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甲基亚铝(AlCH)自由基的从头算光谱

Ab initio spectroscopy of the aluminum methylene (AlCH) free radical.

作者信息

Tarroni Riccardo, Clouthier Dennis J

机构信息

Dipartimento di Chimica Industriale "Toso Montanari," Università di Bologna, Viale Risorgimento 4, 40136 Bologna, Italy.

Ideal Vacuum Products, Albuquerque, 87109 New Mexico, USA.

出版信息

J Chem Phys. 2020 Jul 7;153(1):014301. doi: 10.1063/5.0010552.

DOI:10.1063/5.0010552
PMID:32640824
Abstract

Extensive ab initio investigations of the ground and electronic excited states of the AlCH free radical have been carried out in order to predict the spectroscopic properties of this, as yet, undetected species. Difficulties with erratic predictions of the ground state vibrational frequencies, both in the literature and in the present work, have been traced to serious broken-symmetry instabilities in the unrestricted Hartree-Fock orbitals at the ground state equilibrium geometry. The use of restricted open-shell Hartree-Fock or complete active space self consistent field orbitals avoids these problems and leads to consistent and realistic sets of vibrational frequencies for the ground state. Using the internally contracted multireference configuration interaction method with aug-cc-pV(T+d)Z basis sets, we have calculated the geometries, energies, dipole moments, and vibrational frequencies of eight electronic states of AlCH and AlCD. In addition, we have generated Franck-Condon simulations of the expected vibronic structure of the Ã-X̃, B̃-X̃, C̃-X̃, and C̃-Ã band systems, which will be useful in searches for the electronic spectra of the radical. We have also simulated the expected rotational structure of the 0-0 absorption bands of these transitions at modest resolution under supersonic expansion cooled conditions. Our conclusion is that if AlCH can be generated in sufficient concentrations in the gas phase, it is most likely detectable through the B̃A-X̃B or C̃A-X̃B electronic transitions at 515 nm and 372 nm, respectively. Both band systems have vibrational and rotational signatures, even at modest resolution, that are diagnostic of the aluminum methylene free radical.

摘要

为了预测尚未被检测到的AlCH自由基的光谱性质,已经对其基态和电子激发态进行了广泛的从头算研究。在文献和本研究中,基态振动频率的预测不稳定,这一困难已追溯到基态平衡几何结构下无限制Hartree-Fock轨道中严重的破缺对称不稳定性。使用限制开壳层Hartree-Fock或完全活性空间自洽场轨道可以避免这些问题,并得到基态一致且现实的振动频率集。采用带aug-cc-pV(T+d)Z基组的内收缩多参考组态相互作用方法,我们计算了AlCH和AlCD的八个电子态的几何结构、能量、偶极矩和振动频率。此外,我们还生成了Ã-X̃、B̃-X̃、C̃-X̃和C̃-Ã带系预期振转结构的Franck-Condon模拟,这将有助于寻找该自由基的电子光谱。我们还在超声速膨胀冷却条件下,以适度分辨率模拟了这些跃迁0-0吸收带的预期转动结构。我们的结论是,如果AlCH能在气相中以足够的浓度生成,那么很可能分别通过515nm和372nm处的B̃A-X̃B或C̃A-X̃B电子跃迁被检测到。即使在适度分辨率下,这两个带系都有振动和转动特征,可用于诊断铝亚甲基自由基。

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