Efficient decomposition of perfluorooctane sulfonate by electrochemical activation of peroxymonosulfate in aqueous solution: Efficacy, reaction mechanism, active sites, and application potential

化学 电化学 磺酸盐 全氟辛烷 电子转移 降级(电信) 催化作用 分解 阳极 水溶液 无机化学 高级氧化法 光化学 电极 有机化学 物理化学 电信 计算机科学
作者
Meng Li,Yu-Ting Jin,Dan-Yang Cao,Ling-Ling Yang,Jian-Fang Yan,Zhaoxin Zhang,Zhang Liu,Long-Wei Huang,Shaoqi Zhou,Jiliang Cheng,Qinglan Zhao,Hai-Ming Zhao,Nai-Xian Feng,Ce-Hui Mo
出处
期刊:Water Research [Elsevier BV]
卷期号:221: 118778-118778 被引量:38
标识
DOI:10.1016/j.watres.2022.118778
摘要

The electrochemical oxidation method is a promising technology for the degradation of perfluorooctane sulfonate (PFOS). However, the elimination processes of PFOS are still unknown, including the electron transfer pathway, key reactive sites, and degradation mechanism. Here, we fabricated diatomite and cerium (Ce) co-modified Sb2O3 (D-Ce/Sb2O3) anode to realize efficient degradation of PFOS via peroxymonosulfate (PMS) activation. The transferred electron and the generated hydroxyl radical (•OH) can high-effectively decompose PFOS. The electron can be rapidly transferred from the highest occupied molecular orbital of the PFOS to the lowest unoccupied molecular orbital of the PMS via the D-Ce/Sb2O3 driven by a potential energy difference under electrochemical process. The active site of Ce-O in the D-Ce/Sb2O3 can greatly reduce the migration distance of the electron and the •OH, and thus improving the catalytic activity for degrading various organic micropollutants with high stability. In addition, the electrochemical process shows strong resistance and tolerance to the changing pH, inorganic ions, and organic matter. This study offers insights into the electron transfer pathway and PMS activation mechanism in PFOS removal via electrochemical oxidation, paving the way for its potential application in water purification.
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