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Performance of low temperature Microbial Fuel Cells (MFCs) catalyzed by mixed bacterial consortia

机译:用混合细菌组成催化的低温微生物燃料电池(MFC)的性能

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摘要

Microbial Fuel Cells (MFCs) are a promising technology for treating wastewater in a sustainable manner. In potential applications, low temperatures substantially reduce MFC performance. To better understand the effect of temperature and particularly how bioanodes respond to changes in temperature, we investigated the current generation of mixed-culture and pure-culture MFCs at two low temperatures, 10 degrees C and 5 degrees C. The results implied that the mixed-culture MFC sustainably performed better than the pure-culture (Shewanella) MFC at 10 degrees C, but the electrogenic activity of anodic bacteria was substantially reduced at the lower temperature of 5 degrees C. At 10 degrees C, the maximum output voltage generated with the mixed-culture was 540-560 mV, which was 10%-15% higher than that of Shewanella MFCs. The maximum power density reached 465.3 +/- 5.8 mW/m(2) for the mixed-culture at 10 degrees C, while only 68.7 +/- 3.7 mW/m(2) was achieved with the pure-culture. It was shown that the anodic biofilm of the mixed-culture MFC had a lower overpotential and resistance than the pure-culture MFC. Phylogenetic analysis disclosed the prevalence of Geobacter and Pseudomonas rather than Shewanella in the mixed-culture anodic biofilm, which mitigated the increase of resistance or overpotential at low temperatures. (C) 2016 The Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences. Published by Elsevier B.V.
机译:微生物燃料电池(MFC)是以可持续方式处理废水的有希望的技术。在潜在应用中,低温显着降低了MFC性能。为了更好地了解温度的影响,特别是生物脉冲如何响应温度变化,我们研究了在两个低温下的混合培养和纯培养MFC的目前产生了10摄氏度和5℃。结果暗示混合的结果-CultureMFC可持续地表现优于纯培养(肺乳蛋白)MFC在10℃下更好地进行,但在10摄氏度下,阳极细菌的电力活性在5℃的较低温度下显着降低,最大输出电压混合培养为540-560mV,比雪兰菜MFC高10%-15%。对于10℃的混合培养,最大功率密度达到465.3 +/- 5.8mW / m(2),而纯培养物只能实现68.7 +/- 3.7mW / m(2)。结果表明,混合培养MFC的阳极生物膜具有比纯培养MFC的过电位和电阻较低。系统发育分析公开了大杆菌和假单胞菌的患病率,而不是混合培养阳极生物膜中的肺乳腺素,这减轻了低温下的抗性或过电位的增加。 (c)2016中国科学院生态环境科学研究中心。 elsevier b.v出版。

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