Critical nuclear charge and shape resonances for the two-electron systems
Abstract
The hydrogen negative ion H is the simplest two-electron system that exists in nature. This system is not only important in astrophysics but it also serves as an ideal ground to study electron-electron correlations. The peculiar balance of the correlations between the two electrons with the interaction of electron-nucleus in H makes this system to have only two bound states, one being the ground state and the other the doubly-excited metastable state embedded below the hydrogen threshold. Here we report a calculation for the state of H that yields the energy eigenvalue , in atomic units. Our result substantially improves the best available result by 16 orders of magnitude. We further study the critical nuclear charge , the minimum value of nuclear charge that is required to bind a nucleus and two electrons. Our determination of for the state of two-electron systems is , corresponding to , which improves the best published value of by about 10 orders of magnitude. We further investigate in a definitive way the unexplored regime of using the method of complex scaling and establish precise shape resonance poles for the state of in the complex energy plane.
Cite
@article{arxiv.1506.06487,
title = {Critical nuclear charge and shape resonances for the two-electron systems},
author = {Zong-Chao Yan and Yew Kam Ho},
journal= {arXiv preprint arXiv:1506.06487},
year = {2015}
}