English

Selected Configuration Interaction for Resonances

Chemical Physics 2025-04-15 v2 Materials Science Nuclear Theory

Abstract

Electronic resonances are metastable states that can decay by electron loss. They are ubiquitous across various fields of science, such as chemistry, physics, and biology. However, current theoretical and computational models for resonances cannot yet rival the level of accuracy achieved by bound-state methodologies. Here, we generalize selected configuration interaction (SCI) to treat resonances using the complex absorbing potential (CAP) technique. By modifying the selection procedure and the extrapolation protocol of standard SCI, the resulting CAP-SCI method yields resonance positions and widths of full configuration interaction quality. Initial results for the shape resonances of \ce{N2-} and \ce{CO-} reveal the important effect of high-order correlation, which shifts the values obtained with CAP-augmented equation-of-motion coupled-cluster with singles and doubles by more than \SI{0.1}{\eV}. The present CAP-SCI approach represents a cornerstone in the development of highly-accurate methodologies for resonances.

Keywords

Cite

@article{arxiv.2407.08576,
  title  = {Selected Configuration Interaction for Resonances},
  author = {Yann Damour and Anthony Scemama and Fábris Kossoski and Pierre-François Loos},
  journal= {arXiv preprint arXiv:2407.08576},
  year   = {2025}
}

Comments

10 pages, 2 figures (supporting information available)

R2 v1 2026-06-28T17:37:30.237Z