DOE OSTI · 2566373
Minimum-Energy Conical Intersections by Compressed Multistate Pair-Density Functional Theory
Abstract
Compressed multistate pair-density functional theory (CMS-PDFT) is a multistate version of multiconfiguration pair-density functional theory that can capture the correct topology of coupled potential energy surfaces (PESs) around conical intersections. Here, in this work, we develop interstate coupling vectors (ISCs) for CMS-PDFT in the OpenMolcas and PySCF/mrh electronic structure packages. Yet, the main focus of this work is using ISCs to calculate minimum-energy conical intersections (MECIs) by CMS-PDFT. This is performed using the projected constrained optimization method in OpenMolcas, which uses ISCs to restrain the iterations to the conical intersection seam. We optimize the S 1 /S 0 MECIs for ethylene, butadiene, and benzene and show that CMS-PDFT gives smooth PESs in the vicinities of the MECIs. Furthermore, the CMS-PDFT MECIs are in good agreement with the MECI calculated by the more expensive XMS-CASPT2 method.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Calio, Paul B., Hermes, Matthew R., Bao, Jie J., Galván, Ignacio Fdez., Lindh, Roland, Truhlar, Donald G., Gagliardi, Laura. 2024-02-26. Minimum-Energy Conical Intersections by Compressed Multistate Pair-Density Functional Theory. https://doi.org/10.1021/acs.jpca.3c07048
Cite the original work for its findings. Save a collection to share your selection of sources.