Sun Kewei, Xie Weiwei, Chen Lipeng, Domcke Wolfgang, Gelin Maxim F
School of Science, Hangzhou Dianzi University, Hangzhou 310018, China.
Institute of Physical Chemistry, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany.
J Chem Phys. 2020 Nov 7;153(17):174111. doi: 10.1063/5.0024148.
We studied spectroscopic signatures of the nonadiabatic dynamics at conical intersections formed by the lowest excited singlet states in pyrazine. We considered two ab initio models of conical intersections in the excited states of pyrazine developed by Sala et al. [Phys. Chem. Chem. Phys. 16, 15957 (2014)]: a two-state (B and B), five-mode model and a three-state (B, B, and A), nine-mode model. We simulated the signals of three widely used techniques: time- and frequency-resolved fluorescence spectroscopy, transient absorption pump-probe spectroscopy, and electronic two-dimensional spectroscopy. The signals were calculated through third-order response functions, which, in turn, were evaluated with the numerically accurate multiple Davydov ansatz. We establish spectroscopic signatures of the optically dark A state and demonstrate that the key features of the photoinduced dynamics, such as electronic/nuclear populations, electronic/nuclear coherences, and electronic/nuclear energy transfer processes, are imprinted in the spectroscopic signals. We show that a fairly complete picture of the nonadiabatic dynamics at conical intersections can be obtained when several spectroscopic techniques are combined. Provided that the time resolution is sufficient, time- and frequency-resolved fluorescence may provide the best visualization of the nonadiabatic dynamics near conical intersections.
我们研究了吡嗪中由最低激发单重态形成的锥形交叉点处非绝热动力学的光谱特征。我们考虑了Sala等人[《物理化学化学物理》16, 15957 (2014)]提出的吡嗪激发态锥形交叉点的两种从头算模型:一种是两态(B和B)、五模模型,另一种是三态(B、B和A)、九模模型。我们模拟了三种广泛使用的技术的信号:时间分辨和频率分辨荧光光谱、瞬态吸收泵浦 - 探测光谱以及电子二维光谱。这些信号是通过三阶响应函数计算得出的,而三阶响应函数又是用数值精确的多重达维多夫近似来评估的。我们确定了光学暗态A的光谱特征,并证明光诱导动力学的关键特征,如电子/核布居、电子/核磁子以及电子/核能转移过程,都印刻在光谱信号中。我们表明,当结合几种光谱技术时,可以获得锥形交叉点处非绝热动力学的相当完整的图像。只要时间分辨率足够,时间分辨和频率分辨荧光可能会提供锥形交叉点附近非绝热动力学的最佳可视化。