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重新探讨过氧乙酸和高锰酸盐(VII)对微污染物的协同氧化作用:活性锰物种增强的电子转移机制。

Revisiting the synergistic oxidation of peracetic acid and permanganate(Ⅶ) towards micropollutants: The enhanced electron transfer mechanism of reactive manganese species.

机构信息

State Key Laboratory of Pollution Control and Resources Reuse, College of Environmental Science and Engineering, Tongji University, Shanghai 200092, PR China.

College of Environmental Science and Engineering, Donghua University, Shanghai 201620, PR China.

出版信息

Water Res. 2024 Sep 15;262:122105. doi: 10.1016/j.watres.2024.122105. Epub 2024 Jul 15.

Abstract

Synergistic actions of peroxides and high-valent metals have garnered increasing attentions in wastewater treatment. However, how peroxides interact with the reactive metal species to enhance the reactivity remains unclear. Herein, we report the synergistic oxidation of peracetic acid (PAA) and permanganate(Ⅶ) towards micropollutants, and revisit the underlying mechanism. The PAA-Mn(VII) system showed remarkable efficiency with a 28-fold enhancement on sulfamethoxazole (SMX) degradation compared to Mn(Ⅶ) alone. Extensive quenching experiments and electron spin resonance (ESR) analysis revealed the generation of unexpected Mn(V) and Mn(VI) beyond Mn(III) in the PAA-Mn(VII) system. The utilization efficiency of Mn intermediates was quantified using 2,2'-azino-bis(3-ethylbenzothiazoline)-6-sulfonate (ABTS), and the results indicated that PAA could enhance the electron transfer efficiency of reactive manganese (Mn) species, thus accelerating the micropollutant degradation. Density functional theory (DFT) calculations showed that Mn intermediates could coordinate to the O1 of PAA with a low energy gap, enhancing the oxidation capacity and stability of Mn intermediates. A kinetic model based on first principles was established to simulate the time-dependent concentration profiles of the PAA-Mn complexes and quantify the contributions of the PAA-Mn(III) complex (50.8 to 59.3 %) and the PAA-Mn(Ⅴ/Ⅵ) complex (40.7 to 49.2 %). The PAA-Mn(VII) system was resistant to the interference from complex matrix components (e.g., chloride and humic acid), leading to the high efficiency in real wastewater. This work provides new insights into the interaction of PAA with reactive manganese species for accelerated oxidation of micropollutants, facilitating its application in wastewater treatment.

摘要

过氧化物和高价金属的协同作用在废水处理中受到了越来越多的关注。然而,过氧化物如何与反应性金属物种相互作用以提高反应活性仍不清楚。在此,我们报告了过乙酸(PAA)和高锰酸盐(VII)协同氧化去除水中微量污染物的作用,并重新探讨了其潜在机制。与单独的高锰酸盐(VII)相比,PAA-Mn(VII) 体系对磺胺甲恶唑(SMX)的降解效率提高了 28 倍。大量的猝灭实验和电子自旋共振(ESR)分析表明,在 PAA-Mn(VII)体系中除了生成预期的 Mn(III)外,还生成了意想不到的 Mn(V)和 Mn(VI)。利用 2,2'-联氮-双(3-乙基苯并噻唑啉-6-磺酸)(ABTS)定量了 Mn 中间体的利用效率,结果表明 PAA 可以提高反应性锰(Mn)物种的电子转移效率,从而加速了微量污染物的降解。密度泛函理论(DFT)计算表明,Mn 中间体可以与 PAA 的 O1 配位,具有较低的能量间隙,从而增强了 Mn 中间体的氧化能力和稳定性。建立了基于第一性原理的动力学模型来模拟 PAA-Mn 配合物的时间依赖性浓度分布,并定量了 PAA-Mn(III)配合物(50.8%至 59.3%)和 PAA-Mn(V/VI)配合物(40.7%至 49.2%)的贡献。PAA-Mn(VII)体系对复杂基质成分(如氯化物和腐殖酸)的干扰具有抵抗力,因此在实际废水中具有高效性。这项工作为 PAA 与反应性锰物种相互作用加速微量污染物氧化提供了新的见解,为其在废水处理中的应用提供了便利。

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