Department of Physics, St. Petersburg State University, St. Petersburg 199034, Russian Federation.
J Chem Phys. 2018 Sep 14;149(10):104306. doi: 10.1063/1.5042059.
Vibrational spectroscopic and average geometrical parameters of the strong H-bonded complexes [F(HF)] and [F(DF)] are determined for the first time from nine-dimensional (9D) perturbative and 6D variational calculations. The frequencies and intensities for all fundamental and some combination and overtone transitions obtained by the method of second-order vibrational perturbation theory (VPT2) are reported. A two-fold decrease in the H-F (D-F) stretching band frequency and a more than ten-fold increase in the intensity of this band upon complexation are predicted. The theoretical frequencies for both isolated isotopologues are in satisfactory agreement (to better than 70 cm) with the scarce experimental data obtained in condensed phases. The main purpose of variational calculations is to analyze the intermode anharmonic coupling and the changes in the geometrical parameters upon vibrational excitation and H/D isotopic substitution. The equilibrium nuclear configuration and the 2D potential energy surface (PES) of [F(HF)] for H-F stretches are calculated in the MP2/6-311++G(3df,3pd), CCSD(T)/6-311++G(3df,3pd), CCSD(T)/aug-cc-pVTZ, and CCSD(T)/d-aug-cc-pVTZ approximations with the basis set superposition error taken into account. Anharmonic vibrational problems are solved by the variational method for 2D, 4D, and 6D systems of H-bond and H-F (D-F) stretches and in-plane bends. The VPT2 calculations and calculations of the PESs for 4D and 6D systems are performed in the MP2/6-311++G(3df,3pd) approximation. Comparison of variational anharmonic solutions for different vibrational subsystems demonstrates the influence of intermode anharmonic coupling on the mixing of wave functions and spectroscopic and geometrical characteristics. The inverse Ubbelohde effect is predicted and substantiated.
首次通过九维(9D)微扰和 6D 变分计算确定了强氢键复合物 [F(HF)] 和 [F(DF)] 的振动光谱和平均几何参数。报道了通过二级振动微扰理论(VPT2)方法获得的所有基本和一些组合和泛频跃迁的频率和强度。预测复合物形成时 H-F(D-F)伸缩带频率降低两倍,强度增加十倍以上。两种同位素的理论频率与凝聚相获得的稀有实验数据吻合良好(优于 70 cm)。变分计算的主要目的是分析相互模式非谐耦合以及振动激发和 H/D 同位素取代时几何参数的变化。HF 伸缩的 [F(HF)] 的平衡核构型和二维势能面(PES)在 MP2/6-311++G(3df,3pd)、CCSD(T)/6-311++G(3df,3pd)、CCSD(T)/aug-cc-pVTZ 和 CCSD(T)/d-aug-cc-pVTZ 近似中计算,考虑了基组叠加误差。通过变分法求解二维、四维和六维氢键和 H-F(D-F)伸缩和面内弯曲系统的非谐振动问题。VPT2 计算和 4D 和 6D 系统 PES 的计算在 MP2/6-311++G(3df,3pd) 近似中进行。不同振动子系统的变分非谐解的比较表明了互模式非谐耦合对波函数混合以及光谱和几何特征的影响。预测并证实了逆 Ubbelohde 效应。