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A combined kinetic-quantum mechanical model for assessment of catalytic cycles: Application to cross-coupling and Heck reactions

机译:用于评估催化循环的组合动力学量子力学模型:在交叉偶联和Heck反应中的应用

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The efficiency of catalytic cycles is measured by their turnover frequency (TOF). The degree of TOF control determines which states contribute most to the rate of the cycle, and thus indicates the steps that have the highest impact on the cycle. A kinetic model developed by Christiansen (Christiansen, J. A. Adv. Catal. 1953, 5, 311) for catalytic cycles is implemented here in a form that utilizes state energies. This enables one to assess the efficiency of quantum mechanically computed catalytic cycles like the palladium-catalyzed cross-coupling and Heck reactions, to test alternative hypotheses, and to make some predictions. This implementation can also account for effects such as Sabatier's volcano curve for heterogeneous catalysis. The model leads to a dependence of the TOF for any cycle on the "corrected" energy span quantity, delta E, whose precise expression depends on the location of the summit and trough of the cycle in the step sequence of the cycle. Thus, knowing the highest energy transition state, the most abundant reaction intermediate, and the reaction energy enables one to make quick predictions about relative efficiency of cycles. At the same time, the degree of TOF control determines which states contribute most to the rate of reaction, and thus indicates the values to be included in the calculation of the energetic span and the steps that may be tinkered with to improve the cycle.
机译:催化循环的效率通过其周转频率(TOF)来衡量。 TOF控制的程度确定哪些状态对循环速率的影响最大,从而指示对循环影响最大的步骤。由克里斯蒂安森(Christiansen,J. A. Adv。Catal。1953,5,311)为催化循环开发的动力学模型在此以利用状态能量的形式实现。这使人们能够评估量子力学计算的催化循环(如钯催化的交叉偶联和Heck反应)的效率,测试替代假设并做出一些预测。这种实现方式还可以说明诸如多相催化的萨巴蒂埃火山曲线之类的影响。该模型导致任何周期的TOF依赖于“校正的”能量跨度量delta E,其精确表达取决于周期的阶梯序列中周期的最高点和最低点的位置。因此,知道最高的能量跃迁状态,最丰富的反应中间体和反应能量使人们能够快速预测循环的相对效率。同时,TOF控制的程度决定了哪些状态对反应速率的影响最大,并因此指示了要包括在能量跨度计算中的值以及可能需要改进的步骤以改善循环。

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