催化作用
材料科学
钴
氮化硼
过渡金属
纳米技术
活性氧
纳米颗粒
析氧
化学工程
硼
氧气
金属有机骨架
环境修复
氮化物
金属
介孔材料
光化学
无机化学
共价键
多相催化
氧化还原
激进的
组合化学
氧化磷酸化
过氧化氢
分解水
作者
Jianzheng Zhen,Lingshan Miao,Feifan Yu,Shenghu Wang,Huanji Song,Weiyang Lv,Changsheng Song,Yuyuan Yao,Guipeng Yu
标识
DOI:10.1002/adfm.202528418
摘要
ABSTRACT The precise modulation of reactive oxygen species (ROS) in Fenton‐like systems holds transformative potential for environmental remediation and oxidative synthesis, yet remains constrained by challenges in tailoring metal catalyst structures across atomic‐to‐nano scales. Herein, guided by theoretical predictions, we devise a light‐assisted synthetic strategy enabling quasi‐continuous regulation of cobalt configurations from single atoms (Co SA ) to nanoparticles (Co NP‐8 ) on porous boron nitride ( p‐ BN). This structural engineering triggers a paradigm shift in ROS mechanisms within peroxymonosulfate (PMS) activation, which achieves a controlled transition from nonradical (90%) to radical (87%) pathways, surpassing most reported systems in both regulation range and accuracy. Leveraging distinct ROS oxidation features, the p ‐BN/Co SA ‐PMS system synergizes with membrane filtration to enable selective aromatic aldehyde synthesis, while p ‐BN/Co NP‐8 ‐PMS facilitates rapid organic pollutant degradation, with both systems maintaining exceptional reaction efficiencies and water fluxes (6000 L m −2 h −1 bar −1 ). This reported design framework for transition metal catalysts establishes a versatile platform for dynamic ROS manipulation, advancing applications spanning green chemistry to environmental engineering.
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