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利用铁还原菌改善中性全铁液流电池的电化学性能

Improving the electrochemical characteristics and performance of a neutral all-iron flow battery by using the iron reduction bacteria.

机构信息

Key Laboratory of Environmental and Applied Microbiology, Environmental Microbiology Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Science, Chengdu 610041, China; University of Chinese Academy of Sciences, Beijing 100049, China.

Key Laboratory of Environmental and Applied Microbiology, Environmental Microbiology Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Science, Chengdu 610041, China; Collage of Life Sciences, Sichuan University, Chengdu 610041, China.

出版信息

Bioelectrochemistry. 2024 Jun;157:108660. doi: 10.1016/j.bioelechem.2024.108660. Epub 2024 Jan 30.

Abstract

At present, the all-iron redox flow batteries (RFBs) have greater application potential due to high accessibility of electrolytes compared to traditional RFBs. Meanwhile, although electroactive bacteria can accelerate the electrons transfer, their potential to improve the performance of RFBs has been overlooked. Previously, we had confirmed that ferrous-oxidizing bacteria (FeOB) could enhance the performance of an all-iron RFB, therefore we conducted several batch experiments and chronopotentiometry experiments by using the ferric-reducing bacteria (FeRB) or mixed culture (FeOB and FeRB) to demonstrate whether they have the same or stronger effects on Fe-DTPA/Na[Fe(CN)] RFB. The results showed that the experimental reactors could achieve higher charging current density and initial cathodic potential during constant voltage charging process. The electrochemical impedance spectroscopy data and cyclic voltammetry curves demonstrated that the polarization impedance increased slower and reduction peak potential of experimental groups also emerged a positive shift compared to CK. According to chronopotentiometry experiments results, the microbes could function at maximum 0.3 M, 12 mA/cm, and also improved the charging specific capacity. Combined the SEM pictures and microbial composition analysis, the main functional electroactive FeRB were Alcaligenes, Corynebacterium and Bacillus, which indicated to have important potential in improving the performance of RFBs.

摘要

目前,与传统 RFB 相比,全铁氧化还原液流电池 (RFB) 由于电解质的高可及性而具有更大的应用潜力。同时,尽管电活性细菌可以加速电子转移,但它们对 RFB 性能的提升潜力尚未得到重视。以前,我们已经证实亚铁氧化菌 (FeOB) 可以增强全铁 RFB 的性能,因此我们进行了几批批实验和恒电位充电实验,使用三价铁还原菌 (FeRB) 或混合培养物(FeOB 和 FeRB)来证明它们对 Fe-DTPA/Na[Fe(CN)] RFB 是否具有相同或更强的作用。结果表明,实验反应器在恒压充电过程中可以实现更高的充电电流密度和初始阴极电势。电化学阻抗谱数据和循环伏安曲线表明,与 CK 相比,实验组的极化阻抗增加较慢,还原峰电位也出现正移。根据恒流充电实验结果,微生物可以在最大 0.3 M、12 mA/cm 的条件下工作,并且还提高了充电比容量。结合 SEM 图片和微生物组成分析,主要功能电活性 FeRB 为产碱杆菌属、棒状杆菌属和芽孢杆菌属,这表明它们在提高 RFB 性能方面具有重要潜力。

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