Nikitin A V, Campargue A, Protasevich A E, Rey M, Sung K, Tyuterev Vl G
Laboratory of Theoretical Spectroscopy, V.E. Zuev Institute of Atmospheric Optics, SB RAS, 1, Academician Zuev square, 634021 Tomsk, Russia.
Univ. Grenoble Alpes, CNRS, LIPhy, 38000 Grenoble, France.
Spectrochim Acta A Mol Biomol Spectrosc. 2023 Dec 5;302:122896. doi: 10.1016/j.saa.2023.122896. Epub 2023 May 25.
Due to its major interest for the chemistry of planetary atmospheres and exobiology, accurate spectroscopy data of phosphine are required for the search of signatures of this molecule in astronomical observations. In this work, high resolution infrared laboratory spectra of phosphine were analyzed for the first time in the full Tetradecad region (3769-4763 cm) involving 26 rotationally resolved bands. Overall, 3242 lines were assigned in spectra previously recorded by Fourier transform spectroscopy at temperatures 200 K and 296 K, using a combined theoretical model based on ab initio calculations. The total nuclear motion Hamiltonian of PH including ab initio potential energy surface, was reduced to an effective Hamiltonian using the high-order contact transformation method adapted to vibrational polyads of the AB symmetric top molecules, followed by empirical optimization of the parameters. At this step, the experimental line positions were reproduced with a standard deviation of 0.0026 cm that provided unambiguous identification of observed transitions. The effective dipole transition moments of the bands were obtained by fitting to the intensities obtained from variational calculations using the ab initio dipole moment surface. The assigned lines were used to newly determine 1609 experimental vibration-rotational levels up to J = 18 with energy in the range 3896-6037 cm that represents significant extension towards higher energies compared to previous works. Transitions for all 26 sublevels of the Tetradecad were identified but with noticeably fewer transitions for fourfold excited bands because of their weaker intensity. At the final step, pressure-broadened half widths were attached to each transition and a composite line list adopting ab initio intensities and empirical line positions corrected to the accuracy of about 0.001 cm for strong and medium transitions was validated against experimental spectra available in the literature.
由于磷化氢对行星大气化学和外星生物学具有重要意义,因此在天文观测中寻找该分子的特征需要准确的光谱数据。在这项工作中,首次对磷化氢在整个十四重态区域(3769 - 4763厘米)的高分辨率红外实验室光谱进行了分析,该区域涉及26条转动分辨谱带。总体而言,使用基于从头算计算的组合理论模型,在先前通过傅里叶变换光谱法在200K和296K温度下记录的光谱中,共指定了3242条谱线。包括从头算势能面的PH总核运动哈密顿量,通过适用于AB对称陀螺分子振动多重组的高阶接触变换方法简化为有效哈密顿量,随后对参数进行了经验优化。在此步骤中,实验谱线位置的再现标准偏差为0.0026厘米,这为观测到的跃迁提供了明确的识别。通过拟合使用从头算偶极矩面的变分计算得到的强度,获得了谱带的有效偶极跃迁矩。所指定的谱线用于重新确定高达J = 18的1609个实验振动 - 转动能级,能量范围为3896 - 6037厘米,与先前的工作相比,这代表了向更高能量的显著扩展。确定了十四重态所有26个子能级的跃迁,但由于四重激发谱带强度较弱,其跃迁明显较少。在最后一步,为每个跃迁附加了压力展宽半高宽,并根据文献中可用的实验光谱验证了一个采用从头算强度和经验谱线位置的复合谱线表,该表对强跃迁和中等跃迁的校正精度约为0.001厘米。