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硫酸亚铁与负载生物炭的FN1细菌复合材料结合在共堆肥过程中对氮保留和PBAT降解的增强作用。

Enhanced effect of ferrous sulfate on nitrogen retention and PBAT degradation during co-composting by combing with biochar-loaded FN1 bacterial composites.

作者信息

Cao Long, Wang Linshan, Qi Yanjiao, Yang Shen, Gao Jiazhi, Liu Qiang, Song Lisha, Hu Run, Wang Zifan, Zhang Hong

机构信息

China-Malaysia National Joint Laboratory, Biomedical Research Center, Northwest MinZu University, Lanzhou, 730000, China; Key Laboratory for Utility of Environment-Friendly Composites and Biomass in Universities of Gansu Province, Lanzhou, 730000, China.

Key Laboratory for Utility of Environment-Friendly Composites and Biomass in Universities of Gansu Province, Lanzhou, 730000, China.

出版信息

J Environ Manage. 2025 Jan;373:123749. doi: 10.1016/j.jenvman.2024.123749. Epub 2024 Dec 21.

Abstract

The treatment of biodegradable plastics through composting has garnered increasing attention. This study aimed to investigate the effects of Biochar FN1 bacteria and ferrous sulfate on nitrogen retention, greenhouse gas emissions, and degradable plastics during composting and to elucidate their synergistic mechanisms on microbial communities. Compared with the control, applying biochar-loaded FN1 bacteria composites combined with Ferrous sulfate (SGC) markedly accelerated organic matter degradation and reduced cumulative CO and NH emissions. The synergistic interaction between the composites and Ferrous sulfate significantly enhanced NH-N levels in the thermophilic phase and NO-N levels in the cooling phase, ultimately decreasing nitrogen loss by 14.9% (P < 0.05) and increasing the seed germination index (GI) by 22.5% (P < 0.05). Additionally, PBAT plastic degradation was improved by 31.6% (P < 0.05). The SGC treatment also altered the richness and diversity of the bacterial community in both the compost and the PBAT plastic sphere, particularly affecting Sphingobacterium, Pseudomonas, and Flavobacterium at the genus level. Symbiotic network analysis and Redundancy Analysis revealed that these functional degradation bacteria were significantly positively correlated with NO-N levels and PBAT degradation. Furthermore, structural equation modelling indicated a positive relationship between PBAT degradation rate and composting temperature (r = 0.69, p < 0.05). The findings suggested that Fe not only enhanced the FN1 activity but also promoted PBAT degradation by increasing ·OH content on the PBAT plastic sphere. Overall, the combined use of biochar-loaded FN1 bacteria and Ferrous sulfate effectively supports nitrogen retention and plastic degradation during composting.

摘要

通过堆肥处理可生物降解塑料已受到越来越多的关注。本研究旨在探究生物炭FN1细菌和硫酸亚铁对堆肥过程中氮素保留、温室气体排放及可降解塑料的影响,并阐明它们对微生物群落的协同作用机制。与对照相比,施用负载生物炭的FN1细菌复合材料与硫酸亚铁(SGC)显著加速了有机物降解,减少了CO和NH的累积排放。复合材料与硫酸亚铁之间的协同相互作用显著提高了嗜热阶段的NH-N水平和冷却阶段的NO-N水平,最终使氮素损失降低了14.9%(P < 0.05),种子发芽指数(GI)提高了22.5%(P < 0.05)。此外,PBAT塑料降解率提高了31.6%(P < 0.05)。SGC处理还改变了堆肥和PBAT塑料球中细菌群落的丰富度和多样性,尤其在属水平上影响了鞘氨醇杆菌属、假单胞菌属和黄杆菌属。共生网络分析和冗余分析表明,这些功能降解细菌与NO-N水平和PBAT降解显著正相关。此外,结构方程模型表明PBAT降解速率与堆肥温度呈正相关(r = 0.69,p < 0.05)。研究结果表明,Fe不仅增强了FN1活性,还通过增加PBAT塑料球上的·OH含量促进了PBAT降解。总体而言,负载生物炭的FN1细菌与硫酸亚铁联合使用有效地促进了堆肥过程中的氮素保留和塑料降解。

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