Wastewater remediation and bioelectricity generation in dual chambered salt bridge microbial fuel cell: A mini-review

被引:1
作者
Iberahim, Nur Izzati [1 ,2 ]
Lutpi, Nabilah Aminah [2 ,3 ]
Ho, Li-Ngee [1 ,2 ]
Wong, Yee-Shian [2 ,3 ]
Ong, Soon-An [2 ,3 ]
Dahalan, Farrah Aini [2 ,3 ]
机构
[1] Univ Malaysia Perlis, Fac Chem Engn Technol, Arau, Perlis, Malaysia
[2] Univ Malaysia Perlis, Ctr Excellence WAREG, Water Res & Environm Sustainabil Growth, Perlis, Malaysia
[3] Univ Malaysia Perlis, Fac Civil Engn & Technol, Kompleks Pusat PengajianJejawi 3,Kawasan Perindust, Arau 02600, Perlis, Malaysia
关键词
bioelectricity production; dual chamber salt bridge; microbial fuel cell; wastewater treatment; ELECTRICITY-GENERATION; COCONUT SHELL; ENHANCEMENT; MEMBRANE; GLUCOSE;
D O I
10.1002/tqem.22240
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The purpose of this article is to assess the feasibility analysis of microbial fuel cells (MFCs), particularly in the configuration of dual chamber salt bridge microbial fuel cell (DCSB-MFC), as a promising approach for simultaneous bioelectricity generation and wastewater remediation. The application of a salt bridge presents an economically viable alternative to the use of a proton exchange membrane, which is known for its high cost, in the construction of MFCs. This arrangement has been demonstrated to offer significant benefits in terms of enhancing the performance of new elements and evaluating operational parameters. However, it also encounters issues related to the total internal resistance (Rint) of the MFCs as well as power density (P). In addition, it has been found that traditional packing materials such activated carbon and gravel demonstrate poor permeability, internal resistance, and slow biofilm growth. Furthermore, there is a necessity to search for electrodes that possess high resistance to corrosion and are cost-effective to achieve optimal bioelectricity generation. Therefore, this article aims to emphasize the research areas that require attention. By addressing these areas, the actual implementation of this configuration can be brought closer to practical implementation.
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页数:10
相关论文
共 44 条
[1]   The evolution of the pore structure of coconut shells during the preparation of coconut shell-based activated carbons [J].
Achaw, Osei-Wusu ;
Afrane, George .
MICROPOROUS AND MESOPOROUS MATERIALS, 2008, 112 (1-3) :284-290
[2]   Experimental and Theoretical Study on the Ability of Microbial Fuel Cell for Electricity Generation [J].
Ali, A. H. ;
Al-Mussawy, H. A. ;
Hussein, M. J. ;
Hamadi, N. J. .
POLLUTION, 2018, 4 (02) :359-368
[3]   Characterization of the Electric Current Generation Potential of the Pseudomonas aeruginosa Using Glucose, Fructose, and Sucrose in Double Chamber Microbial Fuel Cell [J].
Ali, Naeem ;
Anam, Maira ;
Yousaf, Sameen ;
Maleeha, Sehrish ;
Bangash, Zain .
IRANIAN JOURNAL OF BIOTECHNOLOGY, 2017, 15 (04) :216-223
[4]  
Bohari Z.H., 2023, Journal of Advanced Research in Applied Sciences and Engineering Technology, V31, P299
[5]   Electricity generation by direct oxidation of glucose in mediatorless microbial fuel cells [J].
Chaudhuri, SK ;
Lovley, DR .
NATURE BIOTECHNOLOGY, 2003, 21 (10) :1229-1232
[6]  
Drisya C. M., 2017, INT J SCI RES DEV, V5, P2104
[7]  
Fathima N., 2017, INT J INNOVATIVE RES, V6, P1670, DOI [10.15680/IJIRSET.2017.0607302, DOI 10.15680/IJIRSET.2017.0607302]
[8]  
Hagonob M. D., 2021, RECOLETOS MULTIDISCI, V9, P39, DOI [10.32871/rmrj2109.01.04, DOI 10.32871/RMRJ2109.01.04]
[9]   Effect of Anolyte pH on the Performance of a Dual-Chambered Microbial Fuel Cell Operated with Different Biomass Feed [J].
Halim, Md. Abdul ;
Rahman, Md. Owaleur ;
Ibrahim, Mohammad ;
Kundu, Rituparna ;
Biswas, Biplob Kumar .
JOURNAL OF CHEMISTRY, 2021, 2021
[10]   Optimization of pretreatments for the hydrolysis of oil palm empty fruit bunch fiber (EFBF) using enzyme mixtures [J].
Hassan, Osman ;
Ling, Tang Pei ;
Maskat, Mohammad Yusof ;
Illias, Rosli Md. ;
Badri, Khairiah ;
Jahim, Jamaliah ;
Mahadi, Nor Muhammad .
BIOMASS & BIOENERGY, 2013, 56 :137-146