Enhancing Feammox efficiency through riboflavin and humic acid: Nitrogen and iron transformation, energy metabolism, and microbial response

IF 9 1区 环境科学与生态学 Q1 AGRICULTURAL ENGINEERING Bioresource Technology Pub Date : 2025-08-01 Epub Date: 2025-04-14 DOI:10.1016/j.biortech.2025.132533
Dun Guo , Lei Yang , Hao-Qi Lu , Yu-Chao Wang , Hong-Yan Meng , Pan Liang , Shen Cui , Zhang-Wei He , Jun Lan , Yong-Xiang Ren
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Abstract

Optimizing electron shuttles and revealing their mediating mechanisms are crucial for enhancing the ammonium (NH4+-N) oxidation coupled with Fe (III) reduction. In this study, anthraquinone-2,6-disulfonate (AQDs), riboflavin (RF), and humic acid (HA) were optimized in batch tests. The optimal dosages of 6, 2, and 8 mg/L for AQDs, RF, and HA resulted in average maximum NH4+-N removal of 80.2 %, 88.5 %, and 99.2 %, with 91.4 %, 88.5 %, and 74.7 % of the removed NH4+-N converted to nitrate, respectively. In addition, an enhanced extracellular electron transfer was also observed, including an enlarged current, diversified REDOX pathway, and reduced resistance. Outperformed AQDs in nitrogen removal and microbial activity, HA and RF were selected for the subsequent 100-day long-term investigation. During this stage, excess influent Fe tended to be stored as insoluble coatings on the sludge surface, while RF and HA facilitated its use to compensate for the reduced influent Fe3+. Meanwhile, they led to an increase in iron-reducing (Comamonas) and NH4+-N oxidizing bacteria (Nitropsira and Planctomycetes), as well as improvements in electrochemical characteristics and microbial activity. Moreover, microbial N and Fe metabolic potential were efficiently enhanced. Consequently, NH4+-N and TN removal rates were obviously increased to approximately 90 % and 40 %, respectively. The addition of electron shuttles led to long-term improvements in extracellular mass transfer and microbial metabolism, which contributed more than bridging the extracellular electron transfer. These results deepened the understanding of the effect of electron shuttles on Feammox.

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通过核黄素和腐植酸提高Feammox效率:氮和铁的转化、能量代谢和微生物反应
优化电子穿梭体并揭示其介导机制是促进铵态氮氧化和铁(III)还原的关键。本研究对蒽醌-2,6-二磺酸酯(AQDs)、核黄素(RF)和腐植酸(HA)进行了批量优化。AQDs、RF和HA的最佳投加量为6、2和8 mg/L时,NH4+-N的平均最大去除率分别为80.2%、88.5%和99.2%,去除率分别为91.4%、88.5%和74.7%。此外,还观察到细胞外电子转移增强,包括电流增大,氧化还原途径多样化,电阻降低。在氮去除和微生物活性方面表现较好的AQDs,选择HA和RF进行随后的100天长期研究。在这一阶段,过量的进水铁倾向于以不溶性涂层的形式储存在污泥表面,而RF和HA有助于其使用,以补偿减少的进水Fe3+。同时,它们导致了铁还原菌(Comamonas)和NH4+-N氧化菌(Nitropsira和plantomycetes)的增加,以及电化学特性和微生物活性的改善。此外,微生物氮和铁的代谢势有效增强。因此,NH4+-N和TN的去除率明显提高,分别达到90%和40%左右。电子穿梭的增加导致细胞外质量传递和微生物代谢的长期改善,这不仅仅是桥接细胞外电子传递。这些结果加深了对电子穿梭对Feammox的影响的认识。
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来源期刊
Bioresource Technology
Bioresource Technology 工程技术-能源与燃料
CiteScore
20.80
自引率
19.30%
发文量
2013
审稿时长
12 days
期刊介绍: Bioresource Technology publishes original articles, review articles, case studies, and short communications covering the fundamentals, applications, and management of bioresource technology. The journal seeks to advance and disseminate knowledge across various areas related to biomass, biological waste treatment, bioenergy, biotransformations, bioresource systems analysis, and associated conversion or production technologies. Topics include: • Biofuels: liquid and gaseous biofuels production, modeling and economics • Bioprocesses and bioproducts: biocatalysis and fermentations • Biomass and feedstocks utilization: bioconversion of agro-industrial residues • Environmental protection: biological waste treatment • Thermochemical conversion of biomass: combustion, pyrolysis, gasification, catalysis.
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