Systematic study of one-point kinetic energy density functionals for atomic nuclei
Abstract
To explore the applicability of orbital-free density functional theory (OF-DFT) in nuclear physics, we perform a systematic benchmark of 36 one-point kinetic energy density functionals, which are originally developed for electron systems in condensed matter physics. It is found that the direct use of the original parameters for electron systems leads to inconsistent performance, with certain functionals exhibiting physically unacceptable asymptotic behaviors. However, through parameter re-optimization targeting nuclear densities, different mathematical forms of generalized gradient approximation (GGA) functionals converge to a consistent root-mean-square error of approximately 13 MeV. From a physical perspective, this consistent behavior signifies that the optimized semi-local GGAs have successfully captured the macroscopic, liquid-drop-like background of the nucleus, while the residual deviations appear as periodic oscillations at the magic numbers that could reflect the quantum shell effects.
Keywords
Cite
@article{arxiv.2605.18142,
title = {Systematic study of one-point kinetic energy density functionals for atomic nuclei},
author = {Tian Shuai Shang and Jian Li and Haozhao Liang and Xinhui Wu and Cheng Ma and Wenhui Mi and Xuecheng Shao and Yanchao Wang},
journal= {arXiv preprint arXiv:2605.18142},
year = {2026}
}
Comments
13 pages, 5 figures