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二碘噻吩二阳离子离解的能量相关时间尺度。

Energy-dependent timescales in the dissociation of diiodothiophene dication.

机构信息

Department of Physics and Astronomy, University of Turku, FI-20014 Turku, Finland.

CNRS, Laboratoire de Chimie Physique - Matière et Rayonnement, 4 Pl. Jussieu, 75005, Paris, France.

出版信息

Phys Chem Chem Phys. 2023 Feb 15;25(7):5795-5807. doi: 10.1039/d2cp05309h.

Abstract

Photodissociation molecular dynamics of gas-phase 2,5-diiodothiophene molecules was studied in an electron-energy-resolved electron-multi-ion coincidence experiment performed at the FinEstBeAMS beamline of MAX IV synchrotron. Following the photoionization of the iodine 4d subshell and the Auger decay, the dissociation landscape of the molecular dication was investigated as a function of the Auger electron energy. Concentrating on an major dissociation pathway, CHIS → CHS + I + I, and accessing the timescales of the process ion momentum correlation analysis, it was revealed how this three-body process changes depending on the available internal energy. Using a generalized secondary dissociation model, the process was shown to evolve from secondary dissociation regime towards concerted dissociation as the available energy increased, with the secondary dissociation time constant changing from 1.5 ps to 129 fs. The experimental results were compared with simulations using a stochastic charge-hopping molecular mechanics model. It represented the observed trend and also gave a fair quantitative agreement with the experiment.

摘要

在 MAX IV 同步加速器的 FinEstBeAMS 光束线上进行的电子能量分辨电子多离子符合实验中,研究了气相 2,5-二碘噻吩分子的光解分子动力学。在碘 4d 亚壳层的光致电离和俄歇衰变之后,研究了分子二价阳离子的离解态势作为俄歇电子能量的函数。通过离子动量相关分析,专注于主要的离解途径 CHIS → CHS + I + I,并访问该过程的时间尺度,揭示了随着可用内部能量的增加,这个三体过程如何变化。使用广义二次离解模型,随着可用能量的增加,该过程从二次离解区域向协同离解转变,二次离解时间常数从 1.5 ps 变为 129 fs。实验结果与使用随机电荷跳跃分子力学模型的模拟进行了比较。它代表了观察到的趋势,并且与实验也具有相当的定量一致性。

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