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首页> 外文期刊>Journal of the American Chemical Society >Mechanistic Insights Into The Rhodium-catalyzed Intramolecular Ketone Hydroacylation
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Mechanistic Insights Into The Rhodium-catalyzed Intramolecular Ketone Hydroacylation

机译:铑催化的分子内酮加氢酰化的机理研究。

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Rh(®-DTBM-SEGPHOS)]BF_4 catalyzes the intramolecular hydroacylation of ketones to afford seven-membered lactones in large enantiomeric excess. Herein, we present a combined experimental and theoretical study to elucidate the mechanism and origin of selectivity in this C-H bond activation process. Evidence is presented for a mechanistic pathway involving three key steps: (1) rhodium(l) oxidative addition into the aldehyde C-H bond, (2) insertion of the ketone C=O double bond into the rhodium hydride, and (3) C-0 bond-forming reductive elimination. Kinetic isotope effects and Hammett plot studies support that ketone insertion is the turnover-limiting step. Detailed kinetic experiments were performed using both 1,3-bis(diphenylphosphino)propane (dppp) and ®-DTBM-SEGPHOS as ligands. With dppp, the keto-aldehyde substrate assists in dissociating a dimeric precatalyst 8 and binds an active monomeric catalyst 9. With [Rh(®-DTBM-SEGPHOS)]BF_4, there is no induction period and both substrate and product inhibition are observed. In addition, competitive decarbonylation produces a catalytically inactive rhodium carbonyl species that accumulates over the course of the reaction. Both mechanisms were modeled with a kinetics simulation program, and the models were consistent with the experimental data. Density functional theory calculations were performed to understand more elusive details of this transformation. These simulations support that the ketone insertion step has the highest energy transition state and reveal an unexpected interaction between the carbonyl-oxygen lone pair and a Rh d-orbital in this transition state structure. Finally, a model based on the calculated transition-state geometry is proposed to rationalize the absolute sense of enantioinduction observed using ®-DTBM-SEGPHOS as the chiral ligand.
机译:Rh(®-DTBM-SEGPHOS)] BF_4催化酮的分子内加氢酰化反应,以提供大量对映体过量的七元内酯。在这里,我们提出了一个组合的实验和理论研究,以阐明这种C-H键激活过程中的机理和选择性的起源。提出了涉及三个关键步骤的机理途径的证据:(1)铑(l)氧化加成到醛CH键中;(2)酮C = O双键插入到氢化铑中;和(3)C- 0键形成还原消除。动力学同位素效应和Hammett图研究支持酮插入是限制营业额的步骤。使用1,3-双(二苯基膦基)丙烷(dppp)和®-DTBM-SEGPHOS作为配体进行了详细的动力学实验。对于dppp,酮醛底物有助于解离二聚预催化剂8并结合活性单体催化剂9。对于[Rh(-DTBM-SEGPHOS)] BF_4,没有诱导期,并且底物和产物均被抑制。另外,竞争性脱羰作用产生了催化惰性的羰基铑,该铑在反应过程中积累。两种机理均通过动力学模拟程序进行建模,并且模型与实验数据一致。进行密度泛函理论计算以了解此变换的更多难以捉摸的细节。这些模拟支持酮插入步骤具有最高的能量跃迁状态,并揭示了在该跃迁状态结构中羰基氧孤对与Rh d轨道之间的意外相互作用。最后,提出了一种基于计算的过渡态几何结构的模型,以合理化使用?-DTBM-SEGPHOS作为手性配体观察到的对映体的绝对意义。

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