Transformation of bound states of relativistic hydrogen-l ike atom into two-component form
Abstract
A single-step Eriksen transformation of~,~ and~ states of the relativistic hydrogen-like atom is performed exactly by expressing each transformed function (TF) as a linear combination of eigenstates of the Dirac Hamiltonian. The transformed functions, which are four-component spinors with vanishing two lower components, are calculated numerically and have the same symmetries as the initial states. For all nuclear charges~ a contribution of the initial state to TFs exceeds 86\% of the total probability density. Next large contribution to TFs comes from continuum states with negative energies close to~, where~ is the binding energy of initial state. Contribution of other states to TFs is less than~ of the total probability density. Other components of TFs are nearly zero which confirms both validity of the Eriksen transformation and accuracy of the numerical calculations. The TFs of~ and~ states are close to~ and~ states of the nonrelativistic hydrogen-like atom, respectively, but the TF of~ state differs qualitatively from the~ state. Functions calculated with use of a linearized Eriksen transformation, being equivalent to the second order Foldy-Wouthuysen transformation, are compared with corresponding functions obtained by Eriksen transformation. A very good agreement between both results is obtained.
Keywords
Cite
@article{arxiv.1604.02478,
title = {Transformation of bound states of relativistic hydrogen-l ike atom into two-component form},
author = {Tomasz M. Rusin},
journal= {arXiv preprint arXiv:1604.02478},
year = {2016}
}
Comments
13 pages, 6 figures