English

A method for accurate electron-atom resonances: The complex-scaled multiconfigurational spin-tensor electron propagator method for the $^2P\, \mbox{Be}^{-}$ shape resonance problem

Atomic Physics 2015-06-23 v2 Chemical Physics

Abstract

We propose and develop the complex scaled multiconfigurational spin-tensor electron propagator (CMCSTEP) technique for theoretical determination of resonance parameters with electron-atom/molecule systems including open-shell and highly correlated atoms and molecules. The multiconfigurational spin-tensor electron propagator method (MCSTEP) developed and implemented by Yeager his coworkers in real space gives very accurate and reliable ionization potentials and attachment energies. The CMCSTEP method uses a complex scaled multiconfigurational self-consistent field (CMCSCF) state as an initial state along with a dilated Hamiltonian where all of the electronic coordinates are scaled by a complex factor. CMCSCF was developed and applied successfully to resonance problems earlier. We apply the CMCSTEP method to get 2P\mboxBe^2 P\,\mbox{Be}^{-} shape resonance parameters using 14s11p5d14s11p5d, 14s14p2d14s14p2d, and 14s14p5d14s14p5d basis sets with a 2s2p3d2s2p3d\,CAS. The obtained value of the resonance parameters are compared to previous results. This is the first time CMCSTEP has been developed and used for a resonance problem. It will be among the most accurate and reliable techniques. Vertical ionization potentials and attachment energies in real space are typically within ±0.2eV\pm 0.2\,eV or better of excellent experiments and full configuration interaction calculations with a good basis set. We expect the same sort of agreement in complex space.

Keywords

Cite

@article{arxiv.1501.05987,
  title  = {A method for accurate electron-atom resonances: The complex-scaled multiconfigurational spin-tensor electron propagator method for the $^2P\, \mbox{Be}^{-}$ shape resonance problem},
  author = {Tsogbayar Tsednee and Liyuan Liang and Danny L. Yeager},
  journal= {arXiv preprint arXiv:1501.05987},
  year   = {2015}
}

Comments

13 pages, 3 figues

R2 v1 2026-06-22T08:11:49.800Z