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使用伦敦轨道对氮杂苯和磷杂苯的磁圆二色性进行规范无关的耦合簇单双激发计算。

Gauge-origin-independent coupled cluster singles and doubles calculation of magnetic circular dichroism of azabenzenes and phosphabenzene using London orbitals.

作者信息

Kjaergaard Thomas, Jansík Branislav, Jørgensen Poul, Coriani Sonia, Michl Josef

机构信息

Lundbeck Foundation Center for Theoretical Chemistry, Department of Chemistry, Aarhus University, Langelandsgade 140, DK-8000 Arhus C, Denmark.

出版信息

J Phys Chem A. 2007 Nov 8;111(44):11278-86. doi: 10.1021/jp071726l. Epub 2007 May 23.

Abstract

A computational study of the Faraday B term of magnetic circular dichroism at the coupled cluster singles and doubles level is presented for pyridine, pyrazine, pyrimidine, and phosphabenzene. Gauge-origin independence is obtained by expressing the B term as a total derivative of the one-photon dipole transition strength and using London orbitals. The high quality of the coupled cluster singles and doubles (CCSD) B terms makes these useful for the assignment of experimental spectra. Previous assignments of the experimental spectra based on the qualitative perimeter model are confirmed by the CCSD results for the three azines, while a reassignment is proposed for phosphabenzene. For non-overlapping bands, the B terms calculated at the equilibrium geometries are in good agreement with the experimental values. For overlapping bands, large deviations occur. Attributing a line width to the calculated equilibrium B terms leads to a large cancellation of positive and negative contributions. This cancellation may result in a large displacement of the band center maximum, leading to a large uncertainty in the assignments of "vertical experimental excitation energies" (pyridine). Bands may also completely vanish due to such cancellation (phosphabenzene). Explicit consideration of the cancellation yields simulated theoretical spectra that are in good agreement with experiment once the theoretical spectra are parallel displaced. A major contribution for this parallel displacement is the shift in the excitation energies due to correlation beyond CCSD, as seen when comparing vertical CCSD and CC3 equilibrium-geometry excitation energies.

摘要

本文针对吡啶、吡嗪、嘧啶和磷苯,在耦合簇单双激发水平下对磁圆二色性的法拉第B项进行了计算研究。通过将B项表示为单光子偶极跃迁强度的全导数并使用伦敦轨道,实现了规范原点独立性。耦合簇单双激发(CCSD)的B项质量很高,有助于实验光谱的归属。基于定性周长模型对实验光谱的先前归属,被三种嗪类的CCSD结果所证实,而对于磷苯则提出了重新归属。对于不重叠的谱带,在平衡几何构型下计算的B项与实验值吻合良好。对于重叠谱带,则会出现较大偏差。将线宽归因于计算得到的平衡B项会导致正负贡献的大幅抵消。这种抵消可能导致谱带中心最大值的大幅位移,从而导致“垂直实验激发能”(吡啶)归属的较大不确定性。由于这种抵消,谱带也可能完全消失(磷苯)。一旦理论光谱进行平行位移,明确考虑这种抵消会产生与实验吻合良好的模拟理论光谱。这种平行位移的一个主要贡献是由于CCSD之外的关联导致的激发能移动,这在比较垂直CCSD和CC3平衡几何构型激发能时可以看到。

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