Improved energy efficiency in microbial fuel cells by bioethanol and electricity co-generation.

Rong Xie, Shuang Wang, Kai Wang, Meng Wang, Biqiang Chen, Zheng Wang, Tianwei Tan
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引用次数: 4

Abstract

Background: Microbial electricity production has received considerable attention from researchers due to its environmental friendliness and low price. The increase in the number of intracellular electrons in a microbial fuel cell (MFC) helps to improve the MFC performance.

Results: In this study, we accumulated excess electrons intracellularly by knocking out the gene related to intracellular electron consumption in Saccharomyces cerevisiae, and the elevated intracellular electron pool positively influenced the performances of MFCs in terms of electricity production, while helping to increase ethanol production and achieve ethanol and electricity co-production, which in turn improved the utilization of substrates. The final knockout strain reached a maximum ethanol yield of 7.71 g/L and a maximum power density of 240 mW/m2 in the MFC, which was 12 times higher than that of the control bacteria, with a 17.3% increase in energy utilization.

Conclusions: The knockdown of intracellular electron-consuming genes reported here allowed the accumulation of excess electrons in cells, and the elevated intracellular electron pool positively influenced the electrical production performance of the MFC. Furthermore, by knocking out the intracellular metabolic pathway, the yield of ethanol could be increased, and co-production of ethanol and electricity could be achieved. Thus, the MFC improved the utilization of the substrate.

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通过生物乙醇和电联产提高微生物燃料电池的能源效率。
背景:微生物发电因其环境友好、价格低廉而受到研究人员的广泛关注。微生物燃料电池(MFC)胞内电子数量的增加有助于提高MFC的性能。结果:在本研究中,我们通过敲除酿酒酵母细胞内电子消耗相关基因,在细胞内积累了多余的电子,细胞内电子池的升高对mfc的产电性能产生了积极的影响,同时有助于增加乙醇产量,实现乙醇和电力的联产,从而提高了底物的利用率。最终敲除菌株在MFC中的最大乙醇产量为7.71 g/L,最大功率密度为240 mW/m2,是对照菌的12倍,能量利用率提高了17.3%。结论:本文报道的细胞内电子消耗基因的敲低允许细胞内多余电子的积累,细胞内电子池的升高对MFC的产电性能有积极影响。此外,通过敲除细胞内代谢途径,可以提高乙醇的产量,并实现乙醇和电力的协同生产。因此,MFC提高了衬底的利用率。
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