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GeH分子的全维势能和偶极矩面以及红外波段精确的第一性原理转动分辨强度预测

Full-Dimensional Potential Energy and Dipole Moment Surfaces of GeH Molecule and Accurate First-Principle Rotationally Resolved Intensity Predictions in the Infrared.

作者信息

Nikitin A V, Rey M, Rodina A, Krishna B M, Tyuterev Vl G

机构信息

Laboratory of Theoretical Spectroscopy, V. E. Zuev Institute of Atmospheric Optics , SB RAS, 1, Academician Zuev Square, 634021 Tomsk, Russia.

Groupe de Spectrométrie Moléculaire et Atmosphérique, UMR CNRS 7331, Université de Reims, U.F.R. Sciences , B.P. 1039, 51687 Reims Cedex 2, France.

出版信息

J Phys Chem A. 2016 Nov 17;120(45):8983-8997. doi: 10.1021/acs.jpca.6b07732. Epub 2016 Nov 3.

Abstract

Nine-dimensional potential energy surface (PES) and dipole moment surface (DMS) of the germane molecule are constructed using extended ab initio CCSD(T) calculations at 19 882 points. PES analytical representation is determined as an expansion in nonlinear symmetry adapted products of orthogonal and internal coordinates involving 340 parameters up to eighth order. Minor empirical refinement of the equilibrium geometry and of four quadratic parameters of the PES computed at the CCSD(T)/aug-cc-pVQZ-DK level of the theory yielded the accuracy below 1 cm for all experimentally known vibrational band centers of five stable isotopologues of GeH, GeH, GeH, GeH, and GeH up to 8300 cm. The optimized equilibrium bond r = 1.517 594 Å is very close to best ab initio values. Rotational energies up to J = 15 are calculated using potential expansion in normal coordinate tensors with maximum errors of 0.004 and 0.0006 cm for GeH and GeH. The DMS analytical representation is determined through an expansion in symmetry-adapted products of internal nonlinear coordinates involving 967 parameters up to the sixth order. Vibration-rotation line intensities of five stable germane isotopologues were calculated from purely ab initio DMS using nuclear motion variational calculations with a full account of the tetrahedral symmetry of the molecules. For the first time a good overall agreement of main absorption features with experimental rotationally resolved Pacific Northwest National Laboratory spectra was achieved in the entire range of 700-5300 cm. It was found that very accurate description of state-dependent isotopic shifts is mandatory to correctly describe complex patterns of observed spectra at natural isotopic abundance resulting from the superposition of five stable isotopologues. The data obtained in this work will be made available through the TheoReTS information system.

摘要

使用扩展的从头算耦合簇单双激发(CCSD(T))方法在19882个点上构建了锗烷分子的九维势能面(PES)和偶极矩面(DMS)。PES的解析表示被确定为正交坐标和内坐标的非线性对称适配乘积的展开式,包含高达八阶的340个参数。在CCSD(T)/aug-cc-pVQZ-DK理论水平下计算得到的平衡几何结构和PES的四个二次参数进行了少量经验性修正,使得锗烷(GeH)、锗烷(GeH)、锗烷(GeH)、锗烷(GeH)和锗烷(GeH)的五种稳定同位素变体在高达8300 cm的所有实验已知振动带中心的精度低于1 cm。优化后的平衡键长r = 1.517594 Å非常接近最佳的从头算值。使用法向坐标张量中的势能展开式计算了高达J = 15的转动能,锗烷(GeH)和锗烷(GeH)的最大误差分别为0.004和0.0006 cm。DMS的解析表示通过内非线性坐标的对称适配乘积展开式确定,包含高达六阶的967个参数。通过完全考虑分子的四面体对称性的核运动变分计算,从纯从头算DMS计算了五种稳定锗烷同位素变体的振动-转动线强度。首次在700 - 5300 cm的整个范围内,主要吸收特征与实验旋转分辨的太平洋西北国家实验室光谱取得了良好的总体一致性。研究发现,要正确描述在自然同位素丰度下由五种稳定同位素变体叠加产生的复杂观测光谱模式,必须对与状态相关的同位素位移进行非常精确的描述。这项工作中获得的数据将通过TheoReTS信息系统提供。

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