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极紫外阿秒脉冲序列电离多原子分子中的飞秒级同位素效应

Few-Femtosecond Isotope Effect in Polyatomic Molecules Ionized by Extreme Ultraviolet Attosecond Pulse Trains.

作者信息

Vacher Morgane, Boyer Alexie, Loriot Vincent, Lépine Franck, Nandi Saikat

机构信息

Nantes Université, CNRS, CEISAM UMR 6230, F-44300 Nantes, France.

Université de Lyon, Université Claude Bernard Lyon 1, CNRS, Institut Lumière Matière, F-69622 Villeurbanne, France.

出版信息

J Phys Chem A. 2022 Sep 1;126(34):5692-5701. doi: 10.1021/acs.jpca.2c03487. Epub 2022 Aug 22.

DOI:10.1021/acs.jpca.2c03487
PMID:35994358
Abstract

Following ionization by an extreme ultraviolet (XUV) attosecond pulse train, a polyatomic molecule can be promoted to more-than-one excited states of the residual ion. The ensuing relaxation dynamics is often facilitated by several reaction coordinates, making them difficult to disentangle by the usual spectroscopic means. Here, we show that in atto-chemistry isotope labeling can be an efficient tool for unraveling the relaxation pathways in highly excited photoionized molecules. Employing an XUV pump pulse and a near-infrared probe pulse, we found the nuclear as well as coupled electron-nuclear dynamics in ethylene to be almost 40% faster compared to that of its deuterated counterpart. The findings, which are supported by advanced nonadiabatic dynamics calculations, led to the identification of the relevant nuclear coordinates controlling the relaxation. Our experiment highlights the relevance of ultrashort XUV pulses to capture the isotopic effect in few-femtosecond molecular photodynamics.

摘要

在被极紫外(XUV)阿秒脉冲序列电离后,一个多原子分子可以被激发到残余离子的多个激发态。随后的弛豫动力学通常由多个反应坐标促成,这使得它们难以通过常规光谱手段来解析。在此,我们表明在阿秒化学中,同位素标记可以成为揭示高激发光离子化分子中弛豫路径的有效工具。利用一个XUV泵浦脉冲和一个近红外探测脉冲,我们发现乙烯中的核以及耦合的电子 - 核动力学与其氘代对应物相比快了近40%。这些发现得到了先进的非绝热动力学计算的支持,从而确定了控制弛豫的相关核坐标。我们的实验突出了超短XUV脉冲在捕捉飞秒级分子光动力学中的同位素效应方面的重要性。

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Dissociation and Isomerization Following Ionization of Ethylene: Insights from Nonadiabatic Dynamics Simulations.
乙烯电离后的离解与异构化:非绝热动力学模拟的见解
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Influence of nuclear dynamics on molecular attosecond photoelectron interferometry.核动力学对分子阿秒光电子干涉测量的影响。
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