SOiCI and iCISO: Combining iterative configuration interaction with spin-orbit coupling in two ways
Ning Zhang, Yunlong Xiao, Wenjian Liu

TL;DR
This paper extends the near-exact iCIPT2 approach to include relativistic effects, specifically spin-orbit coupling, using two methods: SOiCI for equal treatment and iCISO for state interaction, improving accuracy and efficiency in heavy atom systems.
Contribution
It introduces two novel methods, SOiCI and iCISO, combining iterative configuration interaction with spin-orbit coupling in a relativistic framework.
Findings
SOiCI accurately predicts spin-orbit splitting in heavy atoms.
iCISO is computationally efficient for systems with quenched SOC.
Both methods incorporate symmetry to simplify calculations.
Abstract
The near-exact iCIPT2 approach for strongly correlated systems of electrons, which stems from the combination of iterative configuration interaction (iCI, an exact solver of full CI) with configuration selection for static correlation and second-order perturbation theory (PT2) for dynamic correlation, is extended to the relativistic domain. In the spirit of spin separation, relativistic effects are treated in two steps: scalar relativity is treated by the infinite-order, spin-free part of the exact two-component (X2C) relativistic Hamiltonian, whereas spin-orbit coupling (SOC) is treated by the first-order, Douglas-Kroll-Hess-like SOC operator derived from the same X2C Hamiltonian. Two possible combinations of iCIPT2 with SOC are considered, i.e., SOiCI and iCISO. The former treats SOC and electron correlation on an equal footing, whereas the latter treats SOC in the spirit of state…
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