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CoN 单原子催化剂用于高效过一硫酸盐活化和选择性生成钴(IV)=O。

CoN O Single-Atom Catalyst for Efficient Peroxymonosulfate Activation and Selective Cobalt(IV)=O Generation.

机构信息

School of Environmental Science and Engineering, Key Laboratory of Thin Film and Microfabrication Technology (Ministry of Education), Shanghai Jiao Tong University, Shanghai, 200240, P. R. China.

School of Physical Science and Technology, ShanghaiTech University, Shanghai, 201210, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2023 Jul 3;62(27):e202303267. doi: 10.1002/anie.202303267. Epub 2023 May 22.

Abstract

High-valent metal-oxo (HVMO) species are powerful non-radical reactive species that enhance advanced oxidation processes (AOPs) due to their long half-lives and high selectivity towards recalcitrant water pollutants with electron-donating groups. However, high-valent cobalt-oxo (Co =O) generation is challenging in peroxymonosulfate (PMS)-based AOPs because the high 3d-orbital occupancy of cobalt would disfavor its binding with a terminal oxygen ligand. Herein, we propose a strategy to construct isolated Co sites with unique N O coordination on the Mn O surface. The asymmetric N O configuration is able to accept electrons from the Co 3d-orbital, resulting in significant electronic delocalization at Co sites for promoted PMS adsorption, dissociation and subsequent generation of Co =O species. CoN O /Mn O exhibits high intrinsic activity in PMS activation and sulfamethoxazole (SMX) degradation, highly outperforming its counterpart with a CoO configuration, carbon-based single-atom catalysts with CoN configuration, and commercial cobalt oxides. Co =O species effectively oxidize the target contaminants via oxygen atom transfer to produce low-toxicity intermediates. These findings could advance the mechanistic understanding of PMS activation at the molecular level and guide the rational design of efficient environmental catalysts.

摘要

高价金属-氧(HVMO)物种是强大的非自由基反应性物种,由于其半衰期长且对具有供电子基团的难处理水污染物具有高选择性,因此增强了高级氧化工艺(AOP)。然而,高价钴-氧(Co = O)在过一硫酸盐(PMS)基 AOP 中的生成具有挑战性,因为钴的高 3d 轨道占据会不利于其与末端氧配体的结合。在此,我们提出了一种在 MnO 表面上构建具有独特的 NO 配位的孤立 Co 位点的策略。不对称的 NO 构型能够从 Co 3d 轨道接受电子,从而导致 Co 位点的电子离域显著增强,从而促进 PMS 的吸附、解离和随后生成 Co = O 物种。CoN O /MnO 在 PMS 活化和磺胺甲恶唑(SMX)降解中表现出高本征活性,其性能远优于具有 CoO 构型、具有 CoN 构型的碳基单原子催化剂和商业钴氧化物。Co = O 物种通过氧原子转移有效地氧化目标污染物,生成低毒性中间体。这些发现可以深入了解分子水平上的 PMS 活化机制,并指导高效环境催化剂的合理设计。

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