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首页> 外文期刊>ACS Omega >Theoretical Predictiong of Activation Free Energies of Various Hydride Self-Exchange Reactions in Acetonitrile at 298 K
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Theoretical Predictiong of Activation Free Energies of Various Hydride Self-Exchange Reactions in Acetonitrile at 298 K

机译:乙炔在298 K时各种氢化物自交换反应的自由活化能的理论预测

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Hydride transfer reactions are very important chemical reactions in organic chemistry. It has been a chemist’s dream to predict the rate constants of hydride transfer reactions by only using the physical parameters of the reactants. To realize this dream, we have developed a kinetic equation (Zhu equation) in our previous papers to predict the activation free energies of various chemical reactions using the activation free energies of the corresponding self-exchange reactions and the related bond dissociation energies or redox potentials of the reactants. Because the activation free energy of the hydride self-exchange reaction is difficult to measure using the experimental method, in this study, the activation free energies of 159 hydride self-exchange reactions in acetonitrile at 298 K were systematically computed using an accurately benchmarked density functional theory method with a precision of 1.1 kcal mol~(–1). The results show that the range of the activation free energies of the 159 hydride self-exchange reactions is from 16.1 to 46.6 kcal mol~(–1). The activation free energies of 25?122 hydride transfer reactions in acetonitrile at 298 K can be estimated using the activation free energies of the 159 hydride self-exchange reactions and the corresponding heterolytic bond dissociation free energies of the reactants. The effects of the heteroatom, substituent, and aromaticity on the activation free energies of hydride self-exchange reactions were examined. The results show that heteroatoms, substituents at the reaction center, and the aromaticity of reactants, all have remarkable effects on the activation free energy of hydride self-exchange reactions. All kinetic information provided in this work on the hydride self-exchange reactions in acetonitrile at 298 K should be very useful in chemical labs and chemical industry.
机译:氢化物转移反应是有机化学中非常重要的化学反应。仅使用反应物的物理参数来预测氢化物转移反应的速率常数是化学家的梦想。为了实现这一梦想,我们在先前的论文中开发了一个动力学方程(朱方程),以利用相应的自交换反应的活化能和相关的键解离能或氧化还原电位来预测各种化学反应的活化能。反应物。由于氢化物自交换反应的活化自由能很难用实验方法测量,因此在这项研究中,我们使用精确基准的密度泛函系统地计算了298 K时乙腈中159个氢化物自交换反应的活化自由能。理论方法,精度为1.1 kcal mol〜(–1)。结果表明,159个氢化物自交换反应的活化自由能范围为16.1至46.6 kcal mol〜(-1)。乙腈中25?122氢化物转移反应在298 K时的活化能可以使用159个氢化物自交换反应的活化能和相应的反应物杂解键解离自由能来估算。研究了杂原子,取代基和芳香性对氢化物自交换反应活化自由能的影响。结果表明,杂原子,反应中心的取代基和反应物的芳香性均对氢化物自交换反应的活化自由能具有显着影响。这项工作中提供的有关在298 K下乙腈中氢化物自交换反应的所有动力学信息在化学实验室和化学工业中都非常有用。

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