人体净化
催化作用
反应性(心理学)
化学
动力学
配体(生物化学)
高碘酸盐
氧化物
材料科学
锰
组合化学
稳健性(进化)
过氧化物
氧化还原
过氧乙酸
化学计量学
化学工程
过氧化氢
水处理
离子
吸附
脆弱性
反应机理
分子
同种类的
多相催化
化学动力学
一步到位
污染物
作者
Chen-Xuan Li,Wenhui Xu,Kangping Cui,Rui Wang,Zhi-Yan Guo,Yihan Chen,Xian-Zhong Fu,Houyun Yang,Wai‐Lun Man,Siu‐Mui Ng,Wen-Wei Li,Yingying Liu
标识
DOI:10.1021/acs.est.5c14346
摘要
High-valent metal-oxo (HVMO) species generated from a homogeneous metal–ligand complex can provide high oxidation power to facilitate selective decontamination. However, sustaining a high reactivity of such a catalytic system is challenging due to the structural fragility of mononuclear-structured organic ligands that are susceptible to self-degradation. Moreover, because of the highly reactive and transient nature of the HVMO complex, its specific structural properties remain unclear, hindering the catalytic mechanism elucidation and system optimization. Here we propose the use of phenanthroline (phen) as a structurally robust alternative ligand for manganese ions (Mn 2+ ) complexation and periodate (PI) activation, triggering the formation of a dinuclear Mn-oxo complex, [Mn 2 III,IV (μ-O) 2 (phen) 4 ] 3+ . Impressively, this system achieved rapid sulfamethoxazole oxidation, exhibiting decontamination kinetics 2–5 orders of magnitude higher than those of conventional heterogeneous PI-based systems, and sustained high reactivity for a 10-h continuous operation via a resin-supported complex. Importantly, the structural-stable,diomand-core complex can be directly isolated from the reaction solution. Mechanical study revealed a unique dynamic “closed–open” structure of the Mn 2 III,IV (μ-O) 2 complex for driving pollutant degradation. The system also demonstrated high efficiency and robustness for treating real waters. This study lays a fundamental framework to revolutionize HVMO-based advanced oxidation processes toward sustainable, robust water purification.
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