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草酸盐增强的 Fered-Fenton 体系中协同降解磺胺甲恶唑:关键的非均相固-液界面机制及实际应用中的深入了解。

Synergistic degradation of sulfamethoxazole in an oxalate-enhanced Fered-Fenton system: The critical heterogeneous solid-liquid interfacial mechanism and an insight in practical application.

机构信息

School of Environmental Science and Engineering, Huazhong University of Science and Technology, Wuhan, 430074, PR China; Key Laboratory of Water and Wastewater Treatment (HUST), MOHURD, Wuhan 430074, PR China.

School of Environmental Science and Engineering, Huazhong University of Science and Technology, Wuhan, 430074, PR China.

出版信息

J Hazard Mater. 2020 Jun 15;392:122268. doi: 10.1016/j.jhazmat.2020.122268. Epub 2020 Feb 10.

DOI:10.1016/j.jhazmat.2020.122268
PMID:32109792
Abstract

It was demonstrated in this study that appropriate concentrations of oxalate (Ox) would lead to greatly accelerated electro-generation of Fe but obviously lower power consumption in the Fered-Fenton system. Depending on the Ti electrode with pristine TiO layer, effects of important parameters on the SMX degradation were investigated in the Fered-Fenton-Ox system. It was found that the heterogeneous interfacial electrochemically reduction of Fe was critical in the Fered-Fenton-Ox system relying on the surface hydroxyl bonding Fe-Ox and formation of FeOTi bonds. A heterogeneous-homogeneous reaction mechanism was therefore proposed. It included the heterogeneous interfacial electrochemical generation of Fe-Ox and the heterogeneous-homogenous Fenton oxidation of pollutants. The promotional role of Ox would be also homogenous and heterogeneous, i.e. maintaining ferric at higher pH and forming specific Fe-Ox complex as well as accelerating the solid-liquid interfacial heterogeneous iron cycle. Furthermore, a continuous-flow pilot study was conducted in treating a printing and dyeing industrial wastewater. As compared to conventional Fenton and Fered-Fenton systems, the Fered-Fenton-Ox system could achieve more efficient COD removal with a relative low cost/△COD, suggesting great advantages in its practical applications for treating real industrial complex wastewaters.

摘要

本研究表明,适当浓度的草酸盐(Ox)会极大地加速 Fered-Fenton 体系中 Fe 的电生成,但明显降低能耗。在具有原始 TiO 层的 Ti 电极上,考察了 Fered-Fenton-Ox 体系中重要参数对 SMX 降解的影响。研究发现,Fe 的异质界面电化学还原在依赖表面羟基键合 Fe-Ox 和形成 FeOTi 键的 Fered-Fenton-Ox 体系中是关键的。因此,提出了一种非均相-均相反应机理。它包括 Fe-Ox 的非均相界面电化学生成和污染物的非均相-均相 Fenton 氧化。Ox 的促进作用也具有均相和非均相,即保持较高 pH 值下的铁离子,并形成特定的 Fe-Ox 配合物,以及加速固液界面的非均相铁循环。此外,还进行了处理印染工业废水的连续流中试研究。与传统的 Fenton 和 Fered-Fenton 体系相比,Fered-Fenton-Ox 体系可以以相对较低的成本/△COD 实现更高效的 COD 去除,这表明在实际处理复杂工业废水方面具有很大的优势。

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