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Updated: Aug 6, 2026

Scalable Syntheses of Graphene Oxide and Reduced Graphene Oxide using Cascade Design Oxidation and Highly Basic Reduction Reactions
Published on: July 3, 2025
In situ sludge reduction induced by graphene oxide: Mechanistic insights into metabolic uncoupling, maintenance
Yaodong Wu1, Yiqi Sun2, Rui Yu3
1National Engineering Laboratory for Advanced Municipal Wastewater Treatment and Reuse Technology, Beijing University of Technology, Beijing 100124, China.
Abstract:
Nanomaterials are increasingly recognized as stressors in biological wastewater treatment systems, yet the effects on biomass yield remain poorly understood. This study systematically evaluated the effects of low-dose graphene oxide (GO; 0.1 and 1 mg/L) on pollutant removal and sludge yield in activated sludge systems. At day 40, sludge yields were 0.356, 0.298, and 0.237 g VSS/g COD in the Control, 0.1 and 1 mg/L GO systems, respectively, corresponding to reductions of 16.29% (p = 0.055) and 33.43% (p < 0.05) without compromising nitrogen removal. GO exposure also loosened floc structure and increased mean intrafloc dissolved oxygen concentrations by 23.88% and 32.84%, respectively (both p < 0.01). Activities of isocitrate dehydrogenase, α-ketoglutarate dehydrogenase, and the electron transport system increased, indicating intensified endogenous oxidative metabolism. Despite enhanced respiration, ATP production decreased by 19.48% (p < 0.05) and 27.95% (p < 0.01), suggesting uncoupling between oxidation and phosphorylation. Intracellular reactive oxygen species increased by 65.46% and 145.60% (both p < 0.01), respectively. The resulting oxidative stress increased maintenance energy demand and promoted cell death and cryptic growth. Metagenomic analysis further revealed enrichment of genes related to oxidative stress responses, macromolecular repair, and extracellular polymeric substance secretion, together with decrease of genes involved in cell replication and division. Collectively, enhanced intrafloc oxygen transfer and endogenous respiration, oxidation-phosphorylation uncoupling, increased maintenance energy demand, and cryptic growth jointly drove GO-induced sludge reduction.
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