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Impact of applied cell voltage on the performance of a microbial electrolysis cell fully catalysed by microorganisms

机译:施加的电池电压对微生物完全催化的微生物电解池性能的影响

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The effect of the operating voltage on the performance of a microbial electrolysis cell (MEC) equipped with both a bioanode and a biocathode for hydrogen production is reported. Chronoamperometry tests ranged between 0.3 and 2.0 V were carried out after both bioelectrodes were developed. A maximum current density up to 1.6 A m(-2) was recorded at 1.0 V with hydrogen production rate of nearly 6.0 +/- 1.5 L m(-2) cathode day(-1). Trace amounts of methane, acetone and formate were detected in cathode's headspace and catholyte which followed the same trend as hydrogen production rate. Meanwhile substrate consumption in anolyte also followed the trend of hydrogen production and current density changes. The bioanode could utilise up to 95% of acetate in the tested voltage ranges, however, at a cell voltage of 2.0 V the bioanode's activity stopped due to oxygen evolution from water hydrolysis. Cyclic voltammograms revealed that the bioanode activity was vital to maintain the functionality of the whole system. The biocathode relied on the bioanode to maintain its potential during the hydrogen evolution. The overall energy efficiency recovered from both bioanode and external power in terms of hydrogen production at the cathode was determined as 29.4 +/- 9.0%, within which substrate oxidation contributed up to nearly 1/3 of the total energy marking the importance of bioanode recovering energy from wastewater to reduce the external power supply. (C) 2019 The Authors. Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC.
机译:报道了工作电压对配备有用于生产氢气的生物阳极和生物阴极的微生物电解池(MEC)性能的影响。在开发了两个生物电极之后,进行了0.3至2.0 V的计时安培测试。在1.0 V时记录的最大电流密度高达1.6 A m(-2),氢气产生速率接近阴极日(-1)的6.0 +/- 1.5 L m(-2)。在阴极的顶部空间和阴极电解液中检测到痕量的甲烷,丙酮和甲酸盐,其趋势与制氢速率相同。同时,阳极电解液中底物的消耗也遵循制氢和电流密度变化的趋势。在测试电压范围内,生物阳极最多可利用95%的乙酸盐,但是,在2.0 V的电池电压下,由于水水解产生的氧气,生物阳极的活性停止了。循环伏安图显示,生物阳极活性对于维持整个系统的功能至关重要。生物阴极依靠生物阳极在析氢过程中保持其潜力。从生物阳极和外部电源获得的总能量效率(根据阴极的氢气产生)确定为29.4 +/- 9.0%,其中底物氧化占总能量的近1/3,标志着生物阳极回收的重要性废水产生的能量减少了外部电源。 (C)2019作者。由Elsevier Ltd代表Hydrogen Energy Publications LLC发布。

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