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通过受激超快 X 射线拉曼信号产生的振子相干图谱来可视化锥形交叉通道。

Visualizing conical intersection passages via vibronic coherence maps generated by stimulated ultrafast X-ray Raman signals.

机构信息

Department of Chemistry, University of California, Irvine, CA 92697-2025.

Department of Physics and Astronomy, University of California, Irvine, CA 92697-2025.

出版信息

Proc Natl Acad Sci U S A. 2020 Sep 29;117(39):24069-24075. doi: 10.1073/pnas.2015988117. Epub 2020 Sep 14.

Abstract

The rates and outcomes of virtually all photophysical and photochemical processes are determined by conical intersections. These are regions of degeneracy between electronic states on the nuclear landscape of molecules where electrons and nuclei evolve on comparable timescales and thus become strongly coupled, enabling radiationless relaxation channels upon optical excitation. Due to their ultrafast nature and vast complexity, monitoring conical intersections experimentally is an open challenge. We present a simulation study on the ultrafast photorelaxation of uracil, based on a quantum description of the nuclei. We demonstrate an additional window into conical intersections obtained by recording the transient wavepacket coherence during this passage with an X-ray free-electron laser pulse. Two major findings are reported. First, we find that the vibronic coherence at the conical intersection lives for several hundred femtoseconds and can be measured during this entire time. Second, the time-dependent energy-splitting landscape of the participating vibrational and electronic states is directly extracted from Wigner spectrograms of the signal. These offer a physical picture of the quantum conical intersection pathways through visualizing their transient vibronic coherence distributions. The path of a nuclear wavepacket in the vicinity of the conical intersection is directly mapped by the proposed experiment.

摘要

锥型交叉点决定了几乎所有光物理和光化学过程的速率和结果。这些是分子核 landscapes 上电子态之间的简并区域,其中电子和原子核在可比的时间尺度上演化,因此变得紧密耦合,从而在光激发后能够实现无辐射弛豫通道。由于它们超快的性质和巨大的复杂性,实验监测锥型交叉点是一个开放的挑战。我们基于核的量子描述,对尿嘧啶的超快光致松弛进行了模拟研究。我们展示了通过使用自由电子激光脉冲记录在这个过程中瞬态波包相干性而获得的另一个锥型交叉点的窗口。报告了两个主要发现。首先,我们发现,在锥型交叉点处的振子相干性可以持续存在几百飞秒,并可以在整个过程中进行测量。其次,通过信号的维格纳谱图直接提取参与振动和电子态的时变能量分裂景观。这些通过可视化它们瞬态振子相干性分布,提供了量子锥型交叉点途径的物理图像。拟议的实验直接映射了核波包在锥型交叉点附近的路径。

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