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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Change in electrogenic activity of the microbial fuel cell (MFC) with the function of biocathode microenvironment as terminal electron accepting condition: Influence on overpotentials and bio-electro kinetics
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Change in electrogenic activity of the microbial fuel cell (MFC) with the function of biocathode microenvironment as terminal electron accepting condition: Influence on overpotentials and bio-electro kinetics

机译:以生物阴极微环境为末端电子接受条件的微生物燃料电池(MFC)的生电活性的变化:对超电势和生物电动力学的影响

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摘要

Influence of biocathode microenvironment as terminal electron accepting process (TEAP) on the electrogenic activity of the microbial fuel cell (MFC)/bio-electrochemical system (BES) was evaluated in concurrence with the internal losses and bio-electro kinetics. Aerobic metabolism as TEAP showed power output (37.5±2.7mW/m ~2) for extended time (240h) over abiotic (42.5±1.5mW/m ~2) electron accepting process. On the contrary, anaerobic metabolism as TEAP showed negligible power output in spite of increased retention time due to the absence of electron acceptor. Presence of strong electron acceptor conditions in aerobic metabolism facilitated gradual and stable reduction of electrons which helped to overcome the activation over potential and other potential losses. Voltammetric and amperometric analysis witnessed higher and sustainable electron discharge against the aerobic metabolism at cathode. Bio-electro kinetic analysis also showed lower Tafel slope and electron transfer co-efficient indicating the positive impact of aerobic metabolism at cathode in decreasing the internal losses.
机译:结合内部损失和生物电动力学,评估了生物阴极微环境作为末端电子接受过程(TEAP)对微生物燃料电池(MFC)/生物电化学系统(BES)的生电活性的影响。与非生物(42.5±1.5mW / m〜2)电子接受过程相比,有氧代谢作为TEAP在更长的时间(240h)中显示出功率输出(37.5±2.7mW / m〜2)。相反,尽管由于没有电子受体而增加了保留时间,但作为TEAP的厌氧代谢却显示出微不足道的功率输出。有氧代谢中强电子受体条件的存在促进了电子的逐步和稳定还原,这有助于克服活化作用以及潜在的和其他潜在的损失。伏安法和安培法分析表明,对阴极的有氧代谢有更高且可持续的电子放电。生物电动力学分析还显示出较低的Tafel斜率和电子转移系数,表明有氧代谢在阴极上对减少内部损耗有积极影响。

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