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将双原子分子的总偶极矩分解为各个轨道的贡献。

Breakdown of the Total Dipole Moments of Diatomic Molecules into Individual Orbital Contributions.

作者信息

Frenking Gernot, Fau Stefan

机构信息

School of Chemistry and Molecular Engineering, State Key Laboratory of Materials-Oriented Chemical Engineering, Nanjing Tech University, Nanjing 211816, China.

Fachbereich Chemie, Philipps-Universität Marburg, Hans-Meerwein-Strasse 4, D-35043 Marburg, Germany.

出版信息

J Phys Chem A. 2024 Sep 19;128(37):7856-7868. doi: 10.1021/acs.jpca.4c04352. Epub 2024 Sep 9.

Abstract

Quantum chemical results at the CCSD(T)/def2-QZVPP and BP86/def2-QZVPP levels are reported for the neutral and charged diatomic molecules EF, EO (E = B-Tl), EF, EO, EN (E = C-Pb), EO, and EN (E = N-Bi). The theoretically predicted bond lengths and dipole moments are in good agreement with each other and with the available experimental values. It is shown that the total dipole moment of the molecules can be nicely separated into the contributions of the individual occupied molecular orbitals. The σ lone-pair orbital has a dominating influence on the total dipole moment in the lighter EX systems, where E is an atom of the first or second octal row of the periodic table, but it becomes less influential for the heavier species. The HOMO of the heavy cations PbF, SbO, and BiO is the degenerate π-bonding orbital, and the σ lone-pair orbital is the HOMO-2. The orbital energies of the (-1)d AOs of the heavier atoms are in the same range as those of the lowest lying genuine valence orbitals, so the division into nuclear and valence orbitals is not so clear.

摘要

报道了在CCSD(T)/def2-QZVPP和BP86/def2-QZVPP水平下,中性和带电双原子分子EF、EO(E = B-Tl)、EF、EO、EN(E = C-Pb)、EO和EN(E = N-Bi)的量子化学结果。理论预测的键长和偶极矩相互之间以及与现有的实验值都吻合良好。结果表明,分子的总偶极矩可以很好地分解为各个占据分子轨道的贡献。在较轻的EX体系中,其中E是元素周期表第一或第二周期的原子,σ孤对轨道对总偶极矩有主导影响,但对于较重的物种,其影响变小。重阳离子PbF、SbO和BiO的最高占据分子轨道(HOMO)是简并的π键轨道,而σ孤对轨道是HOMO-2。较重原子的(-1)d原子轨道(AO)的轨道能量与最低的真正价轨道的能量处于同一范围,因此核轨道和价轨道的划分不是很清晰。

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