Institut für Physikalische Chemie, Universität Mainz, D-55099 Mainz, Germany.
J Chem Phys. 2011 Feb 14;134(6):064114. doi: 10.1063/1.3522766.
In this work, the quantum-chemical treatment of relativistic effects by means of direct perturbation theory is extended from its lowest order, DPT2, to the next higher order, DPT4. The required theory is given in terms of energy derivatives with the DPT4 energy correction defined as the corresponding second derivative with respect to the relativistic perturbation parameter λ(rel) = c(2) and c as the speed of light. To facilitate the implementation in standard quantum-chemical program packages, a general formulation of DPT starting from a nonrelativistic Lagrangian is developed, thereby expanding both wave function and operators in terms of λ(rel). The corresponding expressions, which incorporate in an additive manner scalar-relativistic and spin-orbit contributions, are given at the Hartree-Fock level and have been implemented in the CFOUR program package using the available analytic second-derivative techniques. The accuracy of the DPT4 corrections at the HF level is investigated by comparison with rigorous four-component calculations. Scalar-relativistic and spin-orbit contributions are analyzed individually and the importance of the various terms to those corrections is discussed. Furthermore, the basis-set dependence of the computed DPT4 corrections is investigated.
在这项工作中,通过直接微扰理论将相对论效应的量子化学处理从其最低阶 DPT2 扩展到更高阶 DPT4。所需的理论是以能量导数的形式给出的,其中 DPT4 能量校正被定义为相对于相对论微扰参数 λ(rel) = c(2) 和 c(光速)的相应二阶导数。为了便于在标准量子化学程序包中实现,从非相对论拉格朗日量出发开发了 DPT 的一般公式,从而以 λ(rel) 展开波函数和算符。相应的表达式以哈特ree-Fock 水平给出,并在 CFOUR 程序包中使用可用的分析二阶导数技术实现,这些表达式以附加方式包含标量相对论和自旋轨道贡献。通过与严格的四分量计算进行比较,研究了 HF 水平上 DPT4 校正的准确性。单独分析了标量相对论和自旋轨道贡献,并讨论了各术语对这些校正的重要性。此外,还研究了计算的 DPT4 校正的基组依赖性。