首页> 外文OA文献 >Transition state energy decomposition study of acetate-assisted and internal electrophilic substitution C−H bond activation by (acac-O,O)_2Ir(X) complexes (X = CH_3COO, OH)
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Transition state energy decomposition study of acetate-assisted and internal electrophilic substitution C−H bond activation by (acac-O,O)_2Ir(X) complexes (X = CH_3COO, OH)

机译:(acac-O,O)_2Ir(X)配合物(X = CH_3COO,OH)活化乙酸酯和内部亲电子取代CH键的过渡态能量分解研究

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摘要

Chelate-assisted and internal electrophilic substitution type transition states were studied using a DFT-based energy decomposition method. Interaction energies for benzene and methane C−H bond activation by (acac-O,O)_2Ir(X) complexes (X = CH_3COO and OH) were evaluated using the absolutely localized molecular orbital energy decomposition analysis (ALMO-EDA). A ratio of ~1.5:1 for forward to reverse charge-transfer between (acac-O,O)_2Ir(X) and benzene or methane transition state fragments confirms “ambiphilic” bonding, the result of an interplay between the electrophilic iridium center and the internal base component. This analysis also revealed that polarization effects account for a significant amount of transition state stabilization. The energy penalty to deform reactants into their transition state geometry, distortion energy, was also used to understand the large activation energy difference between six-membered and four-membered acetate-assisted transition states and help explain why these complexes do not activate the methane C−H bond.
机译:使用基于DFT的能量分解方法研究了螯合辅助和内部亲电取代类型的过渡态。使用绝对局部分子轨道能量分解分析(ALMO-EDA)评估了(acac-O,O)_2Ir(X)配合物(X = CH_3COO和OH)活化苯和甲烷CH键的相互作用能。 (acac-O,O)_2Ir(X)与苯或甲烷过渡态片段之间正向和反向电荷转移的比率约为1.5:1,这证实了“两亲”键合,这是亲电子铱中心与氢键相互作用的结果内部基本组件。该分析还揭示了极化效应占过渡态稳定度的重要原因。将反应物变形为过渡态几何构型的能级损失,即扭曲能,还用于理解六元和四元乙酸盐辅助过渡态之间的巨大活化能差,并有助于解释为什么这些配合物不能活化甲烷C -H键。

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