Department of Chemistry and Biochemistry , University of California , Los Angeles , California 90095 , United States.
Department of Chemistry , Massachusetts Institute of Technology , Cambridge , Massachusetts 02139 , United States.
J Org Chem. 2019 May 17;84(10):6432-6436. doi: 10.1021/acs.joc.9b00825. Epub 2019 May 2.
Lindner and Lemal showed that perfluorination of keto-enol systems significantly shifts the equilibrium toward the enol tautomer. Quantum mechanical calculations now reveal that the shift in equilibrium is the result of the stabilization of the enol tautomer by hyperconjugative π → σ* interactions and the destabilization of the keto tautomer by the electron withdrawal induced by the neighboring fluorine atoms. The preference for the enol tautomer further increases in smaller perfluorinated cyclic keto-enol systems. This trend is in contrast to the nonfluorinated compounds, where the enol is strongly disfavored in the smaller rings. The fluoro effect overrides the effect of the ring size that controls the equilibria in nonfluorinated compounds. The increased overlap of the enol π bond with the σ* orbitals of the allylic C-F bonds results in the increased preference for the enol tautomer in smaller perfluorinated keto-enol systems. We show here why the effect is much greater than in 3,3-difluorocyclooctyne.
林德纳和莱马尔表明,酮-烯醇系统的全氟化会显著地将平衡向烯醇互变异构体移动。现在,量子力学计算揭示了平衡的移动是由于烯醇互变异构体通过超共轭π→σ相互作用的稳定化和由于相邻氟原子的电子诱导而导致酮互变异构体的去稳定化的结果。在较小的全氟化环状酮-烯醇系统中,对烯醇互变异构体的偏好进一步增加。这种趋势与非氟化化合物相反,在较小的环中,烯醇强烈地不受青睐。氟效应超过了控制非氟化化合物平衡的环大小的效应。烯醇π键与烯丙基 C-F 键的σ轨道的重叠增加,导致在较小的全氟化酮-烯醇系统中对烯醇互变异构体的偏好增加。我们在这里展示了为什么这种效应比在 3,3-二氟环辛炔中要大得多。