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Computational Study of Rh-Catalyzed Carboacylation of Olefins: Ligand-Promoted Rhodacycle Isomerization Enables Regioselective C–C Bond Functionalization of Benzocyclobutenones

机译:Rh催化烯烃的碳酰化的计算研究:配体促进的Rhodacycle异构化使苯并环丁烯酮的区域选择性C–C键功能化。

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摘要

The mechanism, reactivity, regio- and enantioselectivity of the Rh-catalyzed carboacylation of benzocyclobutenones are investigated using density functional theory (DFT) calculations. The calculations indicate that the selective activation of the relatively unreactive C1–C2 bond in benzocyclobutenone is achieved via initial C1–C8 bond oxidative addition, followed by rhodacycle isomerization via decarbonylation and CO insertion. Analysis of different ligand steric parameters, ligand steric contour maps, and the computed activation barriers revealed the origin of the positive correlation between ligand bite angle and reactivity. The increase of reactivity with bulkier ligands is attributed to the release of ligand-substrate repulsions in the P-Rh-P plane during the rate-determining CO insertion step. The enantioselectivity in reactions with the (R)-SEGPHOS ligand is controlled by the steric repulsion between the C8 methylene group in the substrate and the equatorial phenyl group on the chiral ligand in the olefin migratory insertion step.
机译:使用密度泛函理论(DFT)计算研究了Rh催化的苯并环丁烯酮碳酰化反应的机理,反应性,区域和对映选择性。计算结果表明,苯环丁烯酮中相对不活泼的C1-C2键的选择性活化是通过初始C1-C8键的氧化加成,然后通过脱羰基和CO插入进行的Rhodacycle异构化实现的。分析不同的配体空间参数,配体空间轮廓图和计算的激活壁垒揭示了配体咬角和反应性之间正相关的起源。与体积更大的配体的反应性增加归因于在决定速率的CO插入步骤中P-Rh-P平面中配体-底物斥力的释放。与(R)-SEGPHOS配体反应中的对映选择性是通过烯烃迁移插入步骤中底物中的C8亚甲基与手性配体上的赤道苯基之间的空间排斥来控制的。

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