Reduction of Fe(III) from iron-rich sludge by Geobacter to reconstruct MIL-100(Fe)@Fe3O4 to accelerate electron transfer and organic pollutants mineralization in Fenton-like system
文献类型: 外文期刊
作者: Wenhan Wang;Xuemei Zhu;Nana Jiang;Xiaolin Zhang;Guoliang Wang;Mingxiu Tang;Shasha Li;Tian Li
作者机构:
关键词: Charge transfer;Extracellular polymeric substances;Geobacter;Iron-rich sludge;MIL-100(Fe);Mineralization
期刊名称: Journal of Environmental Management
ISSN: 0301-4797
年卷期: 2025 年 387 卷
页码:
收录情况: SCIE(2025版) ; ; EI(2025版)
摘要: Iron-rich sludge contains abundant iron resources, yet lacks high-value processing methods. Iron-based metal-organic frameworks (Fe-MOFs), such as MIL-100(Fe), are widely used but suffer from considerable attrition and hardly recycle. Integrating iron extraction from sludge with Fe-MOF modification is promising for solid waste management. The redox capabilities of Geobacter, along with its production of Extracellular polymeric substance (EPS), hold potential for enabling this process. Nevertheless, the underlying mechanisms remain unclear, and the performance of the resulting product needs evaluation. In this study, Geobacter successfully loaded reduced Fe3O4 from iron-rich sludge onto MIL-100(Fe), creating MIL-100(Fe)@Fe3O4 (MF), a mesoporous nanomaterial with magnetic recovery. MF demonstrated excellent catalytic performance and repeatability, with removal efficiencies 1.4–2.5 times than those of MIL-100(Fe) in terms of pollutants. After seven cycles, the catalytic performance of MF remained stable because of the exist of EPS produced by Geobacter. Density Functional Theory (DFT) calculations confirmed that Fe3O4 loading enhanced charge transfer, improving catalytic efficiency. This study offers important insights on Geobacter for the pivotal role between iron-rich sludge and Fe-MOFs, which achieve the sustainable recovery and efficient utilization of solid waste.
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