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Correlation consistent basis sets for explicitly correlated wavefunctions: Pseudopotential-based basis sets for the
1Department of Chemistry, University of Sheffield, Sheffield S3 7HF, United Kingdom.
New basis sets accelerate explicitly correlated F12 calculations for heavy elements. These correlation consistent basis sets improve convergence, providing accurate results closer to the complete basis set limit for groups 11 and 12 elements.
Area of Science:
- Computational chemistry
- Quantum chemistry
- Basis set development
Background:
- Explicitly correlated F12 methods significantly reduce the basis set incompleteness error.
- Developing efficient and accurate basis sets is crucial for computational chemistry, especially for heavy elements.
Purpose of the Study:
- To develop new correlation consistent basis sets for group 11 (Cu, Ag, Au) and 12 (Zn, Cd, Hg) elements.
- These basis sets are specifically designed for explicitly correlated F12 calculations.
Main Methods:
- Developed valence-only (cc-pVnZ-PP-F12) and outer core-valence (cc-pCVnZ-PP-F12) basis sets.
- Augmented basis sets with high angular momentum diffuse functions.
- Optimized matching auxiliary basis sets for density fitting and resolution-of-the-identity methods.
- Utilized small-core relativistic pseudopotentials.
Main Results:
- Benchmark calculations at the explicitly correlated coupled-cluster level assessed accuracy.
- Demonstrated dramatically improved convergence compared to conventional coupled-cluster calculations.
- Achieved results close to the complete basis set limit with cc-pVTZ-PP-F12 basis sets.
Conclusions:
- The new basis sets significantly enhance the efficiency and accuracy of F12 calculations for heavy elements.
- Improved convergence patterns were observed compared to conventional basis sets in F12 calculations.
- These developments offer a more reliable approach for studying properties of group 11 and 12 elements.
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