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掺铋 PbO 电极电化学预处理煤气化废水:阳极制备、效率及机理。

Electrochemical pretreatment of coal gasification wastewater with Bi-doped PbO electrode: Preparation of anode, efficiency and mechanism.

机构信息

State Key Laboratory of Urban Water Resource and Environment (SKLUWRE), School of Environment, Harbin Institute of Technology, Harbin, 150090, China.

School of Environmental and Geography Sciences, Shanghai Normal University, Shanghai, 200234, China.

出版信息

Chemosphere. 2020 Jun;248:126021. doi: 10.1016/j.chemosphere.2020.126021. Epub 2020 Jan 24.

Abstract

Coal gasification wastewater (CGW) contains a large amount of toxic pollutants, which seriously affects the subsequent biochemical treatment. In order to investigate the efficiency of electrocatalytic oxidation on pretreatment of CGW, lead dioxide electrodes doped with PEG and Bi were successfully prepared. Scanning electron microscopy, energy dispersive spectroscopy and X-ray diffraction were comprehensively used to characterize the lead dioxide electrode and the electrochemical performance was also tested by linear sweep voltammetry curve, cyclic voltammetry curve and AC impedance. Biodegradability and toxicity of CGW were evaluated by dehydrogenase activity and acute toxicity, respectively. Results showed that the doping of PEG and Bi significantly improved the electrochemical performance and catalytic oxidation performance of lead dioxide electrodes. The degradation rate of phenol by Sn-Sb/PbO (PEG + Bi) electrode were 1.57 times of that by pure lead dioxide electrode. The removal of TOC and total phenols were 53.2% and 82.7%, respectively at 120 min under 40 mA cm by Sn-Sb/PbO (PEG + Bi) electrode. The changes of biodegradability, biological toxicity and by-products were analyzed. Furthermore, 3,5-dimethylphenol was used as characteristic pollutant to study the degradation mechanism of phenolic pollutants in electrocatalytic system. According to the intermediate products detected by GC-MS, possible degradation pathways in electrocatalytic system were proposed.

摘要

煤气化废水(CGW)含有大量有毒污染物,严重影响后续的生化处理。为了研究电催化氧化预处理 CGW 的效果,成功制备了掺杂 PEG 和 Bi 的二氧化铅电极。采用扫描电子显微镜、能谱和 X 射线衍射对二氧化铅电极进行了综合表征,并通过线性扫描伏安曲线、循环伏安曲线和交流阻抗测试了其电化学性能。通过脱氢酶活性和急性毒性分别评估了 CGW 的生物降解性和毒性。结果表明,PEG 和 Bi 的掺杂显著提高了二氧化铅电极的电化学性能和催化氧化性能。Sn-Sb/PbO(PEG+Bi)电极对苯酚的降解率是纯二氧化铅电极的 1.57 倍。在 40 mA cm下,Sn-Sb/PbO(PEG+Bi)电极在 120 min 内可将 TOC 和总酚的去除率分别达到 53.2%和 82.7%。分析了生物降解性、生物毒性和副产物的变化。此外,以 3,5-二甲基苯酚为特征污染物,研究了电催化体系中酚类污染物的降解机制。根据 GC-MS 检测到的中间产物,提出了电催化体系中可能的降解途径。

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