Song Zi, Liao Runfeng, Su Xiaoli, Zhang Xin, Zhao Zilong, Sun Feiyun
State Key Laboratory of Urban Water Resource and Environment, Harbin Institute of Technology Shenzhen, Shenzhen 518055, China; School of Civil and Environmental Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, China.
Joint Research Centre for Protective Infrastructure Technology and Environmental Green Bioprocess, Department of Environmental and Municipal Engineering, Tianjin Chengjian University, Tianjin 300384, China.
Sci Total Environ. 2023 Dec 10;903:166980. doi: 10.1016/j.scitotenv.2023.166980. Epub 2023 Sep 10.
Different mass ratio iron (Fe)-loaded biochars (FeBCs) were prepared from food waste and used in the three-dimensional biofilm-electrode systems (3D-BES) as particular electrodes for landfill leachate treatment. Compared to the unmodified biochar (BC), specific surface area of Fe-loaded biochars (FeBC-3 with a Fe: biochar of 0.2:1) increased from 63.01 m/g to 184.14 m/g, and pore capacity increased from 0.038 cm/g to 0.111 cm/g. FeBCs provided more oxygen-containing functional groups and exhibited excellent redox properties. Installed with FeBC-3 as particular electrode, both NH-N and chemical oxygen demand COD removals in 3D-BESs were well fitted with the pseudo-first-order model, with the maximum removal efficiencies of 98.6 % and 95.5 %, respectively. The batch adsorption kinetics experiments confirmed that the maximum NH-N (7.5 mg/g) and COD (21.8 mg/g) adsorption capacities were associated closely with the FeBC-3 biochar. In contrast to the 3D-BES with the unmodified biochar, Fe-loaded biochars significantly increased the abundance of microorganisms being capable of removing organics and ammonia. Meanwhile, the increased content of dehydrogenase (DHA) and electron transport system activity (ETSA) evidenced that FeBCs could enhance microbial internal activities and regulate electron transfer process among functional microorganisms. Consequently, it is concluded that Fe-loaded biochar to 3D-BES is effective in enhancing pollutant removals in landfill leachate and provided a reliable and effective strategy for refractory wastewater treatment.
以食物垃圾为原料制备了不同质量比的铁负载生物炭(FeBCs),并将其用于三维生物膜电极系统(3D - BES)中作为处理垃圾渗滤液的特殊电极。与未改性生物炭(BC)相比,铁负载生物炭(Fe:生物炭为0.2:1的FeBC - 3)的比表面积从63.01 m²/g增加到184.14 m²/g,孔容从0.038 cm³/g增加到0.111 cm³/g。FeBCs提供了更多的含氧官能团,并表现出优异的氧化还原性能。以FeBC - 3作为特殊电极的3D - BESs中,NH₃ - N和化学需氧量(COD)的去除均很好地符合准一级模型,最大去除效率分别为98.6%和95.5%。批次吸附动力学实验证实,最大NH₃ - N(7.5 mg/g)和COD(21.8 mg/g)吸附容量与FeBC - 3生物炭密切相关。与使用未改性生物炭的3D - BES相比,铁负载生物炭显著增加了能够去除有机物和氨的微生物丰度。同时,脱氢酶(DHA)含量和电子传递系统活性(ETSA)的增加证明FeBCs可以增强微生物的内部活性并调节功能微生物之间的电子传递过程。因此,得出结论,铁负载生物炭应用于3D - BES对提高垃圾渗滤液中污染物的去除效果显著,为难处理废水的处理提供了一种可靠有效的策略。