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单原子铁催化剂在激活过一硫酸盐方面优于其均相对应物,可实现有效降解有机污染物。

Single-Atom Fe Catalyst Outperforms Its Homogeneous Counterpart for Activating Peroxymonosulfate to Achieve Effective Degradation of Organic Contaminants.

机构信息

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

Shanghai Institute of Pollution Control and Ecological Security, Shanghai 200092, China.

出版信息

Environ Sci Technol. 2021 May 18;55(10):7034-7043. doi: 10.1021/acs.est.0c08805. Epub 2021 Feb 23.

Abstract

Recently, reactive iron species (RFeS) have shown great potential for the selective degradation of emerging organic contaminants (EOCs). However, the rapid generation of RFeS for the selective and efficient degradation of EOCs over a wide pH range is still challenging. Herein, we constructed FeN structures on a carbon nanotube (CNT) to obtain single-atom catalysts (Fe-N-CNT) to generate RFeS in the presence of peroxymonosulfate (PMS). The obtained Fe-N-CNT/PMS system exhibited outstanding and selective reactivity for oxidizing EOCs over a wide pH range (3.0-9.0). Several lines of evidences suggested that RFeS existing as an FeN═O intermediate was the predominant oxidant, while SO and HO were the secondary oxidants. Density functional theory calculation results revealed that a CNT played a key role in optimizing the distribution of bonding and antibonding states in the Fe 3d orbital, resulting in the outstanding ability of Fe-N-CNT for PMS chemical adsorption and activation. Moreover, CNT could significantly enhance the reactivity of the FeN═O intermediate by increasing the overlap of electrons of the Fe 3d orbital, O 2p orbital, and bisphenol A near the Fermi level. The results of this study can advance the understanding of RFeS generation in a heterogeneous system over a wide pH range and the application of RFeS in real practice.

摘要

最近,反应性铁物种(RFeS)在新兴有机污染物(EOCs)的选择性降解方面显示出巨大的潜力。然而,在较宽的 pH 范围内快速生成 RFeS 以实现 EOCs 的选择性和高效降解仍然具有挑战性。在此,我们构建了负载在碳纳米管(CNT)上的 FeN 结构,得到了单原子催化剂(Fe-N-CNT),在过一硫酸盐(PMS)存在下生成 RFeS。所得到的 Fe-N-CNT/PMS 体系在较宽的 pH 范围(3.0-9.0)内对氧化 EOCs 表现出优异的和选择性的反应活性。几条证据表明,作为 FeN═O 中间体存在的 RFeS 是主要的氧化剂,而 SO 和 HO 是次要的氧化剂。密度泛函理论计算结果表明,CNT 对优化 Fe 3d 轨道中键合和反键合态的分布起着关键作用,从而使 Fe-N-CNT 具有优异的 PMS 化学吸附和活化能力。此外,CNT 通过增加费米能级附近 Fe 3d 轨道、O 2p 轨道和双酚 A 的电子重叠,显著增强了 FeN═O 中间体的反应活性。该研究的结果可以推进对在较宽 pH 范围内的非均相体系中 RFeS 生成的理解,以及 RFeS 在实际应用中的应用。

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