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从联合原子到离解的 H2 分子的 1Sigma(u)+ 态的能量和密度分析。

Energy and density analyses of the 1Sigma(u)+ states in the H2 molecule from the united atom to dissociation.

机构信息

Dipartimento di Scienze Chimiche e Ambientali, Università dell'Insubria, Via Valleggio 11, I-22100 Como, Italy.

出版信息

J Phys Chem A. 2009 Dec 31;113(52):14791-9. doi: 10.1021/jp9049395.

Abstract

The 1Sigma(u)+ excited states of the H2 molecule are computed following a recent study by Corongiu and Clementi (J. Chem. Phys. 2009, 131, 034301) on the 1Sigma(g)+ states. Full configuration interaction computations both from Hartree-Fock molecular orbitals and Heitler-London atomic orbitals are presented and correlated with a comprehensive analysis. The basis sets utilized are either extended and optimized Slater type functions, STO, or spherical Gaussian functions, GTO. Computations and analyses are presented for states 1 to 14, covering the internuclear distances from 0.01 to 10000 bohr. The accurate data by L. Wolniewicz and collaborators, available for the first six excited states, verify the good quality of our computations. We focus on the characterization of the orbitals in the excited state wave functions, on the electronic density evolution from the united atom to dissociation, on quantitative decomposition of the total energy into covalent and ionic components and on detailed analyses of energy contributions to the total state energy from selected STO subsets. Each manifold has one state, specifically the states 1, 3 and 6, where the second minimum has strong ionic character. State 10 dissociates into the ion pair H+H-.

摘要

采用 Corongiu 和 Clementi(J. Chem. Phys. 2009, 131, 034301)最近对 1Sigma(g)+态的研究,计算了 H2 分子的 1Sigma(u)+激发态。给出了基于 Hartree-Fock 分子轨道和 Heitler-London 原子轨道的全组态相互作用计算,并与综合分析相关联。所使用的基组要么是扩展和优化的 Slater 型函数 STO,要么是球形高斯函数 GTO。计算和分析涵盖了从 0.01 到 10000 bohr 的核间距的 1 到 14 态。L. Wolniewicz 及其合作者提供的前六个激发态的准确数据验证了我们计算的高质量。我们专注于激发态波函数中轨道的特征、从联合原子到离解的电子密度演化、总能量分解为共价和离子成分以及从选定的 STO 子集到总态能量的能量贡献的详细分析。每个简并态都有一个态,特别是态 1、3 和 6,其中第二极小值具有强烈的离子特性。态 10 离解为 H+H-离子对。

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