Liu Ning, Liu Xinmin, Guo Qingjie
College of Chemical Engineering, Qingdao University of Science and Technology, Qingdao, People's Republic of China.
Environ Technol. 2025 Jul;46(17):3438-3453. doi: 10.1080/09593330.2025.2464980. Epub 2025 Feb 18.
Inorganic salts and nitrogen compounds are prevalent in wastewater from chemical, pharmaceutical, and petrochemical industries. Nitrogen-containing wastewater in high-salt environments was treated in an anaerobic fluidised bed microbial fuel cell (AFB-MFC) with carbon brush biofilm anodes and macroporous adsorption resin (MAR) as a multifunctional biofilm carrier. During the experiment, the DO value of the influent was maintained between 0.2-0.5 mg/L, and the nitrogen concentrations in the influent were 0.3, 0.5, and 1.0 g/L, respectively. Materials Studio (MS) software was used to construct nitrogen-containing compounds and MAR models. The simulation result indicated that MAR exhibited the best adsorption performance on nitrite nitrogen, with an adsorption heat of 117.7985 kJ/mol. MAR effectively removes nitrogen-containing compounds through van der Waals forces and hydrogen bonding interactions. The simulation closely matched experimental results, with a high R² (>0.99) indicating strong regression significance. The highest removal efficiency of ammonia nitrogen, nitrite nitrogen, and nitrate nitrogen was 97.97 ± 0.97%, 98.81 ± 1%, and 99 ± 0.47%, respectively. The results showed that the desalination efficiency was 55%, 41.5%, and 27% at salinities of 10, 20, and 30 g/L, respectively. The maximum output voltage and power density achieved using carbon brush as biofilm anodes in the AFB-MFC were 651.34 mV and 174.97 mW/m², respectively. The high-throughput sequencing analysis results revealed a significant relative abundance of the dominant electroactive bacteria present on the carbon brush, such as , , , and , and also identified such superior denitrification bacteria as , , , and etc.
无机盐和氮化合物在化工、制药和石化行业的废水中普遍存在。采用碳刷生物膜阳极和大孔吸附树脂(MAR)作为多功能生物膜载体的厌氧流化床微生物燃料电池(AFB-MFC)处理高盐环境下的含氮废水。实验期间,进水的溶解氧(DO)值维持在0.2 - 0.5mg/L之间,进水氮浓度分别为0.3、0.5和1.0g/L。使用Materials Studio(MS)软件构建含氮化合物和MAR模型。模拟结果表明,MAR对亚硝酸盐氮表现出最佳吸附性能,吸附热为117.7985kJ/mol。MAR通过范德华力和氢键相互作用有效去除含氮化合物。模拟结果与实验结果高度吻合,高决定系数(R²>0.99)表明回归显著性强。氨氮、亚硝酸盐氮和硝酸盐氮的最高去除效率分别为97.97±0.97%、98.81±1%和99±0.47%。结果表明,在盐度分别为10、20和30g/L时,脱盐效率分别为55%、41.5%和27%。在AFB-MFC中使用碳刷作为生物膜阳极实现的最大输出电压和功率密度分别为651.34mV和174.97mW/m²。高通量测序分析结果显示,碳刷上存在显著相对丰度的优势电活性细菌,如 、 、 和 等,还鉴定出 、 、 和 等优良反硝化细菌。