TY - JOUR
T1 - Limitation of voltage reversal in the degradation of azo dye by a stacked double-anode microbial fuel cell and characterization of the microbial community structure
AU - Cao, Xian
AU - Wang, Hui
AU - Long, Xizi
AU - Nishimura, Osamu
AU - Li, Xianning
N1 - Funding Information:
This work was supported by the Major Science and Technology Project of Water Pollution Control and Management in China ( 2017ZX07202004-005 ), the Provincial Natural Science Foundation of Jiangsu, China ( BK20171351 ), the Japan Society for the Promotion of Science [P19056] and [P20105] , the Natural Science Basic Research Program of Shaanxi (Program No. 2020JQ-617 ) and the Scientific Research Foundation of the Graduate School of Southeast University for financial support.
Funding Information:
This work was supported by the Major Science and Technology Project of Water Pollution Control and Management in China (2017ZX07202004-005), the Provincial Natural Science Foundation of Jiangsu, China (BK20171351), the Japan Society for the Promotion of Science [P19056] and [P20105], the Natural Science Basic Research Program of Shaanxi (Program No.2020JQ-617) and the Scientific Research Foundation of the Graduate School of Southeast University for financial support.
Publisher Copyright:
© 2020 Elsevier B.V.
PY - 2021/2/1
Y1 - 2021/2/1
N2 - In this study, two double-anode microbial fuel cells (MFCs) were connected in series for degradation of the azo dye reactive brilliant red X-3B. After the series connection, the electricity generation of one of the MFCs decreased, and the other was not affected too much. Due to the special structure in the double-anode MFC reduced the imbalanced performance between the MFC units, the occurrence of voltage reversal was limited. The removal efficiencies in two MFC reactors were not consistent after the series connection, the results showed that the MFC with the reduced electricity generation had the higher removal efficiencies, it was 12.90, 11.66, and 40.05% higher than in the MFC in which the power generation capacity was not affected after the series connection, the MFC without serial connection, and the control group, respectively. Meanwhile, the microbial communities related to the degradation of refractory organic compounds increased and related to electricity generation decreased in the MFC with the reduced electricity generation, the changes of the microbial communities were consistent with its electricity generation and the removal efficiencies. The degradation products in the effluent from two MFC units showed that had the products generated from the MFC with the reduced electricity generation had simpler structures comparing the other MFC unit.
AB - In this study, two double-anode microbial fuel cells (MFCs) were connected in series for degradation of the azo dye reactive brilliant red X-3B. After the series connection, the electricity generation of one of the MFCs decreased, and the other was not affected too much. Due to the special structure in the double-anode MFC reduced the imbalanced performance between the MFC units, the occurrence of voltage reversal was limited. The removal efficiencies in two MFC reactors were not consistent after the series connection, the results showed that the MFC with the reduced electricity generation had the higher removal efficiencies, it was 12.90, 11.66, and 40.05% higher than in the MFC in which the power generation capacity was not affected after the series connection, the MFC without serial connection, and the control group, respectively. Meanwhile, the microbial communities related to the degradation of refractory organic compounds increased and related to electricity generation decreased in the MFC with the reduced electricity generation, the changes of the microbial communities were consistent with its electricity generation and the removal efficiencies. The degradation products in the effluent from two MFC units showed that had the products generated from the MFC with the reduced electricity generation had simpler structures comparing the other MFC unit.
KW - Azo dye
KW - Double-anode
KW - Microbial community
KW - Series connection
KW - Stacked microbial fuel cell
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U2 - 10.1016/j.scitotenv.2020.142454
DO - 10.1016/j.scitotenv.2020.142454
M3 - Article
C2 - 33254847
AN - SCOPUS:85091794124
SN - 0048-9697
VL - 754
JO - Science of the Total Environment
JF - Science of the Total Environment
M1 - 142454
ER -