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通过引入非氧化的氧化镁将过硫酸盐的激活从自由基途径调变为非自由基途径。

Tuning of Persulfate Activation from a Free Radical to a Nonradical Pathway through the Incorporation of Non-Redox Magnesium Oxide.

机构信息

Hubei Provincial Engineering Laboratory of Solid Waste Treatment, Disposal and Recycling, School of Environmental Science and Engineering , Huazhong University of Science and Technology , Wuhan 430074 , P. R. China.

Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education , and Hubei Key Laboratory of Material Chemistry and Service Failure, School of Chemistry and Chemical Engineering , Huazhong University of Science and Technology , Wuhan 430074 , P. R. China.

出版信息

Environ Sci Technol. 2020 Feb 18;54(4):2476-2488. doi: 10.1021/acs.est.9b04696. Epub 2020 Feb 4.

Abstract

Nonradical-based advanced oxidation processes for pollutant removal have attracted much attention due to their inherent advantages. Herein we report that magnesium oxides (MgO) in CuOMgO/FeO not only enhanced the catalytic properties but also switched the free radical peroxymonosulfate (PMS)-activated process into the O based nonradical process. CuOMgO/FeO catalyst exhibited consistent performance in a wide pH range from 5.0 to 10.0, and the degradation kinetics were not inhibited by the common free radical scavengers, anions, or natural organic matter. Quantitative structure-activity relationships (QSARs) revealed the relationship between the degradation rate constant of 14 substituted phenols and their conventional descriptor variables (i.e., Hammett constants σ, σ, σ), half-wave oxidation potential (), and p values. QSARs together with the kinetic isotopic effect (KIE) recognized the electron transfer as the dominant oxidation process. Characterizations and DFT calculation indicated that the incorporated MgO alters the copper sites to highly oxidized metal centers, offering a more suitable platform for PMS to generate metastable copper intermediates. These highly oxidized metals centers of copper played the key role in producing O after accepting an electron from another PMS molecule, and finally O as sole reactive species was generated from the direct oxidation of O through thermodynamically feasible reactions.

摘要

由于其固有优势,基于非自由基的高级氧化工艺在污染物去除方面受到了广泛关注。在此,我们报告称,CuOMgO/FeO 中的氧化镁 (MgO) 不仅增强了催化性能,而且还将自由基过一硫酸盐 (PMS) 激活过程转变为基于 O 的非自由基过程。CuOMgO/FeO 催化剂在从 5.0 到 10.0 的较宽 pH 范围内表现出一致的性能,并且降解动力学不受常见自由基清除剂、阴离子或天然有机物的抑制。定量结构-活性关系 (QSAR) 揭示了 14 种取代酚的降解速率常数与它们的常规描述符变量(即,Hammett 常数 σ、σ 和 σ)、半波氧化电位 () 和 p 值之间的关系。QSAR 结合动力学同位素效应 (KIE) 确定了电子转移是主要的氧化过程。特性和 DFT 计算表明,掺入的 MgO 将铜位改变为高度氧化的金属中心,为 PMS 生成亚稳铜中间体提供了更合适的平台。这些铜的高度氧化金属中心在从另一个 PMS 分子接受电子后产生 O 方面发挥了关键作用,最终通过热力学可行的反应直接氧化 O 生成 O 作为唯一的反应性物质。

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