Optimizing Jastrow factors for the transcorrelated method
Journal article, 2023

We investigate the optimization of flexible tailored real-space Jastrow factors for use in the transcorrelated (TC) method in combination with highly accurate quantum chemistry methods, such as initiator full configuration interaction quantum Monte Carlo (FCIQMC). Jastrow factors obtained by minimizing the variance of the TC reference energy are found to yield better, more consistent results than those obtained by minimizing the variational energy. We compute all-electron atomization energies for the challenging first-row molecules C2, CN, N2, and O2 and find that the TC method yields chemically accurate results using only the cc-pVTZ basis set, roughly matching the accuracy of non-TC calculations with the much larger cc-pV5Z basis set. We also investigate an approximation in which pure three-body excitations are neglected from the TC-FCIQMC dynamics, saving storage and computational costs, and show that it affects relative energies negligibly. Our results demonstrate that the combination of tailored real-space Jastrow factors with the multi-configurational TC-FCIQMC method provides a route to obtaining chemical accuracy using modest basis sets, obviating the need for basis-set extrapolation and composite techniques.

Author

J. Philip Haupt

Max Planck Society

Seyed Mohammadreza Hosseini

Max Planck Society

Pablo López Ríos

Max Planck Society

Werner Barucha-Dobrautz

Chalmers, Chemistry and Chemical Engineering, Chemistry and Biochemistry

Aron J. Cohen

DeepMind

Ali Alavi

Max Planck Society

University of Cambridge

Journal of Chemical Physics

0021-9606 (ISSN) 1089-7690 (eISSN)

Vol. 158 22 224105

QC-SQUARED

European Commission (EC) (EC/HE/101062864), 2022-01-07 -- 2025-06-30.

Subject Categories

Theoretical Chemistry

Computer Science

DOI

10.1063/5.0147877

PubMed

37290083

More information

Latest update

7/4/2023 1