Abstract
Low-lying rotationless states of the lithium hydride molecule are studied in the framework of the variational method without assuming the Born-Oppenheimer (BO) approximation. Highly accurate solutions to the six-particle (two nuclei and four electrons) Schroudinger equation are obtained by means of expanding the wave functions of the considered states in terms of many thousands of all-particle explicitly correlated Gausssians. The basis functions are optimized independently for each state using the analytic energy gradient with respect to the nonlinear parameters. The non-BO wave functions obtained in the calculations are used to evaluate the leading-order relativistic and quantum electrodynamics energy corrections in the framework of the perturbation theory. The geometric structure of the molecule in the ground and excited states is discussed based on the analysis of the nucleus-nucleus correlation functions. The non-BO energies and structural parameters obtained of this work are compared with the most accurate BO results currently available.
| Original language | English |
|---|---|
| Journal | Journal of Physical Chemistry A |
| DOIs | |
| Publication status | Accepted/In press - 2024 |
Funding
This work has been supported by the National Science Foundation (grant No. 1856702) and Nazarbayev University (faculty development grant No. 021220FD3651). Authors acknowledge the use of the computational resources at the University of Arizona High Performace Computing and the Nazarbayev University Research Computing,
| Funders | Funder number |
|---|---|
| National Science Foundation | 1856702 |
| Nazarbayev University | 021220FD3651 |
ASJC Scopus subject areas
- Physical and Theoretical Chemistry
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