首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Occurrence of radical and nonradical pathways from carbocatalysts for aqueous and nonaqueous catalytic oxidation
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Occurrence of radical and nonradical pathways from carbocatalysts for aqueous and nonaqueous catalytic oxidation

机译:碳催化剂进行水和非水催化氧化的自由基和非自由基途径的发生

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Metal-free activation.of superoxides provides an efficient and environmentally benign strategy for heterogeneous catalytic oxidation. In this study, nanocarbons with varying carbon-conjugation structures and functional groups were investigated for peroxymonosulfate (PMS) activation. It was discovered that radical and nonradical oxidations could occur on different carbocatalysts depending on the carbon structure. Radical oxidation occurs exclusively on MWCNTs and CMK-3, similar to a metal oxide, MnO2. Both radical and nonradical oxidations are very pronounced in nanodiamond (AND-900)/PMS whilst nonradical oxidation is dominated in reduced graphene oxide (rGO-900)/PMS. Density functional theory (DFT) calculations were employed to explore the PMS adsorption and O-O bond activation on the different carbon configurations for an in-depth probe of the activation mechanism. The intact sp(2)-conjugated pi system in MWCNTs and electron-rich ketonic groups (as Lewis basic sites) in CMK-3 can stimulate PMS dissociation to generate SO4 center dot- and (OH)-O-center dot, similar to metal-based catalysts. However, the defective edges at the boundary of carbon network are able to facilitate the organic degradation without generation of the reactive radicals, which is well supported by both experiments and the DFT calculation. The emerging nonradical oxidation induced by the carbocatalysis is superior to the radical oxidation on most metal oxides for effective degradation of various organics. The influences of solution pH, various anions (H2PO42-, HCO3- and Cl-) and background organic matters (humic acid) on the nonradical oxidation were further evaluated. The nonradical oxidation on carbocatalysts can be utilized as a green and effective oxidation strategy for aqueous environmental remediation and nonaqueous phase oxidation. (C) 2016 Elsevier B.V. All rights reserved.
机译:超氧化物的无金属活化为非均相催化氧化提供了一种有效且环境友好的策略。在这项研究中,研究了具有不同碳共轭结构和官能团的纳米碳对过氧单硫酸盐(PMS)的活化作用。已经发现,取决于碳结构,自由基和非自由基氧化可在不同的碳催化剂上发生。自由基氧化仅发生在MWCNT和CMK-3上,类似于金属氧化物MnO2。自由基和非自由基氧化在纳米金刚石(AND-900)/ PMS中非常明显,而非自由基氧化在氧化石墨烯(rGO-900)/ PMS中占主导。密度泛函理论(DFT)计算用于探索PMS在不同碳构型上的吸附和O-O键活化,从而深入研究活化机理。完整的sp(2)-共轭pi系统在MWCNT和CMK-3中的富电子酮基(作为Lewis碱性位点)可以刺激PMS解离生成SO4中心点和(OH)-O中心点,类似于金属基催化剂。然而,碳网络边界处的缺陷边缘能够促进有机降解而不产生反应性自由基,这在实验和DFT计算中都得到了很好的支持。由碳催化引起的新出现的非自由基氧化优于大多数金属氧化物上的自由基氧化,可有效降解各种有机物。进一步评估了溶液的pH值,各种阴离子(H2PO42-,HCO3-和Cl-)和背景有机物(腐殖酸)对非自由基氧化的影响。碳催化剂上的非自由基氧化可用作绿色有效的氧化策略,用于水环境修复和非水相氧化。 (C)2016 Elsevier B.V.保留所有权利。

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