Department of Chemistry, Graduate School of Science, Kyoto University, Kitashirakawa, Sakyo-ku, Kyoto, Japan.
Phys Chem Chem Phys. 2011 Jun 21;13(23):11118-27. doi: 10.1039/c1cp20420c. Epub 2011 May 9.
Double proton transfer (DPT) reaction of a 7-azaindole dimer in the first ππ* electronically excited state was studied theoretically. We investigated the reaction mechanism through constructing a full dimensional empirical valence bond potential energy function (PEF) based on potential energies evaluated by ab initio molecular orbital methods, and carrying out quantum dynamics calculations with the PEF. Potential energy surfaces of the DPT obtained at the multi-reference perturbation level of theory favors a concerted DPT mechanism, although a stepwise channel is suggested to open for an excited initial vibrational state. Reduced two dimensional quantum dynamics calculations for a reaction surface Hamiltonian of DPT coordinates were performed. Time constants of the reaction were evaluated to be on the order of picoseconds, which is consistent with experiments. On the other hand, the computed kinetic isotope effect deviates from experimental evidence, suggesting the importance of intermolecular stretching motion, which is not explicit in the present calculations for the quantum effect.
我们通过构建一个基于从头算分子轨道方法计算的势能的全维经验价键势能函数(PEF),并使用该 PEF 进行量子动力学计算,对 7-氮杂吲哚二聚体在第一ππ*电子激发态下的双质子转移(DPT)反应进行了理论研究。在多参考微扰理论水平上获得的 DPT 势能表面有利于协同 DPT 机制,尽管对于激发的初始振动状态,建议打开逐步通道。对 DPT 坐标的反应表面哈密顿量进行了简化的二维量子动力学计算。反应的时间常数估计在皮秒量级,这与实验结果一致。另一方面,计算得到的动力学同位素效应与实验证据不符,这表明分子间伸缩运动的重要性,而在目前的量子效应计算中,这种运动并不明确。