Crucial role of extracellular polymeric substances from anammox sludge in wastewater phosphorus recovery via magnesium phosphate crystallization

The magnesium phosphate (Mg-P) crystallization based on anaerobic ammonia oxidation is of interest for simultaneous nitrogen and phosphorus removal in wastewater treatment due to cost-effectiveness. Understanding the role of extracellular polymeric substances (EPS) in crystal growth is pivotal for b...

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Veröffentlicht in:Journal of environmental chemical engineering 2024-10, Vol.12 (5), p.113882, Article 113882
Hauptverfasser: Li, Jiayi, Zhang, Yu, Chen, Yongxing, Zhang, Yangzhong, Yang, Junfeng, Chen, Zhenguo, Wang, Xiaojun
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Sprache:eng
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Zusammenfassung:The magnesium phosphate (Mg-P) crystallization based on anaerobic ammonia oxidation is of interest for simultaneous nitrogen and phosphorus removal in wastewater treatment due to cost-effectiveness. Understanding the role of extracellular polymeric substances (EPS) in crystal growth is pivotal for bio-induced Mg-P crystallization. In this work, the effects of EPS in Mg-P crystallization were thoroughly investigated. Results indicated that EPS decreased the initial crystallization rate but slightly improved the final crystallization yield. The maximum removal efficiencies of Mg and P ions increased by 2.8 % and 3.1 %, respectively, when EPS concentration was 80 mg/L. Additionally, the presence of EPS enhanced Mg3(PO4)2·10 H2O production and facilitated the formation of larger rhombic plate-like structures crystals (maximum particle size increased by 215 %). Analysis of EPS composition changes during the crystallization process and characterization of the final crystals suggested that tryptophan-like proteins preferentially involved in the Mg-P crystallization process, while β-sheet proteins potentially influencing crystal morphology. Furthermore, the formation of phosphate ester groups, hydrogen bonding, and COOH-Mg2+ complexes were considered triggering factors for the interaction between EPS and Mg-P crystals. This study elucidated the underlying mechanism of EPS on Mg-P crystallization, further enhancing the understanding of the interaction between inorganic mineralization processes and microorganisms. [Display omitted] •Extracellular polymeric substances (EPS) affected Mg-P crystallization.•EPS promoted the generation of more Mg3(PO4)2·10 H2O.•EPS facilitated the formation of larger and thicker crystals.•The interaction between EPS and Mg-P crystals was elucidated.•Tryptophan-like and β-sheet proteins were mainly responsible for the interaction.
ISSN:2213-3437
DOI:10.1016/j.jece.2024.113882