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An efficient and numerically stable procedure for generating sextic force fields in normal mode coordinates
1Department of Chemistry, University of Canterbury, Christchurch, New Zealand.
This study presents a scalable method for calculating molecular force fields. The approach efficiently transforms between coordinate systems, enabling accurate vibrational analysis with minimal computational cost.
Area of Science:
- Computational Chemistry
- Theoretical Chemistry
- Molecular Physics
Background:
- Calculating accurate molecular force fields is crucial for understanding molecular vibrations.
- Strongly coupled force fields often require computationally intensive methods.
- Existing methods may struggle with scalability and efficiency for high-order calculations.
Purpose of the Study:
- To develop a general, scalable, and black-box approach for calculating high-order strongly coupled force fields.
- To enable efficient and accurate determination of molecular vibrational properties.
- To facilitate analytical evaluation of integrals for solving the nuclear vibrational problem.
Main Methods:
- Constructing low-order expansions in curvilinear coordinates with limited mode-mode coupling.
- Analytically transforming between curvilinear and rectilinear normal mode coordinates.
- Employing a reduced mode-representation strategy: 3-mode quartic to 4-mode sextic force fields.
Main Results:
- The coordinate transformation method achieves an optimal balance between accuracy and efficiency.
- An average error of only 1 cm⁻¹ in fundamental frequencies was observed across various molecules.
- The procedure is computationally fast with modest memory demands when an initial semi-quartic force field is available.
Conclusions:
- The developed approach provides a general and scalable solution for calculating strongly coupled force fields.
- This method significantly aids in solving the nuclear vibrational problem through analytical integral evaluation.
- The coordinate transformation code is integrated into the PyPES library, enhancing its utility.
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