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首页> 外文期刊>Journal of Molecular Structure >DFT meets the segmented polarization consistent basis sets: Performances in the computation of molecular structures, rotational and vibrational spectroscopic properties
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DFT meets the segmented polarization consistent basis sets: Performances in the computation of molecular structures, rotational and vibrational spectroscopic properties

机译:DFT符合分段极化一致基集:分子结构计算,旋转和振动光谱性能的性能

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Quantum-chemical calculations assist the analysis of laboratory spectra, and often provide the only means to determine spectroscopic data that cannot be accessed experimentally. For the purpose, reliable predictions of structural and spectroscopic parameters are required. Although coupled cluster theory in conjunction with to large basis sets and composite schemes can reach impressive accuracies for structural, thermochemical and spectroscopic properties, it is still limited to small sized molecules. DFT represents the working option for medium to large molecular systems. In this context, systematic investigations are required aimed at characterizing the performances of the different DFT model chemistries. In this work, the accuracy of the popular hybrid B3LYP and the double hybrid B2PLYP functionals coupled to the segmented polarization consistent (aug-)pcs-n basis sets in the prediction of molecular structures and rotational- and vibrational spectroscopic parameters are investigated using a benchmark set of molecules of both atmospheric and astrochemical relevance. For comparison purposes, different flavors of Dunning's triple-zeta basis sets and the SNSD basis set, are also employed. The convergence behavior of the pcs-n hierarchy with n = 1-4 is also addressed to some extent. The results indicate the B3LYP-D3 functional in conjunction with the aug-pcs-1 or SNSD basis sets as a cost-effective model chemistry for applications in the field of rotational and vibrational spectroscopies. Improved accuracy is obtained by coupling the B2PLYP-D3 functional with the aug-pcs-2 or aug-cc-pVTZ triple-zeta basis sets that show an accuracy around 0.003 angstrom and 0.3 degrees for bond lengths and angles, 1% and 3% for rotational and quartic centrifugal distortion constants, respectively, 12 cm(-1) for fundamental frequencies and 3 km mol(-1) for IR intensities. The B2PLYP-D3/maug-cc-pVTZ-dH level keeps the same accuracy, with slightly larger deviations for intensities. (C) 2020 Published by Elsevier B.V.
机译:量子化学计算有助于分析实验室光谱,并且通常提供确定无法通过实验访问的光谱数据的唯一方法。为了目的,需要可靠的结构和光谱参数的预测。尽管耦合簇理论与大的基础组和复合方案结合可以达到结构,热化学和光谱性能的令人印象深刻的准确性,但它仍然限于小尺寸分子。 DFT表示媒体到大分子系统的工作选择。在这种情况下,需要系统调查,旨在表征不同DFT模型化学物质的性能。在这项工作中,使用基准研究了流行的混合B3LYP和耦合到分段偏振的分段偏振(AUG-)PCS-N基础集的双杂交B2PLYP功能的准确性,并使用基准进行研究,并进行旋转和振动光谱参数。套两种大气和星式化学相关性的分子。为了比较目的,还采用了不同的催天的三季度基础组的口味和SNSD基础集。在某种程度上也解决了PCS-N层次结构的PCS-N层次结构的收敛行为。结果表明,B3LYP-D3与AUG-PCS-1或SNSD基础组合作用,作为旋转和振动光谱领域的应用的经济高效的模型化学。通过将B2PLYP-D3功能耦合到AUG-PCS-2或AUG-CC-PVTZ Triple-Zeta基础集的提高,精确地获得,该组精度为0.003埃·埃斯特朗姆和0.3度,用于粘合长度和角度,1%和3%对于旋转和四静脉的离心常数,分别为12cm(-1),对于IR强度为3km mol(-1)。 B2PLYP-D3 / MAUG-CC-PVTZ-DH水平保持相同的精度,强度偏差略大。 (c)2020由elsevier b.v发布。

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