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生物电化学系统中的厌氧菌。

Anaerobes in Bioelectrochemical Systems.

作者信息

Kokko Marika E, Mäkinen Annukka E, Puhakka Jaakko A

机构信息

Department of Chemistry and Bioengineering, Tampere University of Technology, Tampere, Finland.

出版信息

Adv Biochem Eng Biotechnol. 2016;156:263-292. doi: 10.1007/10_2015_5001.

Abstract

In bioelectrochemical systems (BES), the catalytic activity of anaerobic microorganisms generates electrons at the anode which can be used, for example, for the production of electricity or chemical compounds. BES can be used for various purposes, including wastewater treatment, production of electricity, fuels and chemicals, biosensors, bioremediation, and desalination. Electrochemically active microorganisms are widely present in the environment and they can be found, in sediment, soil, compost, wastewaters and their treatment plants. Exoelectrogens are microorganisms capable of donating electrons to anode electrode or accepting electrons from cathode electrode and are mainly responsible for current generation or use in BES. However, current generation from fermentable substrates often requires the presence of electrochemically inactive microorganisms that break down complex substrates into metabolites which can be further utilized by exoelectrogens. The growth and electron transfer efficiency of anaerobes depend on several parameters, such as system architecture, electrode material and porosity, electrode potential and external resistance, pH, temperature, substrate concentration, organic loading rate, and ionic strength. In this chapter, the principles and microbiology of bioelectrochemical systems as well as selective factors for exoelectrogens are reviewed. The anaerobic microorganisms and their electron transfer mechanisms at the anode and cathode are described and future aspects are briefly discussed.

摘要

在生物电化学系统(BES)中,厌氧微生物的催化活性在阳极产生电子,这些电子可用于例如发电或生产化合物。BES可用于多种目的,包括废水处理、发电、生产燃料和化学品、生物传感器、生物修复和海水淡化。具有电化学活性的微生物广泛存在于环境中,在沉积物、土壤、堆肥、废水及其处理厂中都能找到它们。外排电子菌是能够向阳极电极供电子或从阴极电极接受电子的微生物,主要负责BES中的电流产生或利用。然而,从可发酵底物产生电流通常需要存在电化学惰性微生物,这些微生物将复杂底物分解成代谢产物,外排电子菌可进一步利用这些代谢产物。厌氧菌的生长和电子转移效率取决于几个参数,如系统结构、电极材料和孔隙率、电极电位和外部电阻、pH值、温度、底物浓度、有机负荷率和离子强度。本章综述了生物电化学系统的原理和微生物学以及外排电子菌的选择因素。描述了阳极和阴极处的厌氧微生物及其电子转移机制,并简要讨论了未来的发展方向。

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