School of Chemistry and Chemical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, PR China.
School of Chemistry and Chemical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, PR China; School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, PR China.
J Hazard Mater. 2022 Feb 15;424(Pt D):127651. doi: 10.1016/j.jhazmat.2021.127651. Epub 2021 Nov 1.
A novel electrochemically enhanced homogeneous-heterogeneous catalytic system was constructed by placing the prepared heterogeneous catalyst (CoFeO/NF) in parallel between the anode and the cathode for peroxymonosulfate (PMS) activation to remove levofloxacin (LVF) in this work. Over 90% of LVF could be effectively removed by the constructed system after 40 min's degradation. And the electrical energy consumption was only 2.51 kWh/m, which was lower than 54.5% of the traditional electrochemical advanced oxidation process. Besides, the system broadened the response range of pH and overcame the inhibitory effect of alkaline conditions on degradation. These activities were mainly due to the high generation ability of free radical (SO, ·OH and O) and non-radical (O). And the SO was found to be the main radical for LVF degradation. The high SO generation ability was demonstrated to be resulted from the dual effects of synergy of CoFeO/PMS and enhancement of electrochemistry in EC/CoFeO/PMS system. In detail, electrochemistry could effectively promote the continuous circulation of Co/Co and Fe/Fe redox cycles on the surface of CoFeO to enhance the activation of PMS, thereby generating SO. This work can provide a promising and cost-effective approach to construct highly efficient organic pollutant degradation system.
本工作构建了一种新型电增强均相-多相催化体系,将制备的多相催化剂(CoFeO/NF)平行放置在阳极和阴极之间,用于过一硫酸盐(PMS)的活化以去除左氧氟沙星(LVF)。在 40 分钟的降解后,构建的系统可有效去除 90%以上的 LVF。而且电能消耗仅为 2.51 kWh/m,低于传统电化学高级氧化工艺的 54.5%。此外,该系统拓宽了 pH 的响应范围,并克服了碱性条件对降解的抑制作用。这些活性主要归因于自由基(SO、·OH 和 O)和非自由基(O)的高生成能力。并且发现 SO 是 LVF 降解的主要自由基。高 SO 生成能力归因于 CoFeO/PMS 的协同作用和 EC/CoFeO/PMS 系统中电化学增强的双重作用。具体而言,电化学可以有效地促进 Co/Co 和 Fe/Fe 氧化还原循环在 CoFeO 表面的连续循环,从而增强 PMS 的活化,从而生成 SO。这项工作为构建高效有机污染物降解系统提供了一种有前景且具有成本效益的方法。