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Quantum Monte Carlo Calculations of Electronic Excitation Energies: The Case of the Singlet n→π∗ (CO) Transition in Acrolein

Cornell Affiliated Author(s)

Author

Harold Kroto
Julien Toulouse
Michel Caffarel
Peter Reinhardt
Philip Hoggan
C. Umrigar

Abstract

We report state-of-the-art quantum Monte Carlo calculations of the singlet n→π∗ (CO) vertical excitation energy in the acrolein molecule, extending the recent study of Bouabça et al. (J Chem Phys 130:114107, 2009). We investigate the effect of using a Slater basis set instead of a Gaussian basis set, and of using state-average versus state-specific complete-active-space (CAS) wave functions, with or without reoptimization of the coefficients of the configuration state functions (CSFs) and of the orbitals in variational Monte Carlo (VMC). It is found that, with the Slater basis set used here, both state-average and state-specific CAS(6,5) wave functions give an accurate excitation energy in diffusion Monte Carlo (DMC), with or without reoptimization of the CSF and orbital coefficients in the presence of the Jastrow factor. In contrast, the CAS(2,2) wave functions require reoptimization of the CSF and orbital coefficients to give a good DMC excitation energy. Our best estimates of the vertical excitation energy are between 3.86 and 3.89 eV. © 2012, Springer Science+Business Media B.V.

Date Published

Journal

Progress in Theoretical Chemistry and Physics

Volume

22

Number of Pages

343-351,

URL

https://www.scopus.com/inward/record.uri?eid=2-s2.0-84891601566&doi=10.1007%2f978-94-007-2076-3_19&partnerID=40&md5=ae7606101c1c88c37d8d213239db174b

DOI

10.1007/978-94-007-2076-3_19

Group (Lab)

Cyrus Umrigar Group

Funding Source

CHE-1004603

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