Role and Important Properties of a Membrane with Its Recent Advancement in a Microbial Fuel Cell

被引:40
作者
Banerjee, Aritro [1 ]
Calay, Rajnish Kaur [1 ]
Eregno, Fasil Ejigu [1 ]
机构
[1] UiT Arctic Univ Norway, Fac Engn Sci & Technol, N-8514 Narvik, Norway
基金
欧盟地平线“2020”;
关键词
microbial fuel cell; ion-exchange membrane; non-fluorinated membrane; perfluorosulfonic acid membrane; composite membrane; membrane properties; membrane material; membrane shape; scaleup challenges; PROTON-EXCHANGE MEMBRANE; HEXAVALENT CHROMIUM REDUCTION; ELECTRICITY-GENERATION; WASTE-WATER; SEPARATING BARRIER; COMPOSITE MEMBRANE; ENERGY RECOVERY; PERFORMANCE; NAFION; BIOELECTRICITY;
D O I
10.3390/en15020444
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
Microbial fuel cells (MFC) are an emerging technology for wastewater treatment that utilizes the metabolism of microorganisms to generate electricity from the organic matter present in water directly. The principle of MFC is the same as hydrogen fuel cell and has three main components (i.e., anode, cathode, and proton exchange membrane). The membrane separates the anode and cathode chambers and keeps the anaerobic and aerobic conditions in the two chambers, respectively. This review paper describes the state-of-the-art membrane materials particularly suited for MFC and discusses the recent development to obtain robust, sustainable, and cost-effective membranes. Nafion 117, Flemion, and Hyflon are the typical commercially available membranes used in MFC. Use of non-fluorinated polymeric membrane materials such as sulfonated silicon dioxide (S-SiO2) in sulfonated polystyrene ethylene butylene polystyrene (SSEBS), sulfonated polyether ether ketone (SPEEK) and graphene oxide sulfonated polyether ether ketone (GO/SPEEK) membranes showed promising output and proved to be an alternative material to Nafion 117. There are many challenges to selecting a suitable membrane for a scaled-up MFC system so that the technology become technically and economically viable.
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页数:15
相关论文
共 75 条
[1]   Anaerobic microbial fuel cell treating combined industrial wastewater: Correlation of electricity generation with pollutants [J].
Abbasi, Umara ;
Jin, Wang ;
Pervez, Arshid ;
Bhatti, Zulfiqar Ahmad ;
Tariq, Madiha ;
Shaheen, Shahida ;
Iqbal, Akhtar ;
Mahmood, Qaisar .
BIORESOURCE TECHNOLOGY, 2016, 200 :1-7
[2]   Continuous and scalable applications of microbial fuel cells: a critical review [J].
Abdallah, Mohamed ;
Feroz, Sainab ;
Alani, Sama ;
Sayed, Enas Taha ;
Shanableh, Abdallah .
REVIEWS IN ENVIRONMENTAL SCIENCE AND BIO-TECHNOLOGY, 2019, 18 (03) :543-578
[3]  
[Anonymous], 2010, IUP J CHEM
[4]   Performance of sulfonated polystyrene-ethylene-butylene-polystyrene membrane in microbial fuel cell for bioelectricity production [J].
Ayyaru, Sivasankaran ;
Letchoumanane, Pournan ;
Dharmalingam, Sangeetha ;
Stanislaus, Amal Raj .
JOURNAL OF POWER SOURCES, 2012, 217 :204-208
[5]  
Banu J.R., 2017, Waste Biomass Management A Holistic Approach, DOI DOI 10.1007/978-3-319-49595-8_3
[6]   HYDRODYNAMIC MODEL FOR ELECTROOSMOSIS [J].
BRESLAU, BR ;
MILLER, IF .
INDUSTRIAL & ENGINEERING CHEMISTRY FUNDAMENTALS, 1971, 10 (04) :554-&
[7]   Mass transport through a proton exchange membrane (Nafion) in microbial fuel cells [J].
Chae, Kyu Jung ;
Choi, Mijin ;
Ajayi, Folusho F. ;
Park, Wooshin ;
Chang, In Seop ;
Kim, In S. .
ENERGY & FUELS, 2008, 22 (01) :169-176
[8]   Methanogenesis control by employing various environmental stress conditions in two-chambered microbial fuel cells [J].
Chae, Kyu-Jung ;
Choi, Mi-Jin ;
Kim, Kyoung-Yeol ;
Ajayi, F. F. ;
Park, Woosin ;
Kim, Chang-Won ;
Kim, In S. .
BIORESOURCE TECHNOLOGY, 2010, 101 (14) :5350-5357
[9]  
Cohen B., 1931, J BACTERIOL, V21, P18
[10]   Proton conductors and their applications: A tentative historical overview of the early researches [J].
Colomban, Philippe .
SOLID STATE IONICS, 2019, 334 :125-144