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Density-inversion method for the Kohn-Sham potential: Role of the screening density
Timothy J Callow1, Nektarios N Lathiotakis2, Nikitas I Gidopoulos1
1Department of Physics, Durham University, South Road, Durham DH1 3LE, United Kingdom.
We developed a new method to find the Kohn-Sham (KS) potential in Density Functional Theory (DFT) from a given electron density. This approach ensures accurate potentials and can help reduce self-interaction errors in DFT calculations.
Area of Science:
- Quantum Chemistry
- Computational Physics
- Materials Science
Background:
- Density Functional Theory (DFT) is a powerful quantum mechanical method for electronic structure calculations.
- A key component of DFT is the Kohn-Sham (KS) potential, which is typically unknown and must be approximated.
- Inverting the KS equations to find the potential from a given density is a challenging but important problem.
Purpose of the Study:
- To present a novel method for inverting electron densities to determine the corresponding Kohn-Sham (KS) potential in DFT.
- To ensure the inverted KS potential exhibits correct asymptotic behavior and is smooth.
- To demonstrate the method's utility in mitigating self-interaction errors in DFT.
Main Methods:
- The proposed method utilizes the concept of a 'screening density' which is constrained during the inversion process.
- The procedure is applied to invert both local and non-local (Hartree-Fock and coupled cluster) densities.
- Constraints on the screening density are employed to address self-interaction effects.
Main Results:
- The method successfully inverts given densities to yield accurate KS potentials.
- The resulting potentials demonstrate correct asymptotic behavior.
- The approach effectively mitigates self-interaction errors when applied to common DFT potentials.
Conclusions:
- The developed inversion method provides a reliable way to obtain KS potentials from electron densities.
- This technique enhances the accuracy of DFT calculations by providing correct potentials and reducing self-interaction errors.
- The method is versatile and applicable to various types of densities and DFT potentials.
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