English

Hydrogen atom in a magnetic field: electromagnetic transitions of the lowest states

Astrophysics 2007-11-19 v1

Abstract

A detailed study of the lowest states 1s0,2p1,2p01s_0, 2p_{-1}, 2p_0 of the hydrogen atom placed in a magnetic field B(04.414×1013G)B\in(0-4.414\times 10^{13} {\rm G}) and their electromagnetic transitions (1s02p11s_{0} \leftrightarrow 2p_{-1} and 1s02p0 1s_{0} \leftrightarrow 2p_{0}) is carried out in the Born Oppenheimer approximation. The variational method is used with a physically motivated recipe to design simple trial functions applicable to the whole domain of magnetic fields. We show that the proposed functions yield very accurate results for the ionization (binding) energies. Dipole and oscillator strengths are in good agreement with results by Ruder {\em et al.} \cite{Ruderbook} although we observe deviations up to 30\sim 30% for the oscillator strength of the (linearly polarized) electromagnetic transition 1s02p01s_{0} \leftrightarrow 2p_{0} at strong magnetic fields B1000B\gtrsim 1000 a.u.

Keywords

Cite

@article{arxiv.0711.2553,
  title  = {Hydrogen atom in a magnetic field: electromagnetic transitions of the lowest states},
  author = {J. C. López Vieyra and H. O. Pilón},
  journal= {arXiv preprint arXiv:0711.2553},
  year   = {2007}
}

Comments

RevTeX4, 18 pages, 5 Tables, 5 Figures