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气相喹啉在3.5 - 10.7电子伏特光子能量范围内的真空紫外吸收光谱。

VUV Absorption Spectra of Gas-Phase Quinoline in the 3.5-10.7 eV Photon Energy Range.

作者信息

Leach Sydney, Jones Nykola C, Hoffmann Søren V, Un Sun

机构信息

LERMA, Observatoire de Paris , PSL Research University, CNRS, Sorbonne Universités , UPMC Univ. Paris 06 , 92195 Meudon Cedex , France.

ISA, Department of Physics and Astronomy , Aarhus University , 8000 Aarhus C , Denmark.

出版信息

J Phys Chem A. 2018 Jul 12;122(27):5832-5847. doi: 10.1021/acs.jpca.8b04629. Epub 2018 Jul 2.

Abstract

The absorption spectrum of quinoline was measured in the gas phase between 3.5 and 10.7 eV using a synchrotron photon source. A large number of sharp and broad spectral features were observed, some of which have plasmon-type collective π-electron modes contributing to their intensities. Eight valence electronic transitions were assigned, considerably extending the number of π-π* transitions previously observed mainly in solution. The principal factor in solution red-shifts is found to be the Lorentz-Lorenz polarizability parameter. Rydberg bands, observed for the first time, are analyzed into eight different series, converging to the D ground and two excited electronic states, namely, D and D, of the quinoline cation. The R1 series limit is 8.628 eV for the first ionization energy of quinoline, a value more precise than previously published. This value, combined with cation electronic transition data, provides precise energies, respectively, 10.623 and 11.355 eV, for the D and D states. The valence transition assignments are based on density functional theory (DFT) calculations as well as on earlier Pariser-Parr-Pople (P-P-P) self-consistent field linear combination of atomic orbitals molecular orbital results. The relative quality of the P-P-P and DFT data is discussed. Both are far from spectroscopic accuracy concerning electronic excited states but were nevertheless useful for our assignments. Our time-dependent DFT calculations of quinoline are excellent for its ground-state properties such as geometry, rotational constants, dipole moment, and vibrational frequencies, which agree well with experimental observations. Vibrational components of the valence and Rydberg transitions mainly involve C-H bend and C═C and C═N stretch modes. Astrophysical applications of the vacuum UV absorption of quinoline are briefly discussed.

摘要

利用同步辐射光源在3.5至10.7电子伏特的气相范围内测量了喹啉的吸收光谱。观察到大量尖锐和宽泛的光谱特征,其中一些具有等离子体类型的集体π电子模式,对其强度有贡献。确定了八个价电子跃迁,大大扩展了之前主要在溶液中观察到的π-π*跃迁的数量。发现溶液红移的主要因素是洛伦兹-洛伦茨极化率参数。首次观察到的里德堡带被分析为八个不同的系列,收敛于喹啉阳离子的D基态和两个激发电子态,即D和D。R1系列极限为喹啉的第一电离能8.628电子伏特,该值比之前发表的更精确。该值与阳离子电子跃迁数据相结合,分别为D和D态提供了精确的能量,即10.623和11.355电子伏特。价态跃迁的确定基于密度泛函理论(DFT)计算以及早期的帕里泽-帕尔-波普尔(P-P-P)自洽场原子轨道线性组合分子轨道结果。讨论了P-P-P和DFT数据的相对质量。两者在电子激发态方面都远未达到光谱精度,但对我们的跃迁确定仍然有用。我们对喹啉的含时DFT计算对于其基态性质,如几何结构、转动常数、偶极矩和振动频率,表现出色,与实验观测结果吻合良好。价态和里德堡跃迁的振动成分主要涉及C-H弯曲以及C═C和C═N伸缩模式。简要讨论了喹啉真空紫外吸收在天体物理学中的应用。

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