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阳极室对阴极生物电甲烷生成的影响见解——阳极材料和阳极电解液的系统比较

Insights in the anode chamber influences on cathodic bioelectromethanogenesis - systematic comparison of anode materials and anolytes.

作者信息

Enzmann Franziska, Stöckl Markus, Gronemeier Denise, Holtmann Dirk

机构信息

Evonik Industries Technology and Infrastructure Hanau Germany.

DECHEMA Research Institute, Electrochemistry Frankfurt am Main Germany.

出版信息

Eng Life Sci. 2019 Sep 30;19(11):795-804. doi: 10.1002/elsc.201900126. eCollection 2019 Nov.

Abstract

Cathode and catholyte are usually optimized to improve microbial electrosynthesis process, whereas the anodic counter reaction was not systematically investigated and optimized for these applications yet. Nevertheless, the anolyte and especially the anode material can limit the cathodic bioelectrochemical process. This paper compares for the first time the performance of different anode materials as counter electrodes for a cathodic bioelectrochemical process, the bioelectromethanogenesis. It was observed that depending on the anode material the cathodic methane production varies from 0.96 µmol/d with a carbon fabric anode to 25.44 µmol/d with a carbon felt anode of the same geometrical surface area. The used anolyte also affected the methane production rate at the cathode. Especially, the pH of the anolyte showed an impact on the system; an anolyte with pH 5 produced up to 2.0 times more methane compared to one with pH 8.5. The proton availability is discussed as one reason for this effect. Although some of the measured effects cannot be explained completely so far this study advises researchers to strongly consider the anode impact during process development and optimization of a cathodic bioelectrochemical synthesis process.

摘要

通常会对阴极和阴极电解液进行优化以改善微生物电合成过程,然而对于这些应用,阳极的逆反应尚未得到系统的研究和优化。尽管如此,阳极电解液尤其是阳极材料会限制阴极生物电化学过程。本文首次比较了不同阳极材料作为阴极生物电化学过程(生物电甲烷生成)对电极的性能。结果发现,根据阳极材料的不同,相同几何表面积的碳布阳极阴极甲烷产量为0.96 μmol/d,而碳毡阳极的阴极甲烷产量为25.44 μmol/d。所使用的阳极电解液也会影响阴极的甲烷生成速率。特别是,阳极电解液的pH值对系统有影响;pH为5的阳极电解液产生的甲烷比pH为8.5的阳极电解液多2.0倍。质子可用性被认为是造成这种影响的一个原因。尽管目前一些测量到的影响还无法完全解释,但本研究建议研究人员在阴极生物电化学合成过程的开发和优化中要充分考虑阳极的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b407/6999415/d61c040a19a6/ELSC-19-795-g003.jpg

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