Department of Chemistry, University of Washington, Seattle, Washington 98195, USA.
Algorithmiq Ltd., Kanavakatu 3C, FI-00160 Helsinki, Finland.
J Chem Phys. 2023 Jan 28;158(4):044101. doi: 10.1063/5.0133741.
The fully correlated frequency-independent Dirac-Coulomb-Breit Hamiltonian provides the most accurate description of electron-electron interaction before going to a genuine relativistic quantum electrodynamics theory of many-electron systems. In this work, we introduce a correlated Dirac-Coulomb-Breit multiconfigurational self-consistent-field method within the frameworks of complete active space and density matrix renormalization group. In this approach, the Dirac-Coulomb-Breit Hamiltonian is included variationally in both the mean-field and correlated electron treatment. We also analyze the importance of the Breit operator in electron correlation and the rotation between the positive- and negative-orbital space in the no-virtual-pair approximation. Atomic fine-structure splittings and lanthanide contraction in diatomic fluorides are used as benchmark studies to understand the contribution from the Breit correlation.
全相关频无关狄拉克-库仑-布赖特哈密顿量在进入多电子系统的真正相对论量子电动力学理论之前,为电子-电子相互作用提供了最准确的描述。在这项工作中,我们在完全活性空间和密度矩阵重整化群的框架内引入了相关狄拉克-库仑-布赖特多组态自洽场方法。在这种方法中,狄拉克-库仑-布赖特哈密顿量在平均场和相关电子处理中都进行了变分。我们还分析了 Breit 算符在电子相关中的重要性,以及在无虚拟对近似下正负轨道空间之间的旋转。我们使用原子精细结构分裂和二氟化镧系收缩作为基准研究来理解 Breit 相关的贡献。