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Theoretical Study on the Reaction Mechanism of Ti with CH3CN in the Gas Phase

机译:Ti与CH3CN在气相中反应机理的理论研究

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To gain a deeper understanding of the reaction mechanisms of Ti with acetonitrile molecules, the triplet and singlet spin-state potential energy surfaces (PESs) has been investigated at B3LYP level of density functional theory (DFT). Crossing points between the different PESs and possible spin inversion processes are discussed by spin-orbit coupling (SOC) calculation. In addition, the bonding properties of the species along the reaction were analyzed by electron localization function (ELF), atoms in molecules (AIM) and natural bond orbital (NBO). The results showed that acetonitrile activation by Ti is a typical spin-forbidden process; larger SOC (by 220.12 cm(-1)) and the possibility of crossing between triplet and singlet imply that intersystem crossing (ISC) would occur near the minimum energy crossing point (MECP) during the transfer of the hydrogen atom.
机译:为了更深入地了解Ti与乙腈分子的反应机理,已经在密度泛函理论(DFT)的B3LYP级别研究了三重态和单重态自旋态势能面(PESs)。通过自旋轨道耦合(SOC)计算,讨论了不同PES之间的交叉点和可能的自旋反转过程。此外,通过电子定位功能(ELF),分子中的原子(AIM)和自然键轨道(NBO)分析了物种在反应过程中的键合特性。结果表明,Ti活化乙腈是典型的自旋禁止过程。更大的SOC(增加220.12 cm(-1)),并且三重态和单重态之间可能发生交叉的可能性暗示在氢原子转移期间,最小能量交叉点(MECP)附近会发生系统间交叉(ISC)。

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