Stanke Monika, Kedziera Dariusz, Bubin Sergiy, Molski Marcin, Adamowicz Ludwik
Department of Chemistry, University of Arizona, Tucson, AZ 85721, USA.
J Chem Phys. 2008 Mar 21;128(11):114313. doi: 10.1063/1.2834926.
We report the derivation of the orbit-orbit relativistic correction for calculating pure vibrational states of diatomic molecular systems with sigma electrons within the framework that does not assume the Born-Oppenheimer (BO) approximation. The correction is calculated as the expectation value of the orbit-orbit interaction operator with the non-BO wave function expressed in terms of explicitly correlated Gaussian functions multiplied by even powers of the internuclear distance. With that we can now calculate the complete relativistic correction of the order of alpha(2) (where alpha=1/c). The new algorithm is applied to determine the full set of the rotationless vibrational levels and the corresponding transition frequencies of the H(2) molecule. The results are compared with the previous calculations, as well as with the frequencies obtained from the experimental spectra. The comparison shows the need to include corrections higher than second order in alpha to further improve the agreement between the theory and the experiment.
我们报告了在不假设玻恩-奥本海默(BO)近似的框架内,用于计算具有σ电子的双原子分子系统纯振动态的轨道-轨道相对论修正的推导。该修正被计算为轨道-轨道相互作用算符与非BO波函数的期望值,该非BO波函数以明确相关高斯函数乘以核间距的偶次幂来表示。由此我们现在可以计算α²量级的完整相对论修正(其中α = 1/c)。新算法被应用于确定H₂分子的无转动振动态的完整集合以及相应的跃迁频率。将结果与先前的计算以及从实验光谱获得的频率进行了比较。比较表明需要纳入高于α二阶的修正以进一步改善理论与实验之间的一致性。