English

Shannon entropy in confined He-like ions within a density functional formalism

Quantum Physics 2021-03-01 v1

Abstract

Shannon entropy in position (S\rvecS_{\rvec}) and momentum (S\pvecS_{\pvec}) spaces, along with their sum (StS_t) are presented for unit-normalized densities of He, Li+^+ and Be2+^{2+} ions, spatially confined at the center of an impenetrable spherical enclosure defined by a radius rcr_c. Both ground as well as some selected low-lying singly excited states, \emph{viz.,} 1sns (n == 2-4) 3^3S, 1snp (n == 2-3) 3^3P, 1s3d 3^3D are considered within a density functional methodology that makes use of a work-function-based exchange potential along with two correlation potentials (local Wigner-type parametrized functional as well as the more involved non-linear gradient- and Laplacian-dependent Lee-Yang-Parr functional). The radial Kohn-Sham (KS) equation is solved using an optimal spatial discretization scheme via the generalized pseudospectral (GPS) method. A detailed systematic analysis of the confined system (relative to corresponding free system) has been performed for these quantities with respect to rcr_c in tabular and graphical forms, \emph{with and without} electron correlation. Due to compression, the pattern of entropy in aforementioned states gets characterized by various crossovers at intermediate and lower rcr_c regions. The impact of electron correlation is more pronounced in weaker confinement limit, and appears to decay with rise in confinement strength. The exchange-only results are quite good to provide a decent qualitative discussion. The lower-bounds provided by entropic uncertainty relation holds good in all cases. Several other new interesting features are observed.

Keywords

Cite

@article{arxiv.2102.13571,
  title  = {Shannon entropy in confined He-like ions within a density functional formalism},
  author = {Sangita Majumdar and Amlan K. Roy},
  journal= {arXiv preprint arXiv:2102.13571},
  year   = {2021}
}