催化作用
过氧乙酸
单线态氧
激进的
化学
光化学
吸附
活化能
灵活性(工程)
单重态
氧气
稳健性(进化)
纳米技术
化学工程
对苯二甲酸
热液循环
材料科学
钴
水热反应
析氧
反应机理
作者
Guang Li,Xinying Chen,Mengfan Liu,Zhihao Xie,Kaiwen Zhang,Wei Chen,Wen‐Wei Li,Yueping Bao
摘要
ABSTRACT Precisely controlling reaction pathway is vital for selective oxidation chemistry but remains challenging due to the complexity of oxidant–catalyst interactions, especially during activation of peracetic acid (PAA) that offers greater structural flexibility than inorganic oxidants. While various catalyst engineering approaches are available to strengthen PAA nonradical catalysis, they fail to fundamental suppress radicals generation. Here, we propose an interlayer confinement strategy to deterministically reprogram the PAA activation pathway toward singlet oxygen ( 1 O 2 ) generation. By stabilizing atomically dispersed cobalt sites within a KOH‐compressed interlayer space of montmorillonite (MT) nano‐galleries (Co SAC ‐KMT), a deck‐effect‐induced confined microenvironment is constructed to fundamentally alters the PAA‐catalyst interaction. Such confinement suppresses radical‐dominated channels and redirects PAA activation route to nearly exclusive 1 O 2 generation. Mechanistic and theoretical analyses reveal that reduced interlayer spacing reshapes the local PAA adsorption configuration and energy landscape to facilitate 1 O 2 formation. Such a confinement regulation strategy can also be extended to peroxymonosulfate (PMS) activation for efficient pathway modulation, indicating it may serve as a transferable principle to guide Fenton‐like catalyst design. With 1 O 2 ‐dominated pathway, the Co SAC ‐KMT/PAA system demonstrated superior environmental robustness and long‐term stability for real water treatment.
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