Zhang Mei, Huang Genping
Department of Chemistry, School of Science, Tianjin University, Tianjin, 300072, P.R. China.
Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin, 300072, P.R. China.
Chemistry. 2016 Jun 27;22(27):9356-65. doi: 10.1002/chem.201600884. Epub 2016 May 25.
The ruthenium- and rhodium-catalyzed oxidative spiroannulation of naphthols and phenols with alkynes was investigated by means of density functional theory calculations. The results show that the reaction undergoes O-H deprotonation/C(sp(2) )-H bond cleavage through a concerted metalation-deprotonation mechanism/migratory insertion of the alkyne into the M-C bond to deliver the eight-membered metallacycle. However, the dearomatization through the originally proposed enol-keto tautomerization/C-C reductive elimination was calculated to be kinetically inaccessible. Alternatively, an unusual metallacyclopropene, generated from the isomerization of the eight-membered metallacycle through rotation of the C-C double bond, was identified as a key intermediate to account for the experimental results. The subsequent C-C coupling between the carbene carbon atom and the carbon atom of the 2-naphthol/phenol ring was calculated to be relatively facile, leading to the formation of the unexpected dearomatized products. The calculations reproduce quite well the experimentally observed formal [5+2] cycloaddition in the rhodium-catalyzed oxidative annulation of 2-vinylphenols with alkynes. The calculations show that compared with the case of 2-alkenylphenols, the presence of conjugation effects and less steric repulsion between the phenol ring and the vinyl moiety make the competing reductive oxyl migration become dominant, which enables the selectivity switch from the spiroannulation to the formal [5+2] cycloaddition.
通过密度泛函理论计算研究了钌和铑催化的萘酚和苯酚与炔烃的氧化螺环化反应。结果表明,该反应通过协同金属化-去质子化机理进行O-H去质子化/C(sp(2))-H键裂解/炔烃迁移插入到M-C键中以生成八元金属环。然而,通过最初提出的烯醇-酮互变异构/C-C还原消除进行的脱芳构化在动力学上是不可行的。相反,通过C-C双键旋转由八元金属环异构化生成的一种不寻常的金属环丙烯被确定为解释实验结果的关键中间体。计算表明,卡宾碳原子与2-萘酚/苯酚环碳原子之间随后的C-C偶联相对容易,导致形成意外的脱芳构化产物。这些计算很好地再现了在铑催化的2-乙烯基苯酚与炔烃的氧化环化反应中实验观察到的形式上的[5+2]环加成。计算表明,与2-烯基苯酚的情况相比,共轭效应的存在以及苯酚环与乙烯基部分之间较小的空间排斥使得竞争性的还原氧迁移占主导地位,这使得选择性从螺环化转变为形式上的[5+2]环加成。