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两种电发酵系统处理油脂微藻 Nannochloropsis sp. 的底物降解、生物柴油生产和微生物群落

Substrate degradation, biodiesel production, and microbial community of two electro-fermentation systems on treating oleaginous microalgae Nannochloropsis sp.

机构信息

College of Power and Energy Engineering, Harbin Engineering University, Harbin 150001, China.

Maritime College, Guangdong Ocean University, Zhanjiang 524088, Guangdong, China; Marine Engineering College, Dalian Maritime University, Dalian 116026, China.

出版信息

Bioresour Technol. 2021 Jun;329:124932. doi: 10.1016/j.biortech.2021.124932. Epub 2021 Mar 6.

DOI:10.1016/j.biortech.2021.124932
PMID:33713901
Abstract

Electro-fermentation system (EFS) emerges its effectiveness on treating microalgae for biodiesel production, but much is unknown about biodegradation behaviors, biodiesel characteristics, and microbial community. Compared with conventional fermentation system (CFS), microbial electrolysis cell-based EFS (MEC-EFS) and microbial fuel cell-based EFS (MFC-EFS) were investigated for the performance while treating microalgae Nannochloropsis sp. Results indicated that MEC-EFS presented much higher first-order decomposition rate coefficients of carbohydrates and proteins (1.212/d and 0.951/d) than those of CFS (0.615/d and 0.794/d) and MFC-EFS (0.518/d and 0.415/d). Compared with MFC-EFS, MEC-EFS showed better electrochemical performance (2.17 A/mvs. 0.95 A/m). Moreover, MEC-EFS reached the highest extracted lipid to biomass ratio (43.3%), followed by MFC-EFS (32.3%) and CFS (27.7%). By strengthened microbial biohydrogenation, MEC-EFS and MFC-EFS had higher saturated fatty acids ratio (78.8% and 70.6%) than that of CFS (56.1%). For MEC-EFS, enriched Ruminococcus and Geobacter in anodic biofilm might contribute to favorable biohydrogenation and electrochemical performance.

摘要

电发酵系统 (EFS) 在处理微藻生产生物柴油方面表现出了有效性,但对于生物降解行为、生物柴油特性和微生物群落的了解还很有限。与传统发酵系统 (CFS) 相比,本研究考察了基于微生物电解池的 EFS (MEC-EFS) 和基于微生物燃料电池的 EFS (MFC-EFS) 在处理微藻 Nannochloropsis sp. 时的性能。结果表明,MEC-EFS 对碳水化合物和蛋白质的一级分解速率系数(1.212/d 和 0.951/d)均高于 CFS(0.615/d 和 0.794/d)和 MFC-EFS(0.518/d 和 0.415/d)。与 MFC-EFS 相比,MEC-EFS 表现出更好的电化学性能(2.17 A/m 对 0.95 A/m)。此外,MEC-EFS 达到了最高的提取脂质与生物质比(43.3%),其次是 MFC-EFS(32.3%)和 CFS(27.7%)。通过强化微生物生物氢化作用,MEC-EFS 和 MFC-EFS 的饱和脂肪酸比例(78.8% 和 70.6%)高于 CFS(56.1%)。对于 MEC-EFS,阳极生物膜中富集的 Ruminococcus 和 Geobacter 可能有助于良好的生物氢化和电化学性能。

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