Microbial fuel cells (MFCs) for bioelectrochemical treatment of different wastewater streams

被引:199
作者
Kumar, Smita S. [1 ]
Kumar, Vivek [1 ]
Malyan, Sandeep K. [2 ]
Sharma, Jyoti [1 ]
Mathimani, Thangavel [3 ]
Maskarenj, Marshal S. [4 ]
Ghosh, Prakash C. [4 ]
Pugazhendhi, Arivalagan [5 ]
机构
[1] Indian Inst Technol Delhi, Ctr Rural Dev & Technol, New Delhi 110016, India
[2] ARO, Inst Soil Water & Environm Sci, Volcani Res Ctr, IL-50250 Bet Dagan, Israel
[3] Natl Inst Technol, Dept Energy & Environm, Tiruchirappalli 620015, Tamil Nadu, India
[4] Indian Inst Technol, Dept Energy Sci & Engn, Mumbai 400076, Maharashtra, India
[5] Ton Duc Thang Univ, Fac Environm & Labour Safety, Innovat Green Prod Synth & Renewable Environm Dev, Ho Chi Minh City, Vietnam
关键词
Microbial fuel cells; Anaerobic sludge; Dye removal; Wastewater treatment; Microorganisms; Scale-up; Integrated technologies; Bio-electrochemical remediation; SIMULTANEOUS ELECTRICITY-GENERATION; SULFATE-REDUCING BACTERIA; LONG-TERM PERFORMANCE; BIOELECTRICITY GENERATION; AIR-CATHODE; ACTIVATED CARBON; AZO DYES; MEMBRANE BIOREACTOR; POWER-GENERATION; TEXTILE DYE;
D O I
10.1016/j.fuel.2019.05.109
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Wastewaters generated from several industrial sources containing organic substrates present a vital basis for harnessing bioenergy. Aerobic wastewater treatment methods, for instance, activated sludge process and trickling filter are unsustainable due to constant energy requirements for aeration, and sludge management. Currently, Microbial Fuel Cell (MFC) technology presents an appropriate alternative for energy positive wastewater treatment and permits synchronized wastewater treatment, bioelectricity production, and resource recovery via bioelectrochemical remediation mediated by electroactive microbes. The added advantage of using MFC technology for effluent treatment is that several bio-based processes including removal of biochemical and chemical oxygen demand, nitrification, denitrification, sulfate removal and removal of heavy metals can be carried out in the same bioreactor. Thus, MFCs can both substitute and complement the conventional energy-intensive technologies for efficient removal as well as the recovery of sulfate, nitrogen, and phosphate without any tertiary treatment. Thus, the present review covers the recent advances in the utilization of microbial fuel cell technology for the removal of organic as well as recalcitrant pollutants from a wide range of industrial and domestic effluents with the simultaneous production of low-cost energy. Further this review discusses the hybrid systems developed in integration with conventional treatment systems to make the process energy neutral and thus pave a way to scale-up the MFCs for sustainable wastewater treatment. Moreover, some critical challenges related to the field applications of microbial fuel cell technology dealing with a wide range of effluents, have also been analyzed and presented.
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页数:17
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共 193 条
[1]   Microalgae-bacteria biofilms: a sustainable synergistic approach in remediation of acid mine drainage [J].
Abinandan, Sudharsanam ;
Subashchandrabose, Suresh R. ;
Venkateswarlu, Kadiyala ;
Megharaj, Mallavarapu .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2018, 102 (03) :1131-1144
[2]   Improved recovery of bioenergy and osmotic water in an osmotic microbial fuel cell using micro-diffuser assisted marine aerobic biofilm on cathode [J].
Al-Marnun, Abdullah ;
Baawain, Mahad Said ;
Dhar, Bipro Ranjan ;
Kim, In S. .
BIOCHEMICAL ENGINEERING JOURNAL, 2017, 128 :235-242
[3]   A Clostridium Group IV Species Dominates and Suppresses a Mixed Culture Fermentation by Tolerance to Medium Chain Fatty Acids Products [J].
Andersen, Stephen J. ;
De Groof, Vicky ;
Khor, Way Cern ;
Roume, Hugo ;
Props, Ruben ;
Coma, Marta ;
Rabaey, Korneel .
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2017, 5
[4]   Architectural engineering of bioelectrochemical systems from the perspective of polymeric membrane separators: A comprehensive update on recent progress and future prospects [J].
Bakonyi, Peter ;
Kook, Laszlo ;
Kumar, Gopalakrishnan ;
Toth, Gabor ;
Rozsenberszki, Tamas ;
Dinh Duc Nguyen ;
Chang, Soon Woong ;
Zhen, Guangyin ;
Belafi-Bako, Katalin ;
Nemestothy, Nandor .
JOURNAL OF MEMBRANE SCIENCE, 2018, 564 :508-522
[5]   Development of bioelectrochemical systems using various biogas fermenter effluents as inocula and municipal waste liquor as adapting substrate [J].
Bakonyi, Peter ;
Kook, Laszlo ;
Keller, Eniko ;
Belafi-Bako, Katalin ;
Rozsenberszki, Tamas ;
Saratale, Ganesh Dattatraya ;
Dinh Duc Nguyen ;
Banu, J. Rajesh ;
Nemestothy, Nandor .
BIORESOURCE TECHNOLOGY, 2018, 259 :75-82
[6]   Energy production from waste: Evaluation of anaerobic digestion and bioelectrochemical systems based on energy efficiency and economic factors [J].
Beegle, Jeffrey R. ;
Borole, Abhijeet P. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 96 :343-351
[7]   Biomass derived activated carbon cathode performance for sustainable power generation from Microbial Fuel Cells [J].
Bose, Debajyoti ;
Sridharan, Shanmathi ;
Dhawan, Himanshi ;
Vijay, Parthasarthy ;
Gopinath, Margavelu .
FUEL, 2019, 236 :325-337
[8]   Simultaneous degradation of toxic refractory organic pesticide and bioelectricity generation using a soil microbial fuel cell [J].
Cao, Xian ;
Song, Hai-liang ;
Yu, Chun-yan ;
Li, Xian-ning .
BIORESOURCE TECHNOLOGY, 2015, 189 :87-93
[9]   A New Method for Water Desalination Using Microbial Desalination Cells [J].
Cao, Xiaoxin ;
Huang, Xia ;
Liang, Peng ;
Xiao, Kang ;
Zhou, Yingjun ;
Zhang, Xiaoyuan ;
Logan, Bruce E. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2009, 43 (18) :7148-7152
[10]   Explore various co-substrates for simultaneous electricity generation and Congo red degradation in air-cathode single-chamber microbial fuel cell [J].
Cao, Yunqing ;
Hu, Yongyou ;
Sun, Jian ;
Hou, Bin .
BIOELECTROCHEMISTRY, 2010, 79 (01) :71-76