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首页> 外文期刊>Journal of Cleaner Production >In situ electrochemical remediation of brackish river sediment rich in aromatic organic matter using steel-slag-combined sediment microbial fuel cells
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In situ electrochemical remediation of brackish river sediment rich in aromatic organic matter using steel-slag-combined sediment microbial fuel cells

机译:使用钢 - 渣沉积物微生物燃料电池富含芳族有机质富含芳香有机物质的咸河沉积物的原位电化学修复

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摘要

Steel slag was employed as an additional substrate for power generation in sediment microbial fuel cells (SMFCs), and its role in the degradation of recalcitrant organic matter and sediment remediation was investigated. Steel slag improved the degradation of soil organic matter (SOM) in SMFC by 69 % compared to an individual SMFC with a 6.3-times higher charge production. Thermogravimetric and infrared spectroscopy analyses showed that steel slag humified SOM whereas the SMFC oxidatively degraded it. The humification by steel slag was attributed to the coordination with iron, it facilitated the accessibility of oxygen and stimulated oxidative degradation by the SMFC. As a result, aliphatic and aromatic compounds were degraded by 53 and 44 wt %, respectively, compared to the control. Additionally, ferrous ions eluted from the steel slag precipitated highly concentrated hydrogen sulfide as ferrous sulfide, leading to a noticeable increase in the voltage potential with respect to a standard hydrogen electrode (Eh) in the sediments. Overall, steel slag significantly enhances the efficiency of renewable energy production of SMFCs, and contributes to the remediation of benthic ecosystem by the development of aliphatic recalcitrant organic matter and increase in oxidation-reduction potential.
机译:钢渣用作沉积物微生物燃料电池(SMFC)中的用于发电的额外衬底,研究了其在核批量有机物质和沉积物修复的降解中的作用。与个体SMFC相比,钢渣改善了SMFC中的土壤有机物质(SOM)的降解了69%,具有较高的电荷产生的6.3倍。热重度和红外光谱分析显示,钢渣所处的SOM,而SMFC氧化地降解。钢渣的湿化归因于与铁的配位,它促进了SMFC的氧气可达性和刺激氧化降解。结果,与对照相比,脂族和芳族化合物分别降低53和44wt%。另外,从钢渣洗脱的亚铁离子沉淀出高度浓缩的硫化氢作为铁硫化物,导致沉积物中标准氢电极(EH)的电压电位显着增加。总的来说,钢渣显着提高了SMFC的可再生能源生产的效率,并通过脂族醋塑有机物的发展导致底栖生态系统的修复,并增加氧化还原潜力。

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