Oxygen Vacancy-Induced Nonradical Degradation of Organics: Critical Trigger of Oxygen (O2) in the Fe–Co LDH/Peroxymonosulfate System

IF 11.3 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Liying Wu, Zhiqiang Sun*, Yufei Zhen, Shishu Zhu, Chen Yang, Jing Lu, Yu Tian, Dan Zhong, Jun Ma*
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引用次数: 141

Abstract

Ubiquitous oxygen vacancies (Vo) existing in metallic compounds can activate peroxymonosulfate (PMS) for water treatment. However, under environmental conditions, especially oxygenated surroundings, the interactions between Vo and PMS as well as the organics degradation mechanism are still ambiguous. In this study, we provide a novel insight into the PMS activation mechanism over Vo-containing Fe–Co layered double hydroxide (LDH). Experimental results show that Vo/PMS is capable of selective degradation of organics via a single-electron-transfer nonradical pathway. Moreover, O2 is firstly demonstrated as the most critical trigger in this system. Mechanistic studies reveal that, with abundant electrons confined in the vacant electron orbitals of Vo, O2 is thermodynamically enabled to capture electrons from Vo to form O2?– under the imprinting effect and start the activation process. Simultaneously, Vo becomes electron-deficient and withdraws the electrons from organics to sustain the electrostatic balance and achieve organics degradation (32% for Bisphenol A without PMS). Different from conventional PMS activation, under the collaboration of kinetics and thermodynamics, PMS is endowed with the ability to donate electrons to Vo as a reductant other than an oxidant to form 1O2. In this case, 1O2 and O2?– act as the indispensable intermediate species to accelerate the circulation of O2 (as high as 14.3 mg/L) in the micro area around Vo, and promote this nano-confinement electron-recycling process with 67% improvement of Bisphenol A degradation. This study provides a brand-new perspective for the nonradical mechanism of PMS activation over Vo-containing metallic compounds in natural environments.

Abstract Image

氧空位诱导有机物的非自由基降解:Fe-Co LDH/过氧单硫酸体系中氧(O2)的关键触发因素
金属化合物中普遍存在的氧空位(Vo)可以激活过氧单硫酸盐(PMS)进行水处理。然而,在环境条件下,特别是在含氧环境下,Vo与PMS的相互作用以及有机物的降解机制仍不清楚。在这项研究中,我们对PMS在含vo的Fe-Co层状双氢氧化物(LDH)上的活化机制提供了新的见解。实验结果表明,Vo/PMS能够通过单电子转移非自由基途径选择性降解有机物。此外,O2首次被证明是该系统中最关键的触发器。机理研究表明,由于大量电子被限制在Vo的空电子轨道中,从热力学上讲,O2能够从Vo捕获电子形成O2?-在印记效果下,开始激活过程。同时,Vo变得缺电子并从有机物中提取电子以维持静电平衡并实现有机物降解(无PMS双酚A为32%)。与传统的PMS活化不同,在动力学和热力学的协同作用下,PMS被赋予了将电子作为还原剂而不是氧化剂给Vo生成1O2的能力。在这个例子中,1O2和O2?-作为不可或缺的中间物质,加速O2(高达14.3 mg/L)在Vo周围微区域的循环,促进这一纳米限制电子回收过程,双酚A降解率提高67%。本研究为PMS在自然环境中对含vo金属化合物的非自由基活化机制提供了一个全新的视角。
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来源期刊
环境科学与技术
环境科学与技术 环境科学-工程:环境
CiteScore
17.50
自引率
9.60%
发文量
12359
审稿时长
2.8 months
期刊介绍: Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences. Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.
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