate of 1.0 ml/min, MFC-BL had a 27% lower voltage (9.7% lower maximal power density) but a 64% higher Coulombic efficiency (CE) than MFC-B. MFC-B had a decreased voltage output, batch time, and CE with increasing recirculation rate resulting from more oxygen transfer into the anode. However, increasing the recirculation rate within a low range significantly enhanced proton transfer in MFC-BL, resulting in a higher voltage output, a longer batch time, and a higher CE. A further increase in recirculation rate decreased the batch time and CE of MFC-BL due to excess oxygen transfer into anode outweighing the proton-transfer benefits. The unbuffered MFC had an optimal recirculation rate of 0.35 ml/min. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:26 / 34
页数:9
相关论文
共 35 条
[1]   Saline catholytes as alternatives to phosphate buffers in microbial fuel cells [J].
Ahn, Yongtae ;
Logan, Bruce E. .
BIORESOURCE TECHNOLOGY, 2013, 132 :436-439
[2]   A multi-electrode continuous flow microbial fuel cell with separator electrode assembly design [J].
Ahn, Yongtae ;
Logan, Bruce E. .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2012, 93 (05) :2241-2248
[3]   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
[4]   Litre-scale microbial fuel cells operated in a complete loop [J].
Clauwaert, Peter ;
Mulenga, Schalla ;
Aelterman, Peter ;
Verstraete, Willy .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2009, 83 (02) :241-247
[5]   Marine floating microbial fuel cell involving aerobic biofilm on stainless steel cathodes [J].
Erable, B. ;
Lacroix, R. ;
Etcheverry, L. ;
Feron, D. ;
Delia, M. L. ;
Bergel, A. .
BIORESOURCE TECHNOLOGY, 2013, 142 :510-516
[6]   Sustainable power generation in microbial fuel cells using bicarbonate buffer and proton transfer mechanisms [J].
Fan, Yanzhen ;
Hu, Hongqiang ;
Liu, Hong .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2007, 41 (23) :8154-8158
[7]   Treatment of carbon fiber brush anodes for improving power generation in air-cathode microbial fuel cells [J].
Feng, Yujie ;
Yang, Qiao ;
Wang, Xin ;
Logan, Bruce E. .
JOURNAL OF POWER SOURCES, 2010, 195 (07) :1841-1844
[8]   Novel strategy for three-dimensional real-time imaging of microbial fuel cell communities: monitoring the inhibitory effects of proton accumulation within the anode biofilm [J].
Franks, Ashley E. ;
Nevin, Kelly P. ;
Jia, Hongfei ;
Izallalen, Mounir ;
Woodard, Trevor L. ;
Lovley, Derek R. .
ENERGY & ENVIRONMENTAL SCIENCE, 2009, 2 (01) :113-119
[9]   Sequential anode-cathode configuration improves cathodic oxygen reduction and effluent quality of microbial fuel cells [J].
Freguia, Stefano ;
Rabaey, Korneel ;
Yuan, Zhiguo ;
Keller, Juerg .
WATER RESEARCH, 2008, 42 (6-7) :1387-1396
[10]   Operational parameters affecting the performance of a mediator-less microbial fuel cell [J].
Gil, GC ;
Chang, IS ;
Kim, BH ;
Kim, M ;
Jang, JK ;
Park, HS ;
Kim, HJ .
BIOSENSORS & BIOELECTRONICS, 2003, 18 (04) :327-334