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首页> 外文期刊>Environmental Science and Pollution Research >Electrochemical degradation of ciprofloxacin on BDD anode using a differential column batch reactor: mechanisms, kinetics and pathways
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Electrochemical degradation of ciprofloxacin on BDD anode using a differential column batch reactor: mechanisms, kinetics and pathways

机译:使用差分柱间歇式反应器的BDD阳极对Ciphofloxacin的电化学降解:机制,动力学和途径

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摘要

A growing number of electrochemical oxidation system was employed for the degradation of refractory contaminants. In this study, a boron-doped diamond (BDD) anode/Ti cathode equipped in the differential column batch reactor (DCBR) was utilized for electrochemical oxidation of ciprofloxacin (CIP). The feed solution within the DCBR system was confirmed as a uniform flow state through a computational fluid dynamics (CFD) simulation analysis. The results showed that the BDD anode/Ti cathode electrochemical system was with a high efficiency oxidation performance when treating the CIP contaminant. The CIP was completely degraded within 20 min, and over 50% DOC removed after 120 min. Therefore, two-stage electrochemical oxidation mechanism was proposed. Four major factors, the initial concentration, current density, pH, and electrolyte concentration, on the CIP degradation efficiency were systematically investigated. The CIP degradation curve followed pseudo first-order degradation kinetics. The electric efficiency per order (EE/O) of the electrochemical oxidation system was calculated to determine an optimal operation condition. Moreover, the oxidation intermediates were identified with a mass spectrometry (LC/MS/MS) and the degradation pathways were proposed in this study. The destruction of quinolone moiety and piperazine ring and fluorine substitution were the three possible degradation pathways during BDD anode oxidation process.
机译:使用越来越多的电化学氧化体系用于难治性污染物的降解。在该研究中,用于在差示批次反应器(DCBR)中配备的硼掺杂的金刚石(BDD)阳极/ TI阴极用于CiProfloxacin(CIP)的电化学氧化。通过计算流体动力学(CFD)仿真分析,确认DCBR系统内的进料溶液作为均匀的流动状态。结果表明,在治疗CIP污染物时,BDD阳极/ TI阴极电化学系统具有高效率的氧化性能。 CIP在20分钟内完全降解,120分钟后除去超过50%的DOC。因此,提出了两级电化学氧化机理。系统地研究了四个主要因素,初始浓度,电流密度,pH和电解质浓度,得到了CIP降解效率。 CIP劣化曲线遵循伪首次降级动力学。计算电化学氧化系统的电效率(EE / O)以确定最佳操作条件。此外,用质谱法(LC / MS / MS)鉴定氧化中间体,并在本研究中提出降解途径。喹啉部分和哌嗪环的破坏是BDD阳极氧化过程中的三种可能的降解途径。

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