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首页> 外文期刊>Journal of Bioscience and Bioengineering >Improved bio-hydrogen production from glucose by adding a specific methane inhibitor to microbial electrolysis cells with a double anode arrangement
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Improved bio-hydrogen production from glucose by adding a specific methane inhibitor to microbial electrolysis cells with a double anode arrangement

机译:通过将特定的甲烷抑制剂添加到具有双阳极装置的微生物电解池中,改善了葡萄糖的生物氢生产

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摘要

Improved hydrogen production from glucose was achieved by adding a specific methane inhibitor (such as chloroform) to repress the activity of methanogens in a single-chamber microbial electrolysis cells (MECs) with a double anode arrangement. A maximum hydrogen production of 8.4 +/- 0.2 mol H-2/mol-G (G represents glucose), a hydrogen production rate of 2.39 +/- 0.3 m(3) H-2/m(3)/d and a high energy efficiency (relative to the electrical input) of eta E = 165 +/- 5% had been recorded from 1 g/L glucose at a low dosage of chloroform (5 parts per thousand, v:v) and an applied voltage of 0.8 V. Almost all of the glucose was removed within 4 h, with 66% of the electrons in intermediates (mainly including acetate and ethanol), and methane gas was not detected in the MECs through 11 batch cycles. The experimental results confirmed that chloroform was an effective methane inhibitor that improved hydrogen production from glucose in the MECs. In addition, the cyclic voltammetry tests demonstrated that the electron transfer in the MECs was mainly due to the biofilm-bound redox compounds rather than soluble electron shuttles. (C) 2016, The Society for Biotechnology, Japan. All rights reserved.
机译:通过添加特定的甲烷抑制剂(例如氯仿)以抑制具有双阳极装置的单室微生物电解池(MEC)中产甲烷菌的活性,可以提高葡萄糖的氢产生量。最大氢气产生量为8.4 +/- 0.2 mol H-2 / mol-G(G代表葡萄糖),氢气产生速率为2.39 +/- 0.3 m(3)H-2 / m(3)/ d和在低剂量的氯仿(千分之五,v:v)和低的施加电压下,从1 g / L葡萄糖中记录到eta E = 165 +/- 5%的高能量效率(相对于电输入)。 0.8V。在4小时内几乎除去了所有葡萄糖,中间物(主要包括乙酸盐和乙醇)中有66%的电子,并且在11个批次周期内未在MEC中检测到甲烷气体。实验结果证实,氯仿是一种有效的甲烷抑制剂,可提高MEC中葡萄糖的产氢量。此外,循环伏安法测试表明,MEC中的电子转移主要归因于生物膜结合的氧化还原化合物,而不是可溶性电子穿梭。 (C)2016年,日本生物技术学会。版权所有。

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