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首页> 外文期刊>Catalysis Letters >High-Valent Iron-Oxo Complexes as Dominant Species to Eliminate Pharmaceuticals and Chloride-Containing Intermediates by the Activation of Peroxymonosulfate Under Visible Irradiation
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High-Valent Iron-Oxo Complexes as Dominant Species to Eliminate Pharmaceuticals and Chloride-Containing Intermediates by the Activation of Peroxymonosulfate Under Visible Irradiation

机译:高价铁氧烷复合物作为优势物种,通过在可见辐射下激活过氧键硫酸盐的活化来消除药物和含氯化物的中间体

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Generally, the sulfate (SO4 center dot-) and hydroxyl (HO center dot) radicals are the dominant active species in most catalytic oxidation processes with peroxymonosulfate (PMS). However, the existence of various natural organic and inorganic matters in aquatic environments might influence the oxidation efficiency of these radicals, and/or form more toxic and refractory intermediates than the parent, especially in chlorine-ion-containing conditions. Here, we constructed a novel visible-light catalytic system with PMS based on iron hexadecachlorophthalocyanine-poly (4-vinylpyridine)/polyacrylonitrile nanofibers through pyridine ligands to generate high-valent iron-oxo (Fe(IV)=O) species as the main active species. The coordination structure was characterized by UV-Vis diffuse reflection, X-ray photoelectron spectroscopy, etc. The high-valent iron-oxo generation from peroxysulfate O-O bond heterolytic cleavage was proved by high-definition electrospray ionization mass spectrometer. Ultra-performance liquid chromatography coupled with high-definition mass spectrometry showed that the photocatalytic system was efficient for the degradation of carbamazepine and the chlorinated intermediates by iron-oxo active species in chlorine-ion-containing conditions.
机译:通常,硫酸盐(SO4中心点)和羟(HO中心点)基团是大多数催化氧化方法中的主要活性物质,其具有过氧氧脲硫酸盐(PMS)。然而,水生环境中各种天然有机和无机物质的存在可能影响这些自由基的氧化效率,和/或形成比母体的更大的毒性和耐火材料,尤其是含氯离子条件。在这里,我们通过吡啶配体构建基于铁十六氯氯酞菁 - 聚(4-乙烯基吡啶)/聚丙烯腈纳米纤维的新型可见光催化系统,通过吡啶配体产生高价铁 - 氧代(Fe(IV)= O)物种作为主要的活性物种。通过UV-Vis弥漫反射,X射线光电子体光谱等特征在于协调结构。通过高清电喷雾电离质谱仪证明了来自过氧硫酸氢盐O-O键的高价熨斗生成。超级性能液相色谱与高清质谱表示,光催化系统通过铁 - 离子条件中的铁 - 氧运动活性物种具有有效的碳碱和氯化中间体的降解。

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