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还原氧化石墨烯触发过氧乙酸活化以高效去除微污染物:电子转移的作用

Reduced Graphene Oxide Triggers Peracetic Acid Activation for Robust Removal of Micropollutants: The Role of Electron Transfer.

作者信息

Kong Dezhen, Zhao Yumeng, Fan Xinru, Wang Xianshi, Li Jiaxuan, Wang Xiaoxiong, Nan Jun, Ma Jun

机构信息

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

School of Environment, Tsinghua University, Beijing 100084, China.

出版信息

Environ Sci Technol. 2022 Aug 16;56(16):11707-11717. doi: 10.1021/acs.est.2c02636. Epub 2022 Aug 5.

Abstract

Peracetic acid (PAA) serves as a potent and low-toxic oxidant for contaminant removal. Radical-mediated catalytic PAA oxidation processes are typically non-selective, rendering weakened oxidation efficacy under complex water matrices. Herein, we explored the usage of reduced graphene oxide (rGO) for PAA activation via a non-radical pathway. Outperforming the most catalytic PAA oxidation systems, the rGO-PAA system exhibits near-complete removal of typical micropollutants (MPs) within a short time (<2 min). Non-radical direct electron transfer (DET) from MPs to PAA plays a decisive role in the MP degradation, where accelerated DET is achieved by a higher potential of the rGO-PAA reactive surface complexes. Benefitting from DET, the rGO-PAA system shows robust removal of multiple MPs under complex water matrices and with low toxicity. Notably, in the DET regime, the electrostatic attraction of rGO to both PAA and target MP is a critical prerequisite for achieving efficient oxidation, depending on the conditions of solution pH and MP p. A heatmap model building on such an electrostatic interaction is further established as guidance for regulating the performance of the DET-mediated PAA oxidation systems. Overall, our work unveils the imperative role of DET for rGO-activated PAA oxidation, expanding the knowledge of PAA-based water treatment strategies.

摘要

过氧乙酸(PAA)是一种用于去除污染物的高效低毒氧化剂。自由基介导的催化PAA氧化过程通常是非选择性的,在复杂水基质下氧化效率会降低。在此,我们探索了还原氧化石墨烯(rGO)通过非自由基途径激活PAA的用途。rGO-PAA系统优于大多数催化PAA氧化系统,在短时间内(<2分钟)能近乎完全去除典型微污染物(MPs)。MPs向PAA的非自由基直接电子转移(DET)在MP降解中起决定性作用,其中rGO-PAA反应性表面络合物的更高电位实现了加速DET。受益于DET,rGO-PAA系统在复杂水基质下对多种MPs具有强大的去除能力且毒性低。值得注意的是,在DET机制中,rGO对PAA和目标MP的静电吸引是实现高效氧化的关键前提,这取决于溶液pH值和MP p的条件。基于这种静电相互作用建立的热图模型进一步作为调节DET介导的PAA氧化系统性能的指导。总体而言,我们的工作揭示了DET对rGO激活的PAA氧化的重要作用,扩展了基于PAA的水处理策略的知识。

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