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首页> 外文期刊>Electrochimica Acta >Adapting microbial communities to low anode potentials improves performance of MECs at negative potentials
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Adapting microbial communities to low anode potentials improves performance of MECs at negative potentials

机译:将微生物社区适应低阳极电位可提高MECS在负电位下的性能

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A unique aspect of microbial electrolysis cells is the use of an applied voltage for H-2 production. A variation on this parameter is the use of a controlled anode potential rather than controlled cell voltage, which can result in a more stable redox environment for the anode microbes. In this study, long-term exposure of anode consortia at -400 mV and 0 mV vs. Ag/AgCl resulted in a gradual divergence of the resulting bioanode midpoint potentials by >100 mV over a 6-month period. Cyclic voltammetry revealed a shift in peak current production to more negative potentials for the reactor poised at 400 mV. Furthermore, chronopotentiometry indicated very different profiles, showing a difference of 500 mV in the potential required to achieve a current of 15 mA (equivalent to 12 A/m(2)). A 3-fold higher current was observed at a poised potential of 400 mV for the anode enriched at a poised potential of 400 mV, compared to that enriched at 0 mV. The substrate used was a bio-oil aqueous phase (BOAP) derived from switchgrass, making this study unique with potential for biorefinery application in producing hydrogen, fuels or chemicals. Operation at 400 mV resulted in a 1.5-fold higher electrical efficiency reaching 164.9%, while marginally reducing hydrogen recovery by 1.0%. The results provide evidence for adaptation of complex communities to optimize applied potential, while reducing energy input for electrolysis. The community developed here has potential to be explored further to understand complex community-function relationships. (C) 2017 Elsevier Ltd. All rights reserved.
机译:微生物电解电池的独特方面是使用施加的电压用于H-2产生。该参数的变化是使用受控阳极电位而不是受控电池电压,这可能导致阳极微生物的更稳定的氧化还原环境。在该研究中,长期暴露于-400mV和0mV与Ag / AgCl处的阳极组成导致所得的生物沸秒中点电位的逐渐发散> 100mV在6个月内。循环伏安,揭示了峰值电流产生的转变,以在400 mV下对反应器的更多负电位。此外,计时表指示的曲线非常不同,显示在实现15mA的电流所需的电位所需的500mV(相当于12a / m(2))的差异。与富含0 mV的富含富含400mV的阳极的阳极,在400mV的阳极下观察到3倍的电流。所用的基材是衍生自切换的生物油水相(BOAP),这项研究具有在生产氢气,燃料或化学物质中的生物料理应用的潜力。 400 MV的操作导致1.5倍的电效率达到164.9%,同时将氢回收率略微降低1.0%。结果提供了复杂社区的适应证据,以优化应用潜力,同时减少电解的能量输入。这里开发的社区有可能进一步探索,以了解复杂的社区功能关系。 (c)2017 Elsevier Ltd.保留所有权利。

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