Faculty of Chemistry, Maria Curie-Skłodowska University, pl. M. Curie-Skłodowskiej 3, 20-031 Lublin, Poland.
Spectrochim Acta A Mol Biomol Spectrosc. 2010 May;75(5):1470-5. doi: 10.1016/j.saa.2010.01.018. Epub 2010 Feb 6.
Scaling of harmonic frequencies of a molecule is one of the methods of improving the agreement between the calculated from a quadratic force field and experimental vibrational spectrum. An application of the recently proposed effective scaling frequency factor (ESFF) method to the complicated 1,2,4-triazole derivatives is presented. The calculations are based on the DFT/B3LYP/6-311G** quadratic force fields. It is shown that the ESFF method is capable of providing the high-quality spectra with regard to the scaled frequencies, comparable to these obtained with the well-established scaled quantum mechanical (SQM) force field method. Using the recommended scaling factors for the 11-parameter calculations, the RMS value obtained for a set of 293 vibrational modes of four compounds is only 8.7 and 8.5cm(-1), for SQM and ESFF, respectively, provided the hydrogen bonded C=O bond was excluded from the general non-hydrogen XX stretch group, and the scaling factor attributed to this bond was optimized. The new, 9-parameter set of scaling factors provides SQM- and ESFF-scaled frequencies that are of comparable quality to those of the 11-parameter calculations. In addition, it provides (on average) more reliable band splittings in the middle region of the spectrum, and the order of the scaled frequencies corresponds to that of the experimental bands. The straightforward application of the ESFF method to estimate the value of the scaled frequency is also presented.
分子谐波频率的缩放是提高从二次力场计算出的结果与实验振动光谱之间一致性的方法之一。本文介绍了最近提出的有效缩放频率因子(ESFF)方法在复杂的 1,2,4-三唑衍生物中的应用。计算基于 DFT/B3LYP/6-311G**二次力场。结果表明,ESFF 方法能够提供高质量的光谱,与经过验证的缩放量子力学(SQM)力场方法相当。使用 11 个参数计算的推荐缩放因子,对于四个化合物的 293 个振动模式集,RMS 值仅为 8.7 和 8.5cm(-1),对于 SQM 和 ESFF,分别提供了排除氢键 C=O 键的一般非氢键 XX 伸缩组的缩放因子,并对该键的缩放因子进行了优化。新的 9 个参数集的缩放因子提供了与 11 个参数计算相当的 SQM 和 ESFF 缩放频率。此外,它在光谱的中间区域提供了(平均而言)更可靠的频带分裂,并且缩放频率的顺序与实验带的顺序相对应。还介绍了直接应用 ESFF 方法估计缩放频率值的方法。