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甲醇激发态超快光解动力学和非绝热耦合的时间分辨光电子能谱研究。

Ultrafast photodissociation dynamics and nonadiabatic coupling between excited electronic states of methanol probed by time-resolved photoelectron spectroscopy.

机构信息

Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA.

Stanford PULSE Institute, SLAC National Accelerator Laboratory, Menlo Park, California 94025, USA.

出版信息

J Chem Phys. 2019 Mar 21;150(11):114301. doi: 10.1063/1.5079549.

Abstract

The electronic and nuclear dynamics in methanol, following 156 nm photoexcitation, are investigated by combining a detailed analysis of time-resolved photoelectron spectroscopy experiments with electronic structure calculations. The photoexcitation pump pulse is followed by a delayed 260 nm photoionization probe pulse to produce photoelectrons that are analyzed by velocity map imaging. The yields of mass-resolved ions, measured with similar experimental conditions, are found to exhibit the same time-dependence as specific photoelectron spectral features. Energy-resolved signal onset and decay times are extracted from the measured photoelectron spectra to achieve high temporal resolution, beyond the 20 fs pump and probe pulse durations. When combined with ab initio calculations of selected cuts through the excited state potential energy surfaces, this information allows the dynamics of the transient excited molecule, which exhibits multiple nuclear and electronic degrees of freedom, to be tracked on its intrinsic few-femtosecond time scale. Within 15 fs of photoexcitation, we observe nuclear motion on the initially bound photoexcited 2A″ (S) electronic state, through a conical intersection with the 1A' (S) state, which reveals paths to photodissociation following C-O stretch and C-O-H angle opening.

摘要

通过将时间分辨光电子能谱实验的详细分析与电子结构计算相结合,研究了甲醇在 156nm 光激发后的电子和核动力学。光激发泵浦脉冲后跟随延迟的 260nm 光致电离探针脉冲,以产生通过速度映射成像分析的光电子。在类似的实验条件下测量的质量分辨离子的产率与特定光电子光谱特征表现出相同的时间依赖性。从测量的光电子光谱中提取能量分辨信号起始和衰减时间,以实现高时间分辨率,超出 20fs 泵浦和探针脉冲持续时间。当与通过激发态势能面的选定截面的从头算计算相结合时,该信息允许跟踪瞬态激发分子的动力学,该分子表现出多个核和电子自由度,在其内在的几飞秒时间尺度上。在光激发后的 15fs 内,我们通过与 1A'(S)态的锥形交叉观察到最初束缚在光激发的 2A″(S)电子态上的核运动,这揭示了沿 C-O 拉伸和 C-O-H 角打开进行光解的途径。

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