Restaino Lorenzo, Jadoun Deependra, Kowalewski Markus
Department of Physics, Stockholm University, Albanova University Centre, SE-106 91 Stockholm, Sweden.
Struct Dyn. 2022 Jun 27;9(3):034101. doi: 10.1063/4.0000146. eCollection 2022 May.
Linear off-resonant x-ray Raman techniques are capable of detecting the ultrafast electronic coherences generated when a photoexcited wave packet passes through a conical intersection. A hybrid femtosecond or attosecond probe pulse is employed to excite the system and stimulate the emission of the signal photon, where both fields are components of a hybrid pulse scheme. In this paper, we investigate how attosecond pulse trains, as provided by high-harmonic generation processes, perform as probe pulses in the framework of this spectroscopic technique, instead of single Gaussian pulses. We explore different combination schemes for the probe pulse as well as the impact of parameters of the pulse trains on the signals. Furthermore, we show how Raman selection rules and symmetry consideration affect the spectroscopic signal, and we discuss the importance of vibrational contributions to the overall signal. We use two different model systems, representing molecules of different symmetries, and quantum dynamics simulations to study the difference in the spectra. The results suggest that such pulse trains are well suited to capture the key features associated with the electronic coherence.
线性非共振X射线拉曼技术能够检测光激发波包通过锥形交叉点时产生的超快电子相干性。采用混合飞秒或阿秒探测脉冲来激发系统并刺激信号光子的发射,其中两个场都是混合脉冲方案的组成部分。在本文中,我们研究了高次谐波产生过程提供的阿秒脉冲序列在这种光谱技术框架下作为探测脉冲的性能,而不是单个高斯脉冲。我们探索了探测脉冲的不同组合方案以及脉冲序列参数对信号的影响。此外,我们展示了拉曼选择规则和对称性考虑如何影响光谱信号,并讨论了振动对整体信号贡献的重要性。我们使用两个不同的模型系统,分别代表不同对称性的分子,并通过量子动力学模拟来研究光谱的差异。结果表明,这种脉冲序列非常适合捕捉与电子相干性相关的关键特征。