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利用生物炭作为阳极的污泥微生物燃料电池促进啤酒废水的生物修复、生物电能的产生和微生物群落的转移。

Promoting bioremediation of brewery wastewater, production of bioelectricity and microbial community shift by sludge microbial fuel cells using biochar as anode.

机构信息

School of Life Sciences, Qufu Normal University, Qufu 273165, PR China.

School of Life Sciences, Qufu Normal University, Qufu 273165, PR China.

出版信息

Sci Total Environ. 2024 Jun 15;929:172418. doi: 10.1016/j.scitotenv.2024.172418. Epub 2024 Apr 15.

DOI:10.1016/j.scitotenv.2024.172418
PMID:38631622
Abstract

Seeking low-cost and eco-friendly electrode catalyst of microbial fuel cell (MFC) reactor has received extensive attention in recent decades. In this study, a sludge MFC was coupled with biochar-modified-anode (BC-300, BC-400, and BC-500) for actual brewery wastewater treatment. The physicochemical properties of biochar largely depended on the pyrolysis temperature, further affecting the removal efficiency of wastewater indicators. BC-400 MFC proved to be efficient for TN and NH-N removal, while the maximum removal efficiencies of COD and TP were achieved by BC-500 MFC, reaching respectively 97.14 % and 89.67 %. Biochar could promote the degradation of dissolved organic matter (DOM) in wastewater by increasing the electrochemical performances of MFC. The maximum output voltage of BC-400 MFC reached 410.24 mV, and the maximum electricity generation of 108.05 mW/m was also obtained, surpassing the pristine MFC (BCC-MFC) by 4.67 times. High-throughput sequencing results illustrated that the enrichment of electrochemically active bacteria (EAB) and functional bacteria (Longilinea, Denitratisoma, and Pseudomonas) in BC-MFCs, contributed to pollutants degradation and electron transfer. Furthermore, biochar affected directly the electrical conductivity of wastewater, simultaneously changing microbial community composition of MFC anode. Considering both enhanced removal efficiency of pollutants and increased power generation, the results of this study would offer technical reference for the application of biochar as MFC catalyst for brewery wastewater treatment.

摘要

寻求低成本和环保的微生物燃料电池(MFC)反应器电极催化剂在近几十年来受到了广泛关注。在这项研究中,将污泥 MFC 与经过生物炭改性的阳极(BC-300、BC-400 和 BC-500)耦合,用于实际的啤酒厂废水处理。生物炭的物理化学性质在很大程度上取决于热解温度,进一步影响废水指标的去除效率。BC-400 MFC 被证明对 TN 和 NH4-N 的去除有效,而 BC-500 MFC 则达到了 COD 和 TP 的最大去除效率,分别达到了 97.14%和 89.67%。生物炭可以通过提高 MFC 的电化学性能来促进废水中溶解有机物(DOM)的降解。BC-400 MFC 的最大输出电压达到 410.24 mV,最大功率输出也达到了 108.05 mW/m,比原始 MFC(BCC-MFC)提高了 4.67 倍。高通量测序结果表明,BC-MFC 中电化学活性细菌(EAB)和功能细菌(Longilinea、Denitratisoma 和 Pseudomonas)的富集有助于污染物的降解和电子传递。此外,生物炭直接影响废水的电导率,同时改变 MFC 阳极的微生物群落组成。考虑到污染物去除效率的提高和发电量的增加,本研究结果可为生物炭作为 MFC 催化剂用于啤酒厂废水处理提供技术参考。

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