| Literature DB >> 29635204 |
Youzhao Wang1, Yuan Pan2, Tong Zhu3, Aijie Wang4, Yalun Lu1, Liting Lv1, Kuo Zhang1, Zijun Li1.
Abstract
Feasibility and superiority of the bioelectrochemical system integrated with biocontact oxidation (BES-BCO) for degradation and/or mineralization of azo dyes have been confirmed. In this study, the effects of hydraulic retention time (HRT), applied voltage, and dissolved oxygen (DO) concentration at the bioanode on the performance of BES-BCO and traditional BES were investigated. Using the response surface methodology, the optimum values of HRT, applied voltage, and DO concentration at the bioanode of BES-BCO were investigated to obtain the maximum decolouration and COD removal efficiency and minimum specific energy consumption (SEC). The microbial community structure in BES-BCO was studied for analyzing the change following the introduction of oxygen. The optimised solution was an applied voltage of 0.59V, HRT of 12h, and DO concentration of 0.96mg/L at the bioanode. Under such conditions, the DE, COD removal efficiency, and SEC values were 94.62±0.63%, 89.12±0. 32%, and 687.57±3.86J/g, respectively. In addition, after changing from BES to BES-BCO, the bacterial community structure of the bioanode underwent significant changes. Several aerobic aniline-degrading bacteria and anode-respiration bacteria (ARB) were found to dominate the community of the anode biofilm. The results showed that the removal of azo dye degradation by-products was closely correlated with the o-bioanode and the BCO bacterial community structure.Entities:
Keywords: Azo dye removal; Bio-contact oxidation; Bioelectrochemical systems; Microbial community structure; Response surface methodology
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Year: 2018 PMID: 29635204 DOI: 10.1016/j.scitotenv.2018.03.346
Source DB: PubMed Journal: Sci Total Environ ISSN: 0048-9697 Impact factor: 7.963