State Environmental Protection Key Laboratory of Wetland Ecology and Vegetation Restoration, School of Environment, Northeast Normal University, Changchun, Jilin 130024, China.
State Environmental Protection Key Laboratory of Wetland Ecology and Vegetation Restoration, School of Environment, Northeast Normal University, Changchun, Jilin 130024, China.
Environ Pollut. 2020 May;260:114101. doi: 10.1016/j.envpol.2020.114101. Epub 2020 Jan 31.
The conductive polyurethane/polypyrrole/graphene (CPU/PPy/Gr) particle electrode was prepared by an in-situ oxidative polymerization method and used as particle electrodes to degrade levofloxacin (LEV) in a three-dimensional electrode reactor. The prepared CPU/PPy/Gr electrode was characterized systematically and the effects of initial pH, initial LEV concentration, aeration volume, voltage, and electrolyte concentration on the degradation efficiency were investigated. Results showed that more than 90% LEV was degraded and the energy consumption was 20.12 kWh/g LEV under conditions of pH 7, 6 V voltage, 2.0 L/min aeration volume, 20 mg/L initial LEV concentration, and 7 mM concentration of electrolyte (NaSO). A possible electrochemical oxidation pathway of LEV by the CPU/PPy/Gr electrode was proposed. In addition, the biotoxicity of LEV and its oxidation products was calculated using ECOSAR (Ecological Structure Activity Relationships) program in EPISuite. Toxicity evaluation using luminescent bacteria showed that the toxicities of some intermediates were higher than the parent compound. But the toxicity of degradation processes for LEV was effective decreasing. A possible reactive mechanism in the three-dimensional reactor was also recommended. In brief, the prepared CPU/PPy/Gr particle electrode constitutes an insight into the promising practical application in the wastewater treatment.
采用原位氧化聚合法制备了导电型聚氨酯/聚吡咯/石墨烯(CPU/PPy/Gr)复合粒子电极,将其作为粒子电极用于三维电极反应器中降解左氧氟沙星(LEV)。系统地表征了制备的 CPU/PPy/Gr 电极,并考察了初始 pH 值、初始 LEV 浓度、曝气体积、电压和电解质浓度对降解效率的影响。结果表明,在 pH 值为 7、6 V 电压、2.0 L/min 曝气体积、20 mg/L 初始 LEV 浓度和 7 mM 电解质(NaSO)条件下,超过 90%的 LEV 被降解,能耗为 20.12 kWh/g LEV。提出了 CPU/PPy/Gr 电极电化学氧化 LEV 的可能途径。此外,还使用 EPISuite 中的 ECOSAR(生态结构活性关系)程序计算了 LEV 及其氧化产物的生物毒性。发光细菌毒性评价表明,一些中间产物的毒性高于母体化合物。但 LEV 降解过程的毒性有效降低。还推荐了一种在三维反应器中的可能反应机制。总之,所制备的 CPU/PPy/Gr 复合粒子电极构成了在废水处理中具有广阔应用前景的见解。