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首页> 外文期刊>International Journal of Quantum Chemistry >Studies on density functional theory for the electron-transfer reaction mechanism between M-C6H6 and M+-C6H6 complexes in the gas phase
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Studies on density functional theory for the electron-transfer reaction mechanism between M-C6H6 and M+-C6H6 complexes in the gas phase

机译:气相中M-C6H6与M + -C6H6配合物电子转移反应机理的密度泛函理论研究

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Density functional theory (DFT) is used to theoretically investigate the electron-transfer (ET) reactions between M (Li, Na, Mg)-C6H6 and M+-C6H6 complexes in the gas phase. The geometry optimization of the metal-benzene complexes and the encounter state in the process of ET reaction was performed at the 6-31G basis set level. The metal atoms (or metal ions)-benzene molecule separation distances computed using DET method were found to agree with second-order Moller-Plesset (MP2) results. The precursor complex has C-6 symmetry the distances between acceptor and donor is about 3.0-3.6 Angstrom which yields a bonding energy of approximately 0.9-1.5 eV. It shows there are relatively strong interactions between them. Additionally, the geometry of transition state is also obtained by the linear coordinate method. From the analysis of the charge on the transition state and the isolated state, the reaction mechanism was derived. Also the activation energy and the coupling matrix element of the rate constant of the ET reaction are calculated. According to the reorganization energy of the ET reaction, the values obtained from George-Griffith-Marcus (GGM) method (the contribution only from diagonal elements of force constant matrix) are larger than those obtained from Hessian matrix method (including the contribution from both diagonal and off-diagonal elements), which suggests that the coupling interactions between different vibrational modes are important to the inner-sphere reorganization energy for the ET reactions in gaseous phase. (C) 2000 John Wiley & Sons, Inc. [References: 34]
机译:密度泛函理论(DFT)用于理论研究气相中M(Li,Na,Mg)-C6H6和M + -C6H6配合物之间的电子转移(ET)反应。金属苯配合物的几何优化和ET反应过程中的相遇状态在6-31G基准水平上进行。发现使用DET方法计算的金属原子(或金属离子)与苯分子的分离距离与二阶Moller-Plesset(MP2)结果一致。前体络合物具有C-6对称性,受体与供体之间的距离为约3.0-3.6埃,这产生约0.9-1.5eV的结合能。它表明它们之间存在相对较强的交互作用。另外,还通过线性坐标法获得过渡态的几何形状。通过分析过渡态和孤立态的电荷,得出反应机理。还计算了ET反应的速率常数的活化能和偶联矩阵元素。根据ET反应的重组能,George-Griffith-Marcus(GGM)方法获得的值(仅来自力常数矩阵的对角元素的贡献)大于Hessian矩阵方法获得的值(包括两者的贡献)对角线和非对角线元素),这表明不同振动模式之间的耦合相互作用对于气相中ET反应的内层重组能很重要。 (C)2000 John Wiley&Sons,Inc. [参考:34]

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