Hanson-Heine Magnus W D
School of Chemistry, University of Nottingham, University Park, Nottingham NG7 2RD, United Kingdom.
J Chem Phys. 2015 Oct 28;143(16):164104. doi: 10.1063/1.4934234.
Carefully choosing a set of optimized coordinates for performing vibrational frequency calculations can significantly reduce the anharmonic correlation energy from the self-consistent field treatment of molecular vibrations. However, moving away from normal coordinates also introduces an additional source of correlation energy arising from mode-coupling at the harmonic level. The impact of this new component of the vibrational energy is examined for a range of molecules, and a method is proposed for correcting the resulting self-consistent field frequencies by adding the full coupling energy from connected pairs of harmonic and pseudoharmonic modes, termed vibrational self-consistent field (harmonic correlation). This approach is found to lift the vibrational degeneracies arising from coordinate optimization and provides better agreement with experimental and benchmark frequencies than uncorrected vibrational self-consistent field theory without relying on traditional correlated methods.
精心选择一组用于进行振动频率计算的优化坐标,可以显著降低分子振动自洽场处理中的非谐相关能。然而,偏离正规坐标也会引入谐波水平下模式耦合产生的额外相关能来源。针对一系列分子研究了这种振动能量新成分的影响,并提出了一种方法,通过添加谐波和准谐波模式连接对的全耦合能来校正所得的自洽场频率,称为振动自洽场(谐波相关)。结果发现,这种方法消除了坐标优化引起的振动简并,并且与未经校正的振动自洽场理论相比,在不依赖传统相关方法的情况下,与实验和基准频率具有更好的一致性。