Computational studies of the mechanism of Pd-Catalyzed Intramolecular Friedel–Crafts allylic alkylation of phenols
We previously reported a synthetic method of spirocyclohexadienones using an Pd-catalyzed intramolecular ipso-Friedel–Crafts allylic alkylation of para-substituted phenol derivatives. However, the mechanism for the step leading to spirocyclization and driving force behind the remarkably easier forma...
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Veröffentlicht in: | Tetrahedron 2020-05, Vol.76 (18), p.131146, Article 131146 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | We previously reported a synthetic method of spirocyclohexadienones using an Pd-catalyzed intramolecular ipso-Friedel–Crafts allylic alkylation of para-substituted phenol derivatives. However, the mechanism for the step leading to spirocyclization and driving force behind the remarkably easier formation of the five-membered spirocyclohexadienone as compared with the six-membered spirocyclohexadienone were unclear. Herein, detailed density functional theory (DFT) calculations for the spirocyclization were performed to obtain a plausible reason for the observed behavior. In addition, the mechanistic basis of the characteristic ortho-selectivity in the related Pd-catalyzed intramolecular Friedel–Crafts allylic alkylation of meta-substituted phenol derivatives was elucidated. DFT calculations and experimental studies revealed that the ortho-selective allylation proceeded via an unexpected eleven-membered oxapalladacycle-mediated intramolecular Friedel–Crafts type process.
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•DFT calculations for the Pd-catalyzed phenol dearomatization were performed.•DFT calculations for the developed Friedel-Crafts type reaction were performed.•DFT calculations and experimental studies revealed the plausible reaction pathway. |
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ISSN: | 0040-4020 1464-5416 |
DOI: | 10.1016/j.tet.2020.131146 |