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FeO-MnO/CNT 纳米杂化电活性滤膜通过过一硫酸盐活化实现超快微污染物的去除:性能与机制。

Peroxymonosulfate activation by FeO-MnO/CNT nanohybrid electroactive filter towards ultrafast micropollutants decontamination: Performance and mechanism.

机构信息

Textile Pollution Controlling Engineering Center of Ministry of Environmental Protection, College of Environmental Science and Engineering, Donghua University, Shanghai 201620, China.

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

出版信息

J Hazard Mater. 2022 Feb 5;423(Pt A):127111. doi: 10.1016/j.jhazmat.2021.127111. Epub 2021 Sep 2.

DOI:10.1016/j.jhazmat.2021.127111
PMID:34526271
Abstract

Electrocatalytic peroxymonosulfate (PMS) activation is a promising advanced oxidation process for the degradation of micropollutants. Herein, we developed an electroactive carbon nanotube (CNT) filter functionalized with FeO-MnO hybrid (FeO-MnO/CNT) to activate PMS towards ultrafast degradation of sulfamethoxazole (SMX). SMX was completely degraded via a single-pass through the nanohybrid filter (τ < 2 s). The ultrafast degradation kinetics were maintained across a wide pH range (from 3.0 to 8.0), in complicated matrices (e.g., tap water, lake water, WWTP effluent and pharmaceutical wastewater), and for the degradation of various persistent micropollutants. Compared with a conventional batch reactor, the flow-through operation provides an 9.2-fold higher SMX degradation kinetics by virtue of the convection-enhanced mass transport (1.47 vs. 0.16 min). The efficient redox cycle of Fe/Fe and Mn/Mn facilitate the PMS activation to generate SO under electric field. Meanwhile, the ketonic groups on the CNT provide active sites for the generation of O. Both experimental and theoretical results revealed the superior activity of nanohybrid filter associated with the synergistic effects among Fe, Mn, CNT and electric field. Therefore, the electrocatalytic filter based PMS activation system provides a green strategy for the remediation of micropollutants in a sustainable manner.

摘要

电催化过一硫酸盐(PMS)活化是一种很有前途的高级氧化工艺,可用于降解微量污染物。在此,我们开发了一种功能化有 FeO-MnO 杂化物的电活性碳纳米管(CNT)过滤器(FeO-MnO/CNT),以活化 PMS 来实现磺胺甲恶唑(SMX)的超快速降解。SMX 可通过纳米杂化物过滤器的单次通过(τ<2 s)完全降解。超快降解动力学在很宽的 pH 范围内(从 3.0 到 8.0)、复杂基质中(例如自来水、湖水、WWTP 流出物和制药废水)以及各种持久性微量污染物的降解中都能保持。与传统的分批式反应器相比,由于对流增强的质量传递,流动式操作提供了 9.2 倍更高的 SMX 降解动力学(1.47 与 0.16 min)。Fe/Fe 和 Mn/Mn 的有效氧化还原循环促进了电场下 PMS 生成 SO 的活化。同时,CNT 上的酮基提供了生成 O 的活性位点。实验和理论结果都揭示了纳米杂化物过滤器的优异活性与 Fe、Mn、CNT 和电场之间的协同作用有关。因此,基于电催化过滤的 PMS 活化系统为微量污染物的可持续修复提供了一种绿色策略。

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