Hao Jiajie, Wu Lieshan, Lu Xiaowei, Zeng Yalin, Jia Bing, Luo Tingting, He Shixing, Liang Liuling
Guangxi University, School of Resources Environment and Materials Nanning 530004 China
Guangxi Zhuang Autonomous Region Ecological and Environmental Monitoring Centre Nanning 530028 China.
RSC Adv. 2022 Nov 4;12(49):31650-31662. doi: 10.1039/d2ra05334a. eCollection 2022 Nov 3.
In this study, Fe-Co-modified biochar (FMBC) loaded with iron (Fe) and cobalt (Co) bimetals after NaOH activation was prepared by pyrolysis using forestry waste cedar bark as a raw material to study its properties and the adsorption of ofloxacin (OFX). The surface structure and chemical properties were analyzed by BET, SEM-EDS, XRD, XPS, and FTIR characterization, and the results showed that the FMBC possessed a larger specific surface area and abundant surface functional groups. FMBC conformed to pseudo-second-order kinetic and Langmuir isotherm models, indicating that the OFX adsorption process on FMBC was a monolayer adsorption process and controlled by chemisorption. The saturation adsorption capacity of FMBC was 10 times higher than that of cedar bark biochar (BC). In addition, the effects of initial pH and coexisting ions on the adsorption process were investigated, and FMBC showed good adsorption, with the best adsorption capacity at pH = 7. Multiple adsorption mechanisms, including physical and chemical interactions, were involved in the adsorption of OFX by FMBC. TG, metal leaching, different water sources, and VSM tests showed that FMBC had good stability and was easily separated from water. Finally, the reusability performance of FMBC was investigated by various methods, and after five cycles it could still reach 75.78-89.31% of the adsorption capacity before recycling. Therefore, the FMBC synthesized in this study is a promising new adsorbent.
在本研究中,以林业废弃物雪松树皮为原料,通过热解制备了经氢氧化钠活化后负载铁(Fe)和钴(Co)双金属的铁钴改性生物炭(FMBC),以研究其性能及对氧氟沙星(OFX)的吸附性能。通过BET、SEM-EDS、XRD、XPS和FTIR表征分析了其表面结构和化学性质,结果表明FMBC具有较大的比表面积和丰富的表面官能团。FMBC符合准二级动力学和朗缪尔等温线模型,表明FMBC对OFX的吸附过程为单层吸附过程且受化学吸附控制。FMBC的饱和吸附容量比雪松树皮生物炭(BC)高10倍。此外,研究了初始pH值和共存离子对吸附过程的影响,FMBC表现出良好的吸附性能,在pH = 7时吸附容量最佳。FMBC对OFX的吸附涉及多种吸附机制,包括物理和化学相互作用。TG、金属浸出、不同水源和VSM测试表明FMBC具有良好的稳定性,且易于从水中分离。最后,通过多种方法研究了FMBC的可重复使用性能,经过五个循环后,其吸附容量仍可达到循环前的75.78 - 89.31%。因此,本研究合成的FMBC是一种有前景的新型吸附剂。