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Updated: Jun 9, 2026

Electrochemically and Bioelectrochemically Induced Ammonium Recovery
Published on: January 22, 2015
Enhanced deep nitrogen removal from low C/N wastewater via manganese-catalyzed iron-carbon micro-electrolysis coupled
Hengyuan Liu1, Kai Wang2, Feng Sha2
1College of Chemistry and Life Sciences, Chifeng University, NO.1 Yingbin Road, Hongshan District, Chifeng, 024000, China. liuhy729@163.com.
Abstract:
Efficient nitrate removal from low carbon-to-nitrogen (C/N) wastewater remains challenging due to the scarcity of electron donors in conventional biological denitrification. To address this limitation, a synergistic system coupling manganese-catalyzed iron-carbon micro-electrolysis (IMC-ME) with biological denitrification was developed. Under carbon-deficient conditions (C/N = 2), the coupled system achieved 90.1% nitrate removal and 77.2% total nitrogen (TN) removal, substantially outperforming the standalone biological process (49.4% TN removal). Mechanistically, manganese dioxide functioned as a cathodic catalyst, accelerating zero-valent iron corrosion and continuously generating Fe2+ and atomic hydrogen [H] as inorganic electron donors. This electrochemical process induced a shift in the microbial community from Proteobacteria to Bacteroidota dominance. Notably, the system selectively enriched Zoogloea, enhancing biofilm stability, and Thiobacillus, indicating the activation of iron-dependent autotrophic denitrification pathways. This integration of chemical reduction and biological metabolism provides a promising strategy for deep nitrogen removal in organic-substrate-limited waters.
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