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Density inversion method for local basis sets without potential auxiliary functions: inverting densities from RDMFT.
Sofia Bousiadi1,2, Nikitas I Gidopoulos3, Nektarios N Lathiotakis1
1Theoretical and Physical Chemistry Institute, National Hellenic Research Foundation, Vass. Constantinou 48, GR-11635 Athens, Greece. sofiabous@eie.gr.
A novel density inversion method accurately determines optimal local potentials from ground-state electronic densities. This approach enables precise correlation potentials and viable single-particle descriptions in quantum chemistry calculations.
Area of Science:
- Quantum Chemistry
- Computational Physics
- Electronic Structure Theory
Background:
- Accurate local potentials are crucial for electronic structure calculations.
- Existing methods face challenges in reproducing exact ground-state densities and asymptotic behaviors.
- Density Functional Theory (DFT) and Reduced Density Matrix Functional Theory (RDMFT) rely on approximations for these potentials.
Purpose of the Study:
- To develop and present a refined density inversion method for obtaining constrained, optimal local potentials.
- To improve the accuracy of single-particle descriptions in quantum mechanical systems.
- To demonstrate the method's capability in deriving accurate correlation potentials.
Main Methods:
- A density inversion technique is employed to derive local potentials.
- The screening density is expanded using orbital basis element products.
- The method is applied to electronic densities from various quantum chemical calculations (DFT, Hartree-Fock, CAS-SCF, RDMFT).
Main Results:
- The method successfully reproduces prescribed asymptotic behaviors and optimizes local potentials.
- Accurate correlation potentials are obtained by inverting accurate electronic densities.
- For RDMFT, density inversion provides a viable single-particle description, validated by comparing calculated ionization potentials to experimental data for atomic and molecular systems.
Conclusions:
- The presented density inversion method offers a robust approach for determining accurate local potentials.
- It enhances the reliability of single-particle descriptions in quantum chemistry.
- The method shows promise for deriving accurate correlation potentials from high-quality electronic densities.
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