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Shift of biofilm and suspended bacterial communities with changes in anode potential in a microbial electrolysis cell treating primary sludge

机译:在处理初级污泥的微生物电解池中,生物膜的移动和悬浮细菌群落的阳极电位变化

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This study, for the first time, documented microbial community shifts in response to the changes in anode potential in a microbial electrolysis cell (MEC) operated with primary sludge. At an anode potential of 0.4 V vs. Ag/AgCl, the MEC showed COD and VSS removal efficiencies of 73 +/- 1% and 75 +/- 2%, respectively. The volumetric current density and specific hydrogen production rate were 23 +/- 12 A/m(3), and 145 +/- 4.1 L/m(3)-d, respectively. The anodic microbial community was consisted of various fermentative/hydrolytic bacteria (e.g., Bacteroides and Dysgonomonas) and anode-respiring bacteria (Geobacter), while different hydrolytic/fermentative bacteria were abundant in suspension. The MEC showed substantially inferior performance along with a higher accumulation of various volatile fatty acids when the anode potential was switched to more positive values (0 V and +0.4 V). Both biofilms and suspended communities were also shifted when the anode potential was changed. Notably, at +0.4 V, Geobacter genus entirely disappeared from the biofilms, while Paludibacter species (known fermentative bacteria) were selectively enriched in biofilms. Also, the relative abundance of genus Bacteroides (known hydrolytic bacteria) substantially decreased in both biofilms and suspension, which was correlated with the inferior hydrolysis of VSS. Quantitative comparison of biofilms and suspended microbial communities at different anode potentials revealed a sharp decrease in bacterial cell numbers in anode biofilms after changing anode potential from 0.4 V to 0.4 V. By contrast, bacterial cell numbers in suspension were slightly decreased. Collectively, these results provide new insights into the role of anode potential in shaping key microbial players associated with hydrolysis/fermentation and anodic respiration processes when MECs are operated with real biowastes. (C) 2019 Elsevier B.V. All rights reserved.
机译:这项研究首次记录了微生物群落的变化,该微生物群落是在使用初级污泥运行的微生物电解池(MEC)中响应于阳极电势变化而变化的。在相对于Ag / AgCl的0.4 V阳极电位下,MEC的COD和VSS去除效率分别为73 +/- 1%和75 +/- 2%。体积电流密度和氢气的比生产率分别为23 +/- 12 A / m(3)和145 +/- 4.1 L / m(3)-d。阳极微生物群落由各种发酵/水解细菌(如拟杆菌和dysgonomonas)和呼吸阳极细菌(Geobacter)组成,而不同的水解/发酵细菌则富含悬浮液。当阳极电势切换到更多的正值(0 V和+0.4 V)时,MEC的性能明显较差,各种挥发性脂肪酸的积累也更高。当阳极电位改变时,生物膜和悬浮群落也都发生了变化。值得注意的是,在+0.4 V时,Geobacter属从生物膜中完全消失,而Paludibacter物种(已知的发酵菌)则选择性地富集了生物膜。同样,在生物膜和悬浮液中,拟杆菌属(已知的水解细菌)的相对丰度大大降低,这与VSS的劣质水解有关。定量比较不同阳极电位下的生物膜和悬浮的微生物群落,发现阳极电位从0.4 V变为0.4 V后,阳极生物膜中的细菌细胞数急剧减少。相比之下,悬浮液中的细菌细胞数略有减少。总的来说,这些结果提供了新的见解,当MEC与实际的生物废物一起运行时,阳极电势在塑造与水解/发酵和阳极呼吸过程相关的关键微生物过程中的作用。 (C)2019 Elsevier B.V.保留所有权利。

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