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对称性控制的激发态动力学。

Symmetry controlled excited state dynamics.

机构信息

Department of Chemistry, University of Copenhagen, Universitetsparken 5, 2100 Copenhagen Ø, Denmark.

出版信息

Phys Chem Chem Phys. 2019 Jan 30;21(5):2283-2294. doi: 10.1039/c8cp05950k.

Abstract

Symmetry effects in internal conversion are studied by means of two isomeric cyclic tertiary aliphatic amines in a velocity map imaging (VMI) experiment on the femtosecond timescale. It is demonstrated that there is a delicate structural dependence on when coherence is preserved after the transition between the 3p and 3s Rydberg states. N-Methyl morpholine (NMM) shows unambiguous preserved coherence, consistent with previous work, which is decidedly switched off by the repositioning of oxygen within the ring. From the differences in these dynamics, and an examination of the potential energy surface following the normal modes of vibration, it becomes clear that there is a striking dependence on atom substitution, which manifests itself in the permitted modes of vibration that take the system out of the Franck-Condon region through to the 3s minimum. It is shown that the non Fermi-like behaviour of NMM is due to a conical intersection (CI) between the 3px and 3s states lying directly along the symmetry allowed path of steepest descent out of the Franck-Condon region. NMI, where the symmetry has been changed, is shown to undergo internal conversion in a more Fermi-like manner as the energy spreads through the available modes ergodically.

摘要

本文通过在飞秒时间尺度上的速度图成像(VMI)实验,研究了内转换中的对称效应。结果表明,在 3p 和 3s Rydberg 态之间的跃迁之后,相干性保持的时间存在微妙的结构依赖性。N-甲基吗啉(NMM)表现出明确的相干性,与以前的工作一致,而在环内氧原子重新定位后,相干性则明显关闭。从这些动力学的差异以及对振动正则模式之后势能面的考察中,可以清楚地看出,原子取代存在显著的依赖性,这种依赖性体现在允许的振动模式中,这些模式通过 Franck-Condon 区域到达 3s 最低点,从而使系统脱离 Franck-Condon 区域。结果表明,NMM 的非费米行为是由于 3px 和 3s 态之间的锥形交叉(CI)直接沿着 Franck-Condon 区域的最陡下降对称允许路径。对称性发生变化的 NMI 则表现出更类似于费米的内转换方式,因为能量通过可用的模式遍历而随机扩散。

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