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同时电氧化和原位电过氧过程用于降解废水中的难降解有机物。

Simultaneous electro-oxidation and in situ electro-peroxone process for the degradation of refractory organics in wastewater.

机构信息

Beijing Key Laboratory of Bio-Inspired Energy Materials and Devices, School of Space & Environment, Beihang University, Shahe Campus, Beijing 102206, China.

Beijing Key Laboratory of Bio-Inspired Energy Materials and Devices, School of Space & Environment, Beihang University, Shahe Campus, Beijing 102206, China.

出版信息

J Hazard Mater. 2019 Feb 15;364:468-474. doi: 10.1016/j.jhazmat.2018.10.073. Epub 2018 Oct 23.

DOI:10.1016/j.jhazmat.2018.10.073
PMID:30384256
Abstract

During electro-oxidation (EO) wastewater treatment, the applied voltage must polarize both a dimensionally stable anode with a sufficiently high potential to effectively produce hydroxyl radicals (OH), as well as a cathode with a sufficiently low potential to catalyze the H evolution reaction (HER). Nevertheless, H does not contribute to pollutant degradation and yet increases energy consumption. Inspired by fuel cell technology, in which the O reduction reaction (ORR) is catalyzed on the cathode, herein, a carbon nanotube-coated carbon-PTFE gas diffusion electrode was fabricated to catalyze ORR during EO for the treatment of leachate concentrates. In comparison to conventional HER-EO, ORR-EO was shown to save 17.7-23.2% energy consumption. Further, as the cathodic ORR byproduct, HO can react with the ozone generated from the Ti/SnO-SbO anode to catalyze the peroxone process, which enhances OH generation for the degradation of organic products. This in situ electro-peroxone process was determined by salicylic acid OH trapping and liquid chromatography. The novel simultaneous EO and in situ electro-peroxone process described herein has great application potential and economic merit in the degradation of refractory organics in wastewater.

摘要

在电氧化(EO)废水处理过程中,施加的电压必须使具有足够高电位的尺寸稳定阳极极化,以有效地产生羟基自由基(OH),以及具有足够低电位的阴极极化以催化析氢反应(HER)。然而,H 并不会促进污染物降解,反而会增加能源消耗。受燃料电池技术的启发,在燃料电池技术中,阴极上催化氧还原反应(ORR),本文制备了一种涂有碳纳米管的碳-PTFE 气体扩散电极,以在 EO 过程中催化 ORR,用于处理渗滤液浓缩物。与传统的 HER-EO 相比,ORR-EO 可节省 17.7-23.2%的能源消耗。此外,作为阴极 ORR 的副产物,HO 可以与 Ti/SnO-SbO 阳极产生的臭氧反应,催化过氧单硫酸盐过程,从而增强 OH 的生成,以降解有机产物。通过水杨酸 OH 捕获和液相色谱法确定了该原位电过氧单硫酸盐过程。本文所述的新型同时 EO 和原位电过氧单硫酸盐过程在废水难降解有机物的降解方面具有很大的应用潜力和经济价值。

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