首页> 外文期刊>Chemical engineering journal >Degradation of levofloxacin in aqueous solutions by Fenton, ferrous ion-activated persulfate and combined Fenton/persulfate systems
【24h】

Degradation of levofloxacin in aqueous solutions by Fenton, ferrous ion-activated persulfate and combined Fenton/persulfate systems

机译:Fenton,亚铁离子活化的过硫酸盐和Fenton /过硫酸盐组合系统对左氧氟沙星的降解

获取原文
获取原文并翻译 | 示例
           

摘要

The efficacies of Fenton (H2O2/Fe2+), Fe2+-activated persulfate (S2O82-/Fe2+) and combined Fenton/persulfate (H2O2/S2O82-/Fe2+) systems for degrading levofloxacin (LFX) in aqueous solutions were investigated and compared. The LFX degradation by classical Fenton oxidation followed a pseudo-first-order kinetic law during the entire reaction. In the case of the S2O82-/Fe2+ and H2O2/S2O82-/Fe2+ systems, a fast degradation of LFX was observed within the first minute, and then the target compound was gradually degraded within the remaining reaction time. Notably, without consideration of the first minute, the rest of the LFX degradation in the S2O82-/Fe2+ system also followed the pseudo-first-order kinetic model. The application of combined Fenton/persulfate oxidation was promising, and after careful adjustment of oxidants and activator doses, it demonstrated a considerable improvement in LFX degradation compared with the Fe2+-activated persulfate system and a somewhat similar efficacy to the Fenton process. Among the studied processes, the H2O2/Fe2+ system showed the highest performance both in LFX degradation and mineralization, followed by the combined H2O2/S2O82-/Fe2+ process. Six LFX transformation products were identified by LC-MS analysis in all studied systems, indicating that hydroxyl radicals are the predominant oxidative species in H2O2/Fe2+, S2O82-/Fe2+, and H2O2/S2O82-/Fe2+ processes. In summary, all studied radical-based advanced oxidation technologies proved to be promising techniques for the treatment of wastewater and in situ groundwater containing LFX, with a particularly high potential for the combined Fenton/persulfate system. (C) 2015 Elsevier B.V. All rights reserved.
机译:研究并比较了Fenton(H2O2 / Fe2 +),Fe2 +活化的过硫酸盐(S2O82- / Fe2 +)和Fenton /过硫酸盐(H2O2 / S2O82- / Fe2 +)组合体系降解水溶液中左氧氟沙星(LFX)的效率。在整个反应过程中,经典Fenton氧化引起的LFX降解遵循拟一级动力学定律。对于S2O82- / Fe2 +和H2O2 / S2O82- / Fe2 +系统,在第一分钟内观察到LFX迅速降解,然后目标化合物在剩余反应时间内逐渐降解。值得注意的是,在不考虑第一分钟的情况下,S2O82- / Fe2 +系统中其余的LFX降解也遵循伪一级动力学模型。结合芬顿/过硫酸盐氧化的应用是有前途的,并且在仔细调整氧化剂和活化剂的剂量后,与Fe2 +活化的过硫酸盐体系相比,它在LFX降解方面显示出显着改善,并且功效与芬顿过程相似。在所研究的过程中,H2O2 / Fe2 +系统在LFX降解和矿化方面均表现出最高的性能,随后是H2O2 / S2O82- / Fe2 +组合过程。在所有研究的系统中,通过LC-MS分析鉴定出六种LFX转化产物,表明羟基自由基是H2O2 / Fe2 +,S2O82- / Fe2 +和H2O2 / S2O82- / Fe2 +过程中的主要氧化物种。总而言之,所有研究的基于自由基的先进氧化技术被证明是用于处理含LFX的废水和原位地下水的有前途的技术,对于Fenton /过硫酸盐联合系统具有特别高的潜力。 (C)2015 Elsevier B.V.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号