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Fe、N 共改性生物炭通过胞外电子传递增强同步强化偶氮染料脱色和厌氧颗粒污泥稳定性。

Synchronous reinforcement azo dyes decolorization and anaerobic granular sludge stability by Fe, N co-modified biochar: Enhancement based on extracellular electron transfer.

机构信息

Tianjin Key Laboratory of Clean Energy and Pollution Control, School of Energy and Environmental Engineering, Hebei University of Technology, Tianjin 300401, PR China.

School of Civil Engineering, Heilongjiang University, Harbin 150086, PR China.

出版信息

J Hazard Mater. 2024 Dec 5;480:135836. doi: 10.1016/j.jhazmat.2024.135836. Epub 2024 Sep 12.

DOI:10.1016/j.jhazmat.2024.135836
PMID:39276735
Abstract

Anaerobic digestion (AD) treatment of azo dyes wastewater often suffers from low decolorization efficiency and poor stability of anaerobic granular sludge (AnGS). In this study, iron and nitrogen co-modified biochar (FNC) was synthesized based on the secondary calcination method, and the feasibility of this material for enhanced AD treatment of azo dye wastewater and its mechanism were investigated. FNC not only formed richer conducting functional groups, but also generated Fe/Fe redox pairs. The decolorization efficiency of Congo red and AD properties (e.g., methane production) were enhanced by FNC. After adding FNC, the content of extracellular polymeric substances (EPS) and the ratio of proteins remained stable under the impact of Congo red, which greatly protected the internal microbial community. This was mainly contributed to the excellent electrochemical properties of FNC, which strengthened the microbial extracellular electron transfer and realized the coupled mechanism of action: On the one hand, an electron transfer bridge between decolorizing bacteria and dyes was constructed to achieve rapid decolorization of azo dyes and mitigate the impact on methanogenic bacteria; On the other hand, the stability of AnGS was enhanced based on enhanced extracellular polymeric substances secretion, microbial community and direct interspecies electron transfer (DIET) process. This study provides a new idea for enhanced AD treatment of azo dyes wastewater.

摘要

厌氧消化(AD)处理偶氮染料废水通常存在脱色效率低和厌氧颗粒污泥(AnGS)稳定性差的问题。本研究基于二次煅烧法合成了铁氮共改性生物炭(FNC),并考察了该材料增强偶氮染料废水 AD 处理的可行性及其作用机制。FNC 不仅形成了更丰富的导电官能团,还产生了 Fe/Fe 氧化还原对。FNC 提高了刚果红的脱色效率和 AD 性能(如甲烷产量)。添加 FNC 后,在刚果红的影响下,胞外聚合物(EPS)的含量和蛋白质的比例保持稳定,这极大地保护了内部微生物群落。这主要归因于 FNC 的优异电化学性能,它增强了微生物的细胞外电子转移,并实现了偶联作用机制:一方面,在脱色菌和染料之间构建了电子转移桥,实现了偶氮染料的快速脱色,并减轻了对产甲烷菌的影响;另一方面,基于增强的胞外聚合物分泌、微生物群落和直接种间电子传递(DIET)过程,增强了 AnGS 的稳定性。本研究为增强偶氮染料废水的 AD 处理提供了新的思路。

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