以羧酸盐和碳水化合物为底物的微生物燃料电池中的假单胞菌 B6-2 的发电功能

Xiaoyan Qi , Huangwei Cai , Xiaolei Wang , Ruijun Liu , Ting Cai , Sen Wang , Xueying Liu , Xia Wang
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摘要

微生物燃料电池(MFCs)采用假单胞菌 B6-2(ATCC BAA-2545)作为外源电解质,可从各种传统底物(如醋酸盐、乳酸盐、葡萄糖和果糖)中获取能量。由于其新陈代谢的多功能性,P. putida B6-2 在 MFCs 中对多种具有成本效益的碳源表现出了适应性强的生长速度,并表现出了独特的能量生产特性。值得注意的是,阳极室的 pH 值随着羧酸盐(醋酸盐和乳酸盐)的消耗而升高,随着碳水化合物(葡萄糖和果糖)的利用而降低。以果糖为底物的 MFC 功率密度最高,达到 411 mW m-2。初步分析表明,P. putida B6-2 形成的生物膜覆盖着纳米线,有助于生物发电。这些微生物纳米线很可能是通过物理接触直接进行细胞外电子传输的关键角色。这项研究为在生物电化学系统(BES)中利用腐生茵作为外生电子体,从普通基质中生产有价值的化合物和生物能源奠定了坚实的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Electricity generation by Pseudomonas putida B6-2 in microbial fuel cells using carboxylates and carbohydrate as substrates

Microbial fuel cells (MFCs) employing Pseudomonas putida B6-2 (ATCC BAA-2545) as an exoelectrogen have been developed to harness energy from various conventional substrates, such as acetate, lactate, glucose, and fructose. Owing to its metabolic versatility, P. putida B6-2 demonstrates adaptable growth rates on diverse, cost-effective carbon sources within MFCs, exhibiting distinct energy production characteristics. Notably, the anode chamber's pH rises with carboxylates' (acetate and lactate) consumption and decreases with carbohydrates' (glucose and fructose) utilization. The MFC utilizing fructose as a substrate achieved the highest power density at 411 mW m−2. Initial analysis revealed that P. putida B6-2 forms biofilms covered with nanowires, contributing to bioelectricity generation. These microbial nanowires are likely key players in direct extracellular electron transport through physical contact. This study established a robust foundation for producing valuable compounds and bioenergy from common substrates in bioelectrochemical systems (BESs) utilizing P. putida as an exoelectrogen.

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