Abstract
Novel intermediate oxazoline[3,2-a]pyridiniums were facilely prepared from 2-(2,2-dimethoxyethoxy)-pyridines via acid promoted intramolecular cyclization. Sequentially, the quaternary ammonium salts were treated with different nucleophiles for performing regioselective metal-Free C-O and C-N bond-Cleaving to afford prevalent heterocyclic structures of N-Substituted pyridones and 2-substituted pyridines. The reaction mechanism and regioselectivity were then systematically explored by quantum chemistry calculations at B3LYP/6-31 g(d) level. The calculated free energy barrier of the reactions revealed that aniline and aliphatic amines (e.g., methylamine) prefer to attack C8 of intermediate 4a, affording N-Substituted pyridones, while phenylmethanamine, 2-Phenylethan-1-amine and 3-Phenylpropan-1-Amine favor to attack C2 of the intermediate to form 2-substituted pyridines. With the optimized geometries of the transition states, we found that the aromatic ring of the phenyl aliphatic amines may form cation- € interaction with the pyridinium of the intermediates, which could stabilize the transition states and facilitate the formation of 2-Substituted pyridines.
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CITATION STYLE
Li, B., Xue, S., Yang, Y., Feng, J., Liu, P., Zhang, Y., … Zhu, W. (2017). Regioselectivity and Mechanism of Synthesizing N-Substituted 2-Pyridones and 2-Substituted Pyridines via Metal-Free C-O and C-N Bond-Cleaving of Oxazoline[3,2-a]pyridiniums. Scientific Reports, 7. https://doi.org/10.1038/srep41287
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