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环己二烯/己三烯超快光异构化的从头算非绝热量子动力学

Ab initio nonadiabatic quantum dynamics of cyclohexadiene/hexatriene ultrafast photoisomerization.

作者信息

Tamura Hiroyuki, Nanbu Shinkoh, Ishida Toshimasa, Nakamura Hiroki

机构信息

Institute for Molecular Science, Myodaiji, Okazaki 444-8585, Japan.

出版信息

J Chem Phys. 2006 Feb 28;124(8):084313. doi: 10.1063/1.2171688.

Abstract

Reaction mechanisms of the ultrafast photoisomerization between cyclohexadiene and hexatriene have been elucidated by the quantum dynamics on the ab initio potential energy surfaces calculated by multireference configuration interaction method. In addition to the quantum wave-packet dynamics along the two-dimensional reaction coordinates, the semiclassical analyses have also been carried out to correctly estimate the nonadiabatic transition probabilities around conical intersections in the full-dimensional space. The reaction time durations of radiationless decays in the wave-packet dynamics are found to be generally consistent with the femtosecond time-resolution experimental observations. The nonadiabatic transition probabilities among the ground (S0), first (S1), and second (S2) excited states have been estimated by using the semiclassical Zhu-Nakamura formula considering the full-dimensional wave-packet density distributions in the vicinity of conical intersections under the harmonic normal mode approximation. The cyclohexadiene (CHD) ring-opening process proceeds descending on the S1(1 1B) potential after the photoexcitation. The major part of the wave-packet decays from S1(1 1B) to S1(2 1A) by the first seam line crossing along the C2-symmetry-breaking directions. The experimentally observed ultrafast S1-S0 decay can be explained by the dynamics through the S1-S0 conical intersection along the direction toward the five-membered ring. The CHD: hexatriene (HT) branching ratio is estimated to be approximately 5:5, which is in accordance with the experiment in solution. This branching ratio is found to be mainly governed by the location of the five-membered ring S1-S0 conical intersection along the ground state potential ridge between CHD and HT.

摘要

通过多参考组态相互作用方法计算的从头算势能面上的量子动力学,阐明了环己二烯和己三烯之间超快光异构化的反应机理。除了沿二维反应坐标的量子波包动力学外,还进行了半经典分析,以正确估计全维空间中锥形交叉点周围的非绝热跃迁概率。发现波包动力学中无辐射衰变的反应持续时间通常与飞秒时间分辨实验观测结果一致。在简正模式近似下,考虑锥形交叉点附近的全维波包密度分布,利用半经典的朱-中村公式估计了基态(S0)、第一激发态(S1)和第二激发态(S2)之间的非绝热跃迁概率。光激发后,环己二烯(CHD)的开环过程在S1(1 1B)势能面上进行。波包的主要部分通过沿C2对称性破缺方向的第一条接缝线交叉从S1(1 1B)衰变到S1(2 1A)。实验观测到的超快S1-S0衰变可以通过沿五元环方向通过S1-S0锥形交叉点的动力学来解释。估计CHD:己三烯(HT)的分支比约为5:5,这与溶液中的实验结果一致。发现该分支比主要由五元环S1-S0锥形交叉点沿CHD和HT之间基态势能脊的位置决定。

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