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飞秒真空紫外光源的时间分辨光电子成像:SO 的 A∼/B∼- 和 F∼- 带中的动力学。

Time-resolved photoelectron imaging with a femtosecond vacuum-ultraviolet light source: Dynamics in the A∼/B∼- and F∼-bands of SO.

机构信息

Laboratory of Physical Chemistry, ETH Zurich, Vladimir-Prelog-Weg 2, CH-8093 Zurich, Switzerland.

出版信息

J Chem Phys. 2017 Feb 28;146(8):084301. doi: 10.1063/1.4976552.

Abstract

Time-resolved photoelectron imaging is demonstrated using the third harmonic of a 400-nm femtosecond laser pulse as the ionization source. The resulting 133-nm pulses are combined with 266-nm pulses to study the excited-state dynamics in the A∼/B∼- and F∼-band regions of SO. The photoelectron signal from the molecules excited to the A∼/B∼-band does not decay for at least several picoseconds, reflecting the population of bound states. The temporal variation of the photoelectron angular distribution (PAD) reflects the creation of a rotational wave packet in the excited state. In contrast, the photoelectron signal from molecules excited to the F∼-band decays with a time constant of 80 fs. This time constant is attributed to the motion of the excited-state wave packet out of the ionization window. The observed time-dependent PADs are consistent with the F∼ band corresponding to a Rydberg state of dominant s character. These results establish low-order harmonic generation as a promising tool for time-resolved photoelectron imaging of the excited-state dynamics of molecules, simultaneously giving access to low-lying electronic states, as well as Rydberg states, and avoiding the ionization of unexcited molecules.

摘要

利用 400nm 飞秒激光脉冲的三倍频作为电离源,演示了时间分辨光电子成像。得到的 133nm 脉冲与 266nm 脉冲结合,用于研究 SO 在 A∼/B∼-和 F∼-带区域的激发态动力学。激发到 A∼/B∼-带的分子的光电子信号至少在几个皮秒内不会衰减,这反映了束缚态的填充。光电子角分布(PAD)的时间变化反映了激发态中旋转波包的产生。相比之下,激发到 F∼-带的分子的光电子信号以 80fs 的时间常数衰减。这个时间常数归因于激发态波包离开电离窗口的运动。观察到的时变 PAD 与 F∼带一致,对应于 s 主导的里德伯态。这些结果确立了低阶谐波产生作为时间分辨光电子成像分子激发态动力学的一种有前途的工具,同时可获得低能电子态以及里德伯态,并避免未激发分子的电离。

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