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Updated: Aug 6, 2026

Spatial Separation of Molecular Conformers and Clusters
Published on: January 9, 2014
Coupled-cluster theory for positron binding in anions and polyatomic molecules
Rosario R Riso1, Jan Haakon M Trabski1, Federico Rossi1
1Department of Chemistry, Norwegian University of Science and Technology, NTNU, 7491 Trondheim, Norway.
We introduce a new method, positron coupled cluster singles and doubles (POS-CCSD), to calculate positron binding energies. This approach accurately describes electron-positron interactions in molecules, crucial for understanding complex chemical systems.
Area of Science:
- Quantum Chemistry
- Computational Physics
- Molecular Modeling
Background:
- Positron binding energies are essential for understanding electron-positron interactions.
- Accurate theoretical methods are needed to model these systems.
- Existing methods may not fully capture electron correlation effects.
Purpose of the Study:
- To develop and present the positron coupled cluster singles and doubles (POS-CCSD) method.
- To calculate positron binding energies in various molecular systems.
- To investigate the role of electron correlation and nuclear relaxation in positron attachment.
Main Methods:
- The POS-CCSD method treats electrons and positrons equally, including double-electron-single-positron excitations.
- Benchmarking was performed on atomic anions and polyatomic systems (polar and non-polar).
- Results were compared with quantum Monte Carlo, multi-reference configuration interaction, and experimental data.
Main Results:
- POS-CCSD results for H- binding energies show excellent agreement with other advanced theoretical methods.
- Quantitative agreement with experimental data was not achieved due to slow convergence with basis set size.
- The study highlights the importance of electron correlation for accurate electron-positron system descriptions.
- Nuclear relaxation effects following positron attachment were examined in LiH.
Conclusions:
- The POS-CCSD method provides a robust framework for calculating positron binding energies.
- Electron correlation plays a critical role in accurately describing electron-positron systems.
- Further basis set optimization is needed for quantitative agreement with experimental data.
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