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A novel layer-by-layer CNT/PbO2 anode for high-efficiency removal of PCP-Na through combining adsorption/electrosorption and electrocatalysis

机译:通过组合吸附/电机和电闭合通过组合吸附和电闭合,一种新型的逐层CNT / PBO2阳极,用于高效除去PCP-Na

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Electrochemical oxidation is an effective mean to degrade non-biodegradable organics from the contaminated waters. However, its current efficiency is very low for the low-concentration organic pollutants treatment. In this work, combining with the outstanding adsorption property of CNT and the effective electrocatalytic oxidation performance of beta-PbO2, we constructed novel layer-by-layer carbon nanotube/PbO2 anodes (CNT/PbO2-3, CNT/PbO2-4 and CNT/PbO2-5) with high adsorbability to enhance the electrochemical degradation efficiency of low-concentration sodium pentachlorophenate (PCP-Na). In electrochemical oxidation tests, the PCP-Na was rapidly enriched in the CNT/PbO2 film through adsorption/electrosorption and then efficiently degraded in site. The removal efficiency of low-concentration PCP-Na (5 mg/L) on CNT/PbO2-4 reached 73.8% after only 5 min of electrolysis, whereas that on pure PbO2 was only 9.9%. To further clarify the mechanism of improvement of PCP-Na removal on CNT/PbO2-4 anode, the generation capacity of center dot OH radicals, oxygen evolution overpotential, voltammetric charge quantity, interface resistance, and specific surface area of CNT/PbO2-4 anode were also assessed and compared with those of other three anodes. Results showed that, in addition to the synergistic effect of adsorption/electrosorption and electrocatalysis, the more active sites, smaller electron transfer resistance and higher direct oxidation capacity of CNT/PbO2-4 anode also contributed to improving degradation rate of PCP-Na on CNT/PbO2-4 anode. Additionally the electrochemical degradation pathway of PCP-Na was also proposed based on the gas chromatography-mass spectrometry analysis. Finally, CNT/PbO2-4 electrode exhibited longer accelerated lifetime of 116 h than pure PbO2 electrode (91 h). Thus, these findings provide a new anode to improve the removal of low-concentration organic pollutants through combining electrochemical oxidation and adsorption/electrosorption processes. (C) 2019 Elsevier Ltd. All rights reserved.
机译:电化学氧化是从污染水中降解非生物降解的有机物的有效平均值。然而,对于低浓度有机污染物治疗,其目前的效率非常低。在这项工作中,结合CNT的出色吸附性和β-PBO2的有效电催化氧化性能,我们构建了新的逐层碳纳米管/ PbO2阳极(CNT / PbO2-3,CNT / PbO2-4和CNT / PBO2-5)具有高吸附性,提高低浓度五氯苯甲酸钠(PCP-NA)的电化学降解效率。在电化学氧化试验中,通过吸附/黑色迅速富集CNT / PBO 2膜中的PCP-NA,然后在现场有效降解。电解中仅5分钟的CNT / PBO2-4上的低浓度PCP-Na(5mg / L)的去除效率达到73.8%,而纯PBO 2上仅为9.9%。为了进一步阐明改善CNT / PBO2-4阳极的PCP-NA去除机制,中心点OH激进的发电能力,氧气演化过电,伏安电荷量,界面电阻和CNT / PBO2-4的比表面积还评估阳极并与其他三个阳极的阳极进行评估。结果表明,除了吸附/吸油和电催化的协同效应外,CNT / PBO2-4阳极的较小的基位,较小的电子转移抗性和较高的直接氧化能力也有助于提高CNT上PCP-NA的降解速率/ pbo2-4阳极。另外,还基于气相色谱 - 质谱分析提出了PCP-NA的电化学降解途径。最后,CNT / PBO2-4电极表现出比纯PBO2电极(91小时)的116小时延长加速寿命。因此,这些发现提供了一种新的阳极,以通过组合电化学氧化和吸附/吸热过程来改善低浓度有机污染物的去除。 (c)2019 Elsevier Ltd.保留所有权利。

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