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Reduced Radial Electric Quadrupole Moment Function for Diatomic Molecules.

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This study explores constructing electric quadrupole moment functions for diatomic molecules using the reduced radial curve approach. These functions offer accurate, simplified representations of molecular properties, previously unavailable.

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Area of Science:

  • Theoretical Chemistry
  • Computational Quantum Chemistry
  • Molecular Spectroscopy

Background:

  • Accurate representation of molecular properties is crucial for understanding chemical phenomena.
  • Electric quadrupole moment functions (EQMFs) are important molecular properties, particularly for diatomic molecules.
  • Existing methods for constructing EQMFs can be complex and computationally intensive.

Purpose of the Study:

  • To explore the construction of global electric quadrupole moment functions (EQMFs) for diatomic molecules.
  • To investigate the utility of the reduced radial curve (RRC) approach for developing accurate EQMF representations.
  • To provide a novel, simplified functional representation for EQMFs.

Main Methods:

  • Performing model calculations for the ground electronic states of H2 and HF.
  • Utilizing the reduced radial curve (RRC) framework.
  • Morphing theoretical approximants of EQMFs.

Main Results:

  • The reduced quadrupole moment curves constructed using the RRC approach closely match their best analytic counterparts.
  • These RRC-based curves serve as accurate few-parameter representations of EQMFs.
  • The study demonstrates the effectiveness of the RRC approach for diatomic molecules like H2 and HF.

Conclusions:

  • The reduced radial curve approach provides an effective method for constructing global electric quadrupole moment functions for diatomic molecules.
  • The derived few-parameter representations are accurate and offer a significant improvement over existing methods.
  • This work introduces a novel and accessible functional representation for molecular EQMFs.