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Main Author: Takahashi, Hideaki
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2502.20829
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author Takahashi, Hideaki
author_facet Takahashi, Hideaki
contents The development of kinetic energy functional (KEF) is known as one of the most difficult subjects in the electronic density functional theory (DFT). In particular, the sound description of chemical bonds using a KEF is a matter of great significance in the field of theoretical physics and chemistry. It can be readily confirmed that the famous Thomas-Fermi (TF) model or the TF model corrected with a generalized gradient approximation (GGA) fails to realize the bound state of a covalent bond in general. In this work, a new kinetic energy functional is developed on the basis of the novel density functional theory (J. Phys. B: At. Mol. Opt. Phys. 51, 055102, 2018) that utilizes the electron distribution on the energy coordinate as the fundamental variable. It is demonstrated for an H$_2$ molecule that the bound state can be realized by the KEF by virtue of the property of the electron density on the energy coordinate. The mechanism underlying the formation of the bound state is the same as that for the realization of the static correlation in the exchange energy described with the new DFT. We also developed a method termed potential gradient method to make a correction to the TF model instead of the GGA approach.
format Preprint
id arxiv_https___arxiv_org_abs_2502_20829
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Kinetic energy density functional based on electron distribution on the energy coordinate to describe covalent bond
Takahashi, Hideaki
Chemical Physics
Computational Physics
The development of kinetic energy functional (KEF) is known as one of the most difficult subjects in the electronic density functional theory (DFT). In particular, the sound description of chemical bonds using a KEF is a matter of great significance in the field of theoretical physics and chemistry. It can be readily confirmed that the famous Thomas-Fermi (TF) model or the TF model corrected with a generalized gradient approximation (GGA) fails to realize the bound state of a covalent bond in general. In this work, a new kinetic energy functional is developed on the basis of the novel density functional theory (J. Phys. B: At. Mol. Opt. Phys. 51, 055102, 2018) that utilizes the electron distribution on the energy coordinate as the fundamental variable. It is demonstrated for an H$_2$ molecule that the bound state can be realized by the KEF by virtue of the property of the electron density on the energy coordinate. The mechanism underlying the formation of the bound state is the same as that for the realization of the static correlation in the exchange energy described with the new DFT. We also developed a method termed potential gradient method to make a correction to the TF model instead of the GGA approach.
title Kinetic energy density functional based on electron distribution on the energy coordinate to describe covalent bond
topic Chemical Physics
Computational Physics
url https://arxiv.org/abs/2502.20829