| Literature DB >> 31128542 |
Fei Xu1, De-Long Ouyang1, Eldon R Rene2, How Yong Ng3, Ling-Ling Guo4, Ya-Jie Zhu1, Lu-Lu Zhou1, Qing Yuan1, Ming-Sheng Miao1, Qian Wang1, Qiang Kong5.
Abstract
The use of constructed wetlands in combination with microbial fuel cells (CW-MFC) to treat saline wastewater may enhance electricity production by increasing the ionic strength, reducing internal resistance and stimulating microbes to accelerate electron transfer. In this study, salinity did not significantly inhibit the removal of TP and COD, but TN and NH4+-N removal efficiencies during saline wastewater treatment (ST) were significantly lower than during non-saline wastewater treatment (NT). However, salinity significantly increased the power density (16.4 mW m-2 in ST and 3.9 mW m-2 in NT, a 4-fold enhancement) by increasing the electron transfer rate and reducing internal resistance (140.29 Ω in ST and 415.21 Ω in NT). The peptides in extracellular polymeric substances (EPS) acted as electron shuttles to promote the migration of electrons and protons in ST. From start-up to stable operation, though the microorganisms in ST were reduced in diversity relative to NT, the proportion of electrochemically active bacteria (EAB), such as Ochrobactrum, significantly increased (p < 0.05) and gradually predominated in the microbial community.Entities:
Keywords: Bioelectricity production; Constructed wetland; Microbial fuel cell; Saline wastewater
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Year: 2019 PMID: 31128542 DOI: 10.1016/j.biortech.2019.121462
Source DB: PubMed Journal: Bioresour Technol ISSN: 0960-8524 Impact factor: 9.642