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首页> 外文期刊>Water Science and Technology >Reduction of start-up time through bioaugmentation process in microbial fuel cells using an isolate from dark fermentative spent media fed anode
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Reduction of start-up time through bioaugmentation process in microbial fuel cells using an isolate from dark fermentative spent media fed anode

机译:通过使用来自黑暗发酵用废培养基进料阳极的分离物,通过生物强化过程减少微生物燃料电池的启动时间

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摘要

An electrochemically active bacteria Pseudomonas aeruginosa IIT BT SS1 was isolated from a dark fermentative spent media fed anode, and a bioaugmentation technique using the isolated strain was used to improve the start-up time of a microbial fuel cell (MFC). Higher volumetric current density and lower start-up time were observed with the augmented system MFC-PM (13.7 A/m(3)) when compared with mixed culture MFC-M (8.72 A/m(3)) during the initial phase. This enhanced performance in MFC-PM was possibly due to the improvement in electron transfer ability by the augmented strain. However, pure culture MFC-P showed maximum volumetric current density (17 A/m(3)) due to the inherent electrogenic properties of Pseudomonas sp. An electrochemical impedance spectroscopic (EIS) study, along with matrix-assisted laser desorption/ionization-time-of-flight (MALDI-TOF) analysis, supported the influence of isolated species in improving the MFC performance. The present study indicates that the bioaugmentation strategy using the isolated Pseudomonas sp. can be effectively utilized to decrease the start-up time of MFC.
机译:从黑暗的发酵用废培养基进料阳极分离出具有电化学活性的细菌铜绿假单胞菌IIT BT SS1,并使用分离菌株的生物强化技术来改善微生物燃料电池(MFC)的启动时间。与混合培养MFC-M(8.72 A / m(3))在初始阶段相比,增强系统MFC-PM(13.7 A / m(3))观察到更高的体积电流密度和更低的启动时间。 MFC-PM中这种增强的性能可能是由于应变增加导致电子转移能力的提高。但是,纯培养MFC-P显示最大的体积电流密度(17 A / m(3)),由于假单胞菌sp。固有的电学特性。电化学阻抗谱(EIS)研究以及基质辅助激光解吸/电离飞行时间(MALDI-TOF)分析,支持了分离物种对提高MFC性能的影响。本研究表明使用分离的假单胞菌sp。的生物增强策略。可以有效地利用以减少MFC的启动时间。

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