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首页> 外文期刊>Physical Review X >Spectroscopic and Structural Probing of Excited-State Molecular Dynamics with Time-Resolved Photoelectron Spectroscopy and Ultrafast Electron Diffraction
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Spectroscopic and Structural Probing of Excited-State Molecular Dynamics with Time-Resolved Photoelectron Spectroscopy and Ultrafast Electron Diffraction

机译:具有时间分辨光电子谱和超快电子衍射的激发 - 状态分子动力学的光谱和结构探测

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Pump-probe measurements aim to capture the motion of electrons and nuclei on their natural timescales (femtoseconds to attoseconds) as chemical and physical transformations take place, effectively making “molecular movies” with short light pulses. However, the quantum dynamics of interest are filtered by the coordinate-dependent matrix elements of the chosen experimental observable. Thus, it is only through a combination of experimental measurements and theoretical calculations that one can gain insight into the internal dynamics. Here, we report on a combination of structural (relativistic ultrafast electron diffraction, or UED) and spectroscopic (time-resolved photoelectron spectroscopy, or TRPES) measurements to follow the coupled electronic and nuclear dynamics involved in the internal conversion and photodissociation of the polyatomic molecule, diiodomethane (CH2I2). While UED directly probes the 3D nuclear dynamics, TRPES only serves as an indirect probe of nuclear dynamics via Franck-Condon factors, but it is sensitive to electronic energies and configurations, via Koopmans’ correlations and photoelectron angular distributions. These two measurements are interpreted with trajectory surface hopping calculations, which are capable of simulating the observables for both measurements from the same dynamics calculations. The measurements highlight the nonlocal dynamics captured by different groups of trajectories in the calculations. For the first time, both UED and TRPES are combined with theory capable of calculating the observables in both cases, yielding a direct view of the structural and nonadiabatic dynamics involved.
机译:泵探针测量旨在捕获电子和核的运动,因为化学和物理转化发生,有效地制作了短脉冲的“分子动画”。然而,通过所选择的实验可观察的坐标依赖性矩阵元件过滤感兴趣的量子动态。因此,只有通过实验测量和理论计算的组合,即人们可以深入了解内部动态。在此,我们报告结构(相对论超快电子衍射或UED)和光谱(时间分辨光电子谱或TRPES)测量的组合,以遵循涉及所述多元素分子的内部转化和光积极的耦合电子和核动力学,二碘甲烷(CH 2 I2)。虽然UED直接探测了3D核动力学,但TRPE仅通过FRANCK-CONDON因子作为核动力学的间接探针,但它对电子能量和配置,通过Koopmans的相关性和光电子角分布敏感。这两个测量被解释为轨迹表面跳跃计算,其能够模拟来自相同动态计算的测量的可观察。测量结果突出显示不同轨迹组捕获的非识别动态。首次,uED和TRPES都与能够在两种情况下计算可观察到的理论,产生涉及结构和非等动力学的直接观点。
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