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https://doi.org/10.1038/s41467-018-05351-w
Title: | Immediate hydroxylation of arenes to phenols via V-containing all-silica ZSM-22 zeolite triggered non-radical mechanism | Authors: | Zhou, Y Ma, Z Tang, J Yan, N Du, Y Xi, S Wang, K Zhang, W Wen, H Wang, J |
Keywords: | alkylbenzene aromatic hydrocarbon benzene hydrogen peroxide ionic liquid phenol derivative polycyclic aromatic hydrocarbon derivative silicon dioxide vanadium derivative zeolite aromatic hydrocarbon catalyst chemical reaction hydrogen peroxide phenol radical silica zeolite Article catalysis catalyst hydroxylation nuclear magnetic resonance reaction analysis stoichiometry synthesis X ray absorption spectroscopy |
Issue Date: | 2018 | Publisher: | Nature Publishing Group | Citation: | Zhou, Y, Ma, Z, Tang, J, Yan, N, Du, Y, Xi, S, Wang, K, Zhang, W, Wen, H, Wang, J (2018). Immediate hydroxylation of arenes to phenols via V-containing all-silica ZSM-22 zeolite triggered non-radical mechanism. Nature Communications 9 (1) : 2931. ScholarBank@NUS Repository. https://doi.org/10.1038/s41467-018-05351-w | Rights: | Attribution 4.0 International | Abstract: | Hydroxylation of arenes via activation of aromatic Csp2–H bond has attracted great attention for decades but remains a huge challenge. Herein, we achieve the ring hydroxylation of various arenes with stoichiometric hydrogen peroxide (H2O2) into the corresponding phenols on a robust heterogeneous catalyst series of V–Si–ZSM-22 (TON type vanadium silicalite zeolites) that is straightforward synthesized from an unusual ionic liquid involved dry-gel-conversion route. For benzene hydroxylation, the phenol yield is 30.8% (selectivity >99%). Ring hydroxylation of mono-/di-alkylbenzenes and halogenated aromatic hydrocarbons cause the yields up to 26.2% and selectivities above 90%. The reaction is completed within 30 s, the fastest occasion so far, resulting in ultra-high turnover frequencies (TOFs). Systematic characterization including 51V NMR and X-ray absorption fine structure (XAFS) analyses suggest that such high activity associates with the unique non-radical hydroxylation mechanism arising from the in situ created diperoxo V(IV) state. © 2018, The Author(s). | Source Title: | Nature Communications | URI: | https://scholarbank.nus.edu.sg/handle/10635/178402 | ISSN: | 2041-1723 | DOI: | 10.1038/s41467-018-05351-w | Rights: | Attribution 4.0 International |
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