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Efficient Treatment of Relativistic Effects with Periodic Density Functional Methods: Energies, Gradients, and Stress Tensors

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arxiv 2305.03817 v5 pith:W5FZV6EX submitted 2023-05-05 physics.chem-ph cond-mat.mes-hallcond-mat.mtrl-sciphysics.comp-ph

Efficient Treatment of Relativistic Effects with Periodic Density Functional Methods: Energies, Gradients, and Stress Tensors

classification physics.chem-ph cond-mat.mes-hallcond-mat.mtrl-sciphysics.comp-ph
keywords densityeffectsenergiesfunctionalspin-orbitsystemsapproximationsefficient
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The implementation of an efficient self-consistent field (SCF) method including both scalar relativistic effects and spin-orbit interaction in density functional theory (DFT) is presented. We make use of Gaussian-type orbitals (GTOs) and all integrals are evaluated in real space. Our implementation supports density functional approximations up to the level of meta-generalized gradient approximations (mGGAs) for SCF energies and gradients. The latter can be used to compute the stress tensor and consequently allow us to optimize the cell structure. Considering spin-orbit interaction requires the extension of the standard procedures to a two-component (2c) formalism and a non-collinear approach for open-shell systems. Here, we implemented both the canonical and the Scalmani-Frisch non-collinear DFT formalisms, with hybrid and range-separated hybrid functionals being presently restricted to SCF energies. We demonstrate both efficiency and relevance of spin-orbit effects for the electronic structure of discrete systems and systems periodic in one to three dimensions.

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