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利用水的芯孔激发态分子动力学模拟进行俄歇衰变计算。

Auger decay calculations with core-hole excited-state molecular-dynamics simulations of water.

作者信息

Takahashi Osamu, Odelius Michael, Nordlund Dennis, Nilsson Anders, Bluhm Hendrik, Pettersson Lars G M

机构信息

Department of Chemistry, Hiroshima University, Higashi, Japan.

出版信息

J Chem Phys. 2006 Feb 14;124(6):64307. doi: 10.1063/1.2166234.

Abstract

We report a new theoretical procedure for calculating Auger decay transition rates including effects of core-hole excited-state dynamics. Our procedure was applied to the normal and first resonant Auger processes of gas-phase water and compared to high-resolution experiments. In the normal Auger decay, calculated Auger spectra were found to be insensitive to the dynamics, while the repulsive character of the first resonant core-excited state makes the first resonantly excited Auger decay spectra depend strongly on the dynamics. The ultrafast dissociation of water upon O(1s)-->4a(1) excitation was analyzed and found to be very sensitive to initial vibrational distortions in the ground state which furthermore affect the excitation energy. Our calculated spectra reproduce the experimental Auger spectra except for the Franck-Condon vibrational structure which is not included in the procedure. We found that the Auger decay of OH and O fragments contributes to the total intensity, and that the contribution from these fragments increases with increasing excitation energy.

摘要

我们报告了一种计算俄歇衰变跃迁速率的新理论程序,该程序考虑了芯孔激发态动力学的影响。我们将此程序应用于气相水的正常俄歇过程和第一共振俄歇过程,并与高分辨率实验进行了比较。在正常俄歇衰变中,计算得到的俄歇谱对动力学不敏感,而第一共振芯激发态的排斥特性使得第一共振激发俄歇衰变谱强烈依赖于动力学。分析了O(1s)→4a(1)激发后水的超快解离,发现其对基态初始振动畸变非常敏感,而这种畸变进而影响激发能。我们计算得到的谱重现了实验俄歇谱,但该程序未包含弗兰克 - 康登振动结构。我们发现OH和O碎片的俄歇衰变对总强度有贡献,并且这些碎片的贡献随着激发能的增加而增加。

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