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Published June 8, 2021 | Submitted + Supplemental Material
Journal Article Open

Externally Corrected CCSD with Renormalized Perturbative Triples (R-ecCCSD(T)) and the Density Matrix Renormalization Group and Selected Configuration Interaction External Sources

Abstract

We investigate the renormalized perturbative triples correction together with the externally corrected coupled-cluster singles and doubles (ecCCSD) method. We use the density matrix renormalization group (DMRG) and heat-bath CI (HCI) as external sources for the ecCCSD equations. The accuracy is assessed for the potential energy surfaces of H₂O, N₂, and F₂. We find that the triples correction significantly improves upon ecCCSD, and we do not see any instability of the renormalized triples with respect to dissociation. We explore how to balance the cost of computing the external source amplitudes against the accuracy of the subsequent CC calculation. In this context, we find that very approximate wave functions (and their large amplitudes) serve as an efficient and accurate external source. Finally, we characterize the domain of correlation treatable using the ecCCSD and renormalized triples combination studied in this work via a well-known wave function diagnostic.

Additional Information

© 2021 American Chemical Society. Received: March 1, 2021; Published: May 21, 2021. Work by S.L., H.Z., and G.K.-L.C. was supported by the US National Science Foundation via Award CHE-1655333. G.K.-L.C. is a Simons Investigator. S.S. was supported by the US National Science Foundation grant CHE-1800584 and the Sloan research fellowship. C.J.U. was supported in part by the AFOSR under grant FA9550-18-1-0095. The authors declare no competing financial interest.

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Submitted - 2102.12703.pdf

Supplemental Material - ct1c00205_si_001.xlsx

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Additional details

Created:
August 20, 2023
Modified:
October 23, 2023