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温度、接种物与底物:微生物燃料电池中电活性菌群、多样性及性能的对比

Temperature, inocula and substrate: Contrasting electroactive consortia, diversity and performance in microbial fuel cells.

作者信息

Heidrich E S, Dolfing J, Wade M J, Sloan W T, Quince C, Curtis T P

机构信息

School of Civil Engineering and Geosciences, Newcastle University, Newcastle upon Tyne NE1 7RU, UK.

School of Civil Engineering and Geosciences, Newcastle University, Newcastle upon Tyne NE1 7RU, UK.

出版信息

Bioelectrochemistry. 2018 Feb;119:43-50. doi: 10.1016/j.bioelechem.2017.07.006. Epub 2017 Jul 22.

DOI:10.1016/j.bioelechem.2017.07.006
PMID:28910698
Abstract

The factors that affect microbial community assembly and its effects on the performance of bioelectrochemical systems are poorly understood. Sixteen microbial fuel cell (MFC) reactors were set up to test the importance of inoculum, temperature and substrate: Arctic soil versus wastewater as inoculum; warm (26.5°C) versus cold (7.5°C) temperature; and acetate versus wastewater as substrate. Substrate was the dominant factor in determining performance and diversity: unexpectedly the simple electrogenic substrate delivered a higher diversity than a complex wastewater. Furthermore, in acetate fed reactors, diversity did not correlate with performance, yet in wastewater fed ones it did, with greater diversity sustaining higher power densities and coulombic efficiencies. Temperature had only a minor effect on power density, (Q: 2 and 1.2 for acetate and wastewater respectively): this is surprising given the well-known temperature sensitivity of anaerobic bioreactors. Reactors were able to operate at low temperature with real wastewater without the need for specialised inocula; it is speculated that MFC biofilms may have a self-heating effect. Importantly, the warm acetate fed reactors in this study did not act as direct model for cold wastewater fed systems. Application of this technology will encompass use of real wastewater at ambient temperatures.

摘要

影响微生物群落组装的因素及其对生物电化学系统性能的影响目前仍知之甚少。本研究设置了16个微生物燃料电池(MFC)反应器,以测试接种物、温度和底物的重要性:分别采用北极土壤与废水作为接种物;温暖(26.5°C)与寒冷(7.5°C)的温度;以及醋酸盐与废水作为底物。底物是决定性能和多样性的主要因素:出乎意料的是,简单的产电底物比复杂的废水具有更高的多样性。此外,在以醋酸盐为底物的反应器中,多样性与性能不相关,但在以废水为底物的反应器中,二者相关,更高的多样性维持了更高的功率密度和库仑效率。温度对功率密度的影响较小(醋酸盐和废水分别为2和1.2):考虑到厌氧生物反应器对温度的敏感性是众所周知的,这一结果令人惊讶。反应器能够在低温下使用实际废水运行,无需特殊接种物;据推测,MFC生物膜可能具有自热效应。重要的是,本研究中温暖的以醋酸盐为底物的反应器不能直接作为寒冷的以废水为底物的系统的模型。该技术的应用将包括在环境温度下使用实际废水。

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