微生物燃料电池
废水
生物能源
Β-变形菌
制浆造纸工业
污水处理
营养物
生物量(生态学)
藻类
生物膜
水力停留时间
生物燃料
微生物种群生物学
化学
环境化学
环境科学
环境工程
生物
植物
细菌
生物技术
生态学
放线菌门
电极
物理化学
工程类
16S核糖体RNA
阳极
遗传学
作者
Zhigang Yang,Haiyan Pei,Qingjie Hou,Liqun Jiang,Lijie Zhang,Changliang Nie
标识
DOI:10.1016/j.cej.2017.09.096
摘要
An algae biofilm microbial fuel cell (ABMFC) was established by integrating an algal biofilm (AB) with a microbial fuel cell (MFC) to facilitate the system’s operation for nutrient removal and bioenergy generation. In batch mode, the removal efficiencies of TN, TP and COD in the ABMFC reached 96.0%, 91.5% and 80.2%, respectively, which performed much better than MFC or AB alone. The highest power density of the ABMFC (62.93 mW·m−2) was 18% higher than that of the MFC (52.33 mW·m−2), and a lipid productivity of 6.26 mg·L−1·d−1 could be obtained simultaneously. High-throughput sequencing revealed that Chlorobia and Deltaproteobacteria grew well in the symbiotic ABMFC system. Betaproteobacteria, versatile in organic pollutant degradation, was inhibited by algal biofilm; it may be due to the nutrients competitions between algae and Betaproteobacteria. It was proved that the ABMFC system was able to handle real, complex, variable wastewater in the continuous flow trials and a total energy of 0.094 kWh·per m3 of wastewater was obtained in the process. This study not only developed a wastewater treatment and energy recovery method but also explored a better understanding of the mechanisms for the algae-bacteria system.
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