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1,3 - 丁二烯构象异构体在电离能和戴森轨道中的共存。

Coexistence of 1,3-butadiene conformers in ionization energies and Dyson orbitals.

作者信息

Saha Saumitra, Wang Feng, Falzon Chantal T, Brunger Michael J

机构信息

Centre for Molecular Simulation, Swinburne University of Technology, P.O. Box 218, Hawthorn, Melbourne, Victoria 3122, Australia.

出版信息

J Chem Phys. 2005 Sep 22;123(12):124315. doi: 10.1063/1.2034467.

Abstract

The minimum-energy structures on the torsional potential-energy surface of 1,3-butadiene have been studied quantum mechanically using a range of models including ab initio Hartree-Fock and second-order Møller-Plesset theories, outer valence Green's function, and density-functional theory with a hybrid functional and statistical average orbital potential model in order to understand the binding-energy (ionization energy) spectra and orbital cross sections observed by experiments. The unique full geometry optimization process locates the s-trans-1,3-butadiene as the global minimum structure and the s-gauche-1,3-butadiene as the local minimum structure. The latter possesses the dihedral angle of the central carbon bond of 32.81 degrees in agreement with the range of 30 degrees-41 degrees obtained by other theoretical models. Ionization energies in the outer valence space of the conformer pair have been obtained using Hartree-Fock, outer valence Green's function, and density-functional (statistical average orbital potentials) models, respectively. The Hartree-Fock results indicate that electron correlation (and orbital relaxation) effects become more significant towards the inner shell. The spectroscopic pole strengths calculated in the Green's function model are in the range of 0.85-0.91, suggesting that the independent particle picture is a good approximation in the present study. The binding energies from the density-functional (statisticaly averaged orbital potential) model are in good agreement with photoelectron spectroscopy, and the simulated Dyson orbitals in momentum space approximated by the density-functional orbitals using plane-wave impulse approximation agree well with those from experimental electron momentum spectroscopy. The coexistence of the conformer pair under the experimental conditions is supported by the approximated experimental binding-energy spectra due to the split conformer orbital energies, as well as the orbital momentum distributions of the mixed conformer pair observed in the orbital cross sections of electron momentum spectroscopy.

摘要

为了理解实验观测到的结合能(电离能)谱和轨道截面,我们用量子力学方法研究了1,3 - 丁二烯扭转势能面上的最低能量结构,采用了一系列模型,包括从头算哈特里 - 福克和二阶莫勒 - 普莱塞理论、外价格林函数以及含混合泛函和统计平均轨道势模型的密度泛函理论。独特的全几何优化过程确定了s - 反式 - 1,3 - 丁二烯为全局最低结构,s - gauche - 1,3 - 丁二烯为局部最低结构。后者中心碳碳键的二面角为32.81度,与其他理论模型得到的30度 - 41度范围一致。分别使用哈特里 - 福克、外价格林函数和密度泛函(统计平均轨道势)模型获得了构象异构体对在外价空间的电离能。哈特里 - 福克结果表明,电子关联(和轨道弛豫)效应在内层壳层方向变得更加显著。格林函数模型中计算的光谱极强度在0.85 - 0.91范围内,这表明独立粒子图像在本研究中是一个很好的近似。密度泛函(统计平均轨道势)模型的结合能与光电子能谱结果吻合良好,并且使用平面波脉冲近似由密度泛函轨道在动量空间中近似的模拟戴森轨道与实验电子动量能谱得到的结果吻合良好。由于构象异构体轨道能量的分裂导致近似的实验结合能谱,以及在电子动量能谱的轨道截面中观察到的混合构象异构体对的轨道动量分布,支持了实验条件下构象异构体对的共存。

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