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突出铁单原子加速界面压电极化用于自供电水运动触发类芬顿反应。

Protrudent Iron Single-Atom Accelerated Interfacial Piezoelectric Polarization for Self-Powered Water Motion Triggered Fenton-Like Reaction.

机构信息

Guangdong Key Laboratory of Environmental Pollution and Health, School of Environment, Jinan University, Guangzhou, 511443, P. R. China.

Institute of Environmental Health and Pollution Control, School of Environmental Science and Engineering, Guangdong University of Technology, Guangzhou, 511443, P. R. China.

出版信息

Small. 2022 Jan;18(2):e2105279. doi: 10.1002/smll.202105279. Epub 2021 Nov 27.

Abstract

Water in motion presented in natural systems contains a rich source of renewable mechanical energy. Harvesting this water energy to trigger the generation of reactive oxygen species (ROS) for water purification is a desirable yet underexplored solution. Herein, the authors report a self-powered water motion triggered Fenton-like reaction system for wastewater treatment through the piezo-activation of peroxymonosulfate (PMS). Isolated protrudent Fe single atomic sites are immobilized on the surface of molybdenum disulfide (MoS ) nanosheet to improve piezoelectric polarization of MoS , to accelerate piezoelectric charge separation, and to enhance PMS activation for water purification. ROS ( OH, SO , O , and O ) generation for PMS piezo-activation are observed, and different water contaminants, including antibiotic, industrial chemicals, and dyes are efficiently removed under the natural water fluid. Aimed at solving concurrent issues of environmental pollution and energy crisis, this study provides a pathway for single atomic-mediated piezo-activation of Fenton-like reactions through ambient self-powered water motion for water purification.

摘要

运动中的水在自然系统中蕴含着丰富的可再生机械能。利用这种水能来引发反应生成活性氧(ROS)以实现水的净化,是一种理想但尚未得到充分探索的解决方案。在此,作者通过过一硫酸盐(PMS)的压电激活,报告了一种自供电的水动力触发类芬顿反应系统,用于废水处理。孤立的突出的 Fe 单原子位点被固定在二硫化钼(MoS )纳米片的表面上,以提高 MoS 的压电极化,加速压电电荷分离,并增强 PMS 激活以实现水的净化。观察到了 ROS( OH、SO 、O 和 O )的生成,并且在自然水流的作用下,不同的水污染物,包括抗生素、工业化学品和染料,都被有效地去除。本研究旨在解决环境污染和能源危机的并发问题,为通过环境自供电的水动力来实现单原子介导的类芬顿反应的压电激活,提供了一条途径,用于水的净化。

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