The He${}_2^+$ molecular ion and the He${}^-$ atomic ion in strong magnetic fields
Abstract
We study the question about existence i.e. stability with respect to dissociation of the spin-quartet, permutation- and reflection-symmetric () state of the Coulomb system: the molecular ion, placed in a magnetic field a.u. We assume that the -particles are infinitely massive (Born-Oppenheimer approximation of zero order) and adopt the parallel configuration, when the molecular axis and the magnetic field direction coincide, as the optimal configuration. The study of the stability is performed variationally with a physically adequate trial function. To achieve this goal, we explore several Helium-contained compounds in strong magnetic fields, in particular, we study the spin-quartet ground state of ion, and the ground (spin-triplet) state of the Helium atom, both for a magnetic field in a.u. The main result is that the molecular ion in the state is stable towards all possible decay modes for magnetic fields a.u. and with the magnetic field increase the ion becomes more tightly bound and compact with a cigar-type form of electronic cloud. At a.u., the dissociation energy of into is eV and the dissociation energy for the decay channel to is eV, latter both energies are in the energy window for one of the observed absorption features of the isolated neutron star 1E1207.4-5209.
Keywords
Cite
@article{arxiv.1704.01118,
title = {The He${}_2^+$ molecular ion and the He${}^-$ atomic ion in strong magnetic fields},
author = {J. C. Lopez Vieyra and A. V. Turbiner},
journal= {arXiv preprint arXiv:1704.01118},
year = {2017}
}
Comments
LaTeX revtex4 BibTeX, 34 pages, 7 Tables and 5 Postscript Figures. Typos corrected. Several clarifying sentences were added. List of References was updated. 3 references were removed, 9 new references were added. Some sections were renamed and Section III was added