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Multifunctional Fe-biochar for simultaneously enhancing methanogenesis and mitigating membrane fouling in anaerobic membrane bioreactor treating brewery wastewater.

Aug 2026 · Bioresource Technology · pp. 135596 · 0 citations · 42 references
Medicine

Abstract

Anaerobic membrane bioreactors (AnMBRs) treating brewery wastewater face bottlenecks of acid inhibition and membrane fouling. In this study, AnMBR with iron-modified biochar (Fe-BC) in-situ addition (FeBC-AnMBR) and conventional AnMBR (C-AnMBR) were compared to systematically evaluate operational performance and elucidate the mechanisms underlying enhanced methane production and fouling mitigation. Results showed that Fe-BC addition reduced volatile fatty acids (VFAs) accumulation by 27.6% and increased methane yield by 39.0%. FeBC-AnMBR exhibited 2.1-fold higher electron transport system activity (ETSA) and 1.6-fold higher Cytochrome c concentration than C-AnMBR, indicating that the enhanced electron transfer capacity accelerated substrate conversion and improved methane yield. This was attributed to the slightly alkaline nature (pH = 8.4), prominent Fe-O bonds, and redox capacities of Fe-BC. Batch experiments confirmed that Fe-BC accelerated bovine serum albumin (BSA), glucose and sodium acetate degradation, with acetate kinase and coenzyme F420 activities reaching 300.0% and 142.0% of control levels. Microbial community analysis showed Fe-BC enriched syntrophic bacteria (Syntrophomonas, Syntrophobacter) and methanogenic archaea (Methanosarcina, Methanobacterium). Concurrently, key enzyme genes involved in propionate, butyrate degradation and methanogenesis increased by 13, 8 and 15 copies, respectively, strengthening VFA metabolism and methane synthesis pathways. Membrane fouling was mitigated by a 20.3 kPa reduction in cake layer resistance, an 8.0% increase in sludge particle size, and a 31.0% extension of membrane service life. In summary, Fe-BC improved AnMBR stability and methanogenic performance while mitigating membrane fouling, providing an efficient strategy to increase the operational efficiency of brewery wastewater treatment.

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