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research article

Excited State-Specific CASSCF Theory for the Torsion of Ethylene

Saade, Sandra  
•
Burton, Hugh G. A.
June 7, 2024
Journal of Chemical Theory and Computation

State-specific complete active space self-consistent field (SS-CASSCF) theory has emerged as a promising route to accurately predict electronically excited energy surfaces away from molecular equilibria. However, its accuracy and practicality for chemical systems of photochemical interest have yet to be fully determined. We investigate the performance of the SS-CASSCF theory for the low-lying ground and excited states in the double bond rotation of ethylene. We show that state-specific approximations with a minimal (2e,2o) active space provide comparable accuracy to state-averaged calculations with much larger active spaces, while optimizing the orbitals for each excited state significantly improves the spatial diffusivity of the wave function. However, the incorrect ordering of state-specific solutions causes excited state solutions to coalesce and disappear, creating unphysical discontinuities in the potential energy surface. Our findings highlight the theoretical challenges that must be overcome to realize practical applications of state-specific electronic structure theory for computational photochemistry.

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Type
research article
DOI
10.1021/acs.jctc.4c00212
Web of Science ID

WOS:001242710000001

Author(s)
Saade, Sandra  
Burton, Hugh G. A.
Date Issued

2024-06-07

Publisher

Amer Chemical Soc

Published in
Journal of Chemical Theory and Computation
Volume

20

Issue

12

Start page

5105

End page

5114

Subjects

Physical Sciences

•

Density-Functional Calculations

•

2Nd-Order Perturbation-Theory

•

Ab-Initio

•

Orbital Optimization

•

Electronic-Spectrum

•

Basis-Sets

•

Scf Method

•

V State

•

Ethene

•

Convergence

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
COSMO  
FunderGrant Number

New College, University of Oxford

New College, Oxford (Astor Junior Research Fellowship)

Downing College, Cambridge (Kim and Julianna Silverman Research Fellowship)

Available on Infoscience
July 3, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/209001
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