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用于生产氢气、甲烷和羧酸盐的混合培养生物阴极。

Mixed Culture Biocathodes for Production of Hydrogen, Methane, and Carboxylates.

作者信息

Ter Heijne Annemiek, Geppert Florian, Sleutels Tom H J A, Batlle-Vilanova Pau, Liu Dandan, Puig Sebastià

机构信息

Sub-Department of Environmental Technology, Wageningen University, Bornse Weilanden 9, 6708, WG Wageningen, The Netherlands.

Fraunhofer Institute for Environmental, Safety, and Energy Technology UMSICHT, Osterfelder Str. 3, 46047, Oberhausen, Germany.

出版信息

Adv Biochem Eng Biotechnol. 2019;167:203-229. doi: 10.1007/10_2017_15.

Abstract

Formation of hydrogen, methane, and organics at biocathodes is an attractive new application of bioelectrochemical systems (BESs). Using mixed cultures, these products can be formed at certain cathode potentials using specific operating conditions, of which pH is important. Thermodynamically, the reduction of CO to methane is the most favorable reaction, followed by reduction of CO to acetate and ethanol, and hydrogen. In practice, however, the cathode potential at which these reactions occur is more negative, meaning that more energy is required to drive the reaction. Therefore, hydrogen is often found as a second product or intermediate in the conversion of CO to both methane and carboxylates. In this chapter we summarize the inocula used for biocathode processes and discuss the achieved conversion rates and cathode potentials for formation of hydrogen, methane, and carboxylates. Although this overview reveals that BESs offer new opportunities for the bioproduction of different compounds, there are still challenges that need to be overcome before these systems can be applied on a larger scale. Graphical Abstract.

摘要

在生物阴极形成氢气、甲烷和有机物是生物电化学系统(BESs)一项引人关注的新应用。使用混合培养物,在特定操作条件下,利用一定的阴极电位可以形成这些产物,其中pH值很重要。从热力学角度来看,将CO还原为甲烷是最有利的反应,其次是将CO还原为乙酸盐和乙醇以及氢气。然而在实际中,这些反应发生时的阴极电位更负,这意味着需要更多能量来驱动反应。因此,在将CO转化为甲烷和羧酸盐的过程中,氢气常常作为次要产物或中间产物被发现。在本章中,我们总结了用于生物阴极过程的接种物,并讨论了形成氢气、甲烷和羧酸盐所达到的转化率及阴极电位。尽管这一概述表明生物电化学系统为不同化合物的生物生产提供了新机遇,但在这些系统能够大规模应用之前,仍有一些挑战需要克服。图形摘要。

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