Suppr超能文献

微生物方法在阳极生物膜工程中的应用增强了用于生物能源生产的细胞外电子传递。

Microbial approach towards anode biofilm engineering enhances extracellular electron transfer for bioenergy production.

机构信息

Civil and Environmental Engineering Department, College of Engineering and Architecture University of Nizwa, PO 33, Postal code 616, Nizwa, Oman.

Civil and Environmental Engineering Department, College of Engineering and Architecture University of Nizwa, PO 33, Postal code 616, Nizwa, Oman.

出版信息

J Environ Manage. 2024 Nov;370:122696. doi: 10.1016/j.jenvman.2024.122696. Epub 2024 Sep 30.

Abstract

Applying microbial electrolysis cells (MEC) is a biological approach to enhance the growth of high amounts of electroactive biofilm for extracellular electron transfer. The electroactive biofilm degrades the organics by oxidizing them at the anode and producing electrical energy. Addition of waste-activated sludge (WAS) with fat grease oil (FOG) produces an optimal reactor environment for microbial growth to enhance the exchange of electrons between cells via microbial electrolysis. The present work aimed to investigate the microbial approach to increase the extracellular electron transfer (EET) in microbial electrolysis cells. Results revealed that metabolites in electroactive microbes (EAM) grow viable cells that initiate high EET at anode sites. At optimum WAS with FOG addition, volatile fatty acid and current generation yield production was 2.94 ± 0.19 g/L and 17.91 ± 7.23 mA, accompanied by COD removal efficiency of 89.5 ± 14.4%, respectively. This study introduces a novel approach to anode biofilm engineering that significantly enhances extracellular electron transfer, offering a fresh perspective on bioenergy production. Our approach, which demonstrates that anodic biofilm enhances intercellular electron transfer, increases NADH-NAD ratio, and increases metabolite yield-fluxes, has the potential to revolutionize bio-electricity production. Results indicated that the electrolysis highlights MEC performance in power generation of 788 mV with 200 mL of anode volume of active viable cells by utilizing WAS with 11% FOG. The achievements of this study provide critical parameters for the anode biofilm engineering, demonstrating how growth cell volume, intercellular electron transfer, and increases in NADH-NAD ratio are evidence of an increase in the EET, compelling evidence for the resilience treatment and efficient current production. These findings are significant in advancing our understanding of bioenergy production.

摘要

应用微生物电解池(MEC)是一种增强高电活性生物膜数量以促进细胞外电子传递的生物方法。电活性生物膜通过在阳极氧化有机物并产生电能来降解有机物。添加含脂肪油脂(FOG)的废活性污泥(WAS)会为微生物生长创造最佳的反应环境,从而增强微生物电解过程中细胞间电子的交换。本研究旨在探讨微生物方法在微生物电解池中增加细胞外电子传递(EET)的作用。结果表明,电活性微生物(EAM)中的代谢物可促进活细胞的生长,从而在阳极部位引发高 EET。在最佳添加量的 WAS 和 FOG 条件下,挥发性脂肪酸和电流产生的产量分别为 2.94 ± 0.19 g/L 和 17.91 ± 7.23 mA,同时 COD 去除效率达到 89.5 ± 14.4%。本研究提出了一种新颖的阳极生物膜工程方法,可显著增强细胞外电子传递,为生物能源生产提供了新的视角。我们的方法表明,阳极生物膜增强了细胞间电子传递,增加了 NADH-NAD 比,并增加了代谢物通量产量,有可能彻底改变生物电能的产生。结果表明,利用含有 11% FOG 的 WAS,通过 200 mL 的活性活细胞阳极体积,电解池可产生 788 mV 的功率,突出了 MEC 的性能。本研究的成果为阳极生物膜工程提供了关键参数,证明了细胞生长体积、细胞间电子传递的增强以及 NADH-NAD 比的增加如何证明 EET 的增加,为韧性处理和高效电流产生提供了有力证据。这些发现对推进生物能源生产的理解具有重要意义。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验