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March 30, 2026International Journal of Quantum Chemistry0 citations

Spectroscopic and Collision Excitation Process for Li Atom Confined in a Gaussian Well With Application to Fullerene Confinement

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ZCZ. H. Chen

Key Points

  • To explore the spectral characteristics and excitation dynamics of a lithium atom confined in a fullerene.
  • Proposed a fully relativistic approach using the Dirac-Coulomb Hamiltonian.
  • Utilized a configuration-interaction framework and a power-exponential-model potential for confinement.
  • Calculated bound and continuum state wave functions from modified Dirac equations.
  • Predictions on energy levels, transition probabilities, and total cross sections align closely with previous studies.
  • Findings indicate strong implications for atomic physics, radiation physics, and quantum chemistry.

Abstract

ABSTRACT We report a detailed investigation of the spectral characteristics, electron‐impact excitation dynamics, and de‐excitation radiation processes of a lithium atom confined inside a fullerene cage. To this end, we propose a fully relativistic approach based on the Dirac‐Coulomb Hamiltonian within a configuration‐interaction framework. The confining effect of the cage is modeled using a power‐exponential‐model potential. Solutions of the modified Dirac equations provide both bound and continuum state wave functions. A feature of our approach is the replacement of the standard Coulomb interaction with a combined Coulomb potential and Breit interaction in the calculation of scattering matrix elements. As a representative application, we present detailed calculations of the Gaussian well with spherical confinement effects on the energy levels, transition probabilities, wave functions, total cross sections, magnetic cross sections, linear polarization of the radiation, and angular distribution of emitted photons for a Li atom inside . Our predictions agree closely with other studies, demonstrating the reliability of the method and its potential usefulness in atomic physics, radiation physics, quantum chemistry, and materials science.

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Cite This Study

Z. H. Chen (2026) studied this question.

synapsesocial.com/papers/69c9c5c5f8fdd13afe0bdd4bhttps://doi.org/10.1002/qua.70183
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