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5-endo-dig radical cyclizations: 'The poor cousins' of the radical cyclizations family

机译:5-endo-dig自由基环化:自由基环化家族的“可怜的表亲”

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Kinetics and thermodynamics of 5-endo-dig radical cyclizations were studied using a combination of DFT computations and Marcus theory. When the reactant is stabilized by conjugation of the radical center with the bridge,T-system, the cyclization starts with reorientation of the radical orbital needed to reach the in-plane acetylene T-orbital in the bond-forming step. This reorientation leads to loss of the above conjugative stabilization, increases the activation energy, and renders such cyclizations less exothermic. As a result, even when the radical needed for the 5-endo cyclization is formed efficiently, it undergoes either H-abstraction or equilibration with an isomeric radical. Only when the bridging moiety is saturated or when intramolecular constraints prevent the overlap of the bridge T-orbital and the radical center, 5-endo cyclizations may be able to proceed with moderate efficiency under conditions when H-abstraction is slow. The main remaining caveat in designing such geometrically constrained 5-endo-dig cyclizations is their sensitivity to strain effects, especially when polycyclic systems are formed. The strain effects can be counterbalanced by increasing the stabilization of the product (e.g., by introducing heteroatoms into the bridging moiety). Electronic effects of such substitutions can be manifested in various ways, ranging from aromatic stabilization to a hyperconjugative beta-Si effect. The 4-exo-dig cyclization is kinetically competitive with the 5-endo-dig process but less favorable thermodynamically. As a result, by proper design of reaction conditions, 5-endo-dig radical cyclizations should be experimentally feasible.
机译:结合DFT计算和Marcus理论研究了5-endo-dig自由基环化反应的动力学和热力学。当反应物通过自由基中心与桥T系统的偶联而稳定时,环化反应开始于在键形成步骤中达到面内乙炔T轨道所需的自由基轨道的重新取向。这种重新定向导致上述共轭稳定性的损失,增加了活化能,并使这种环化的放热降低。结果,即使有效地形成了5-内基环化所需的基团,其也会经历H-吸收或与异构基团的平衡。仅当桥接部分饱和或分子内约束阻止桥T轨道和自由基中心重叠时,才能在H吸收缓慢的条件下以中等效率进行5内环化。设计此类受几何约束的5-endo-dig环化反应时,主要需要注意的是它们对应变效应的敏感性,特别是在形成多环系统时。可以通过增加产物的稳定性(例如通过将杂原子引入桥连部分)来抵消应变效应。这种取代的电子效应可以以多种方式表现出来,从芳族稳定化到超共轭β-Si效应。 4-exo-dig环化在动力学上与5-endo-dig竞争,但热力学较差。结果,通过适当设计反应条件,5-内切-自由基自由基环化应该在实验上是可行的。

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