Published November 3, 2023 | Version Published
Journal Article Open

Highly Accurate Electronic Structure of Metallic Solids from Coupled-Cluster Theory with Nonperturbative Triple Excitations

  • 1. ROR icon Columbia University
  • 2. ROR icon California Institute of Technology

Abstract

Coupled-cluster theory with single, double, and perturbative triple excitations (CCSD(T))—often considered the "gold standard" of main-group quantum chemistry—is inapplicable to three-dimensional metals due to an infrared divergence, preventing its application to many important problems in materials science. We study the full, nonperturbative inclusion of triple excitations (CCSDT) and propose a new, iterative method, which we call ring-CCSDT, that resums the essential triple excitations with the same N⁷ run-time scaling as CCSD(T). CCSDT and ring-CCSDT are used to calculate the correlation energy of the uniform electron gas at metallic densities and the structural properties of solid lithium. Inclusion of connected triple excitations is shown to be essential to achieving high accuracy. We also investigate semiempirical CC methods based on spin-component scaling and the distinguishable cluster approximation and find that they enhance the accuracy of their parent ab initio methods.

Copyright and License

© 2023 American Physical Society.

Acknowledgement

We thank James Callahan and Xiao Wang for helpful discussions. This work was supported by the Columbia Center for Computational Electrochemistry and the National Science Foundation under Grant No. CHE-1848369. We acknowledge computing resources from Columbia University's Shared Research Computing Facility project, which is supported by NIH Research Facility Improvement Grant No. 1G20RR030893-01, and associated funds from the New York State Empire State Development, Division of Science Technology and Innovation (NYSTAR) Contract No. C090171, both awarded April 15, 2010. Data analysis and visualization were performed using numpy [90], scipy [91], pandas [92], matplotlib [93], seaborn [94], and jaxodraw [95]. UEG calculations used Julia [96], Fermi.jl [97], TensorOperations.jl [98], and Tullio.jl [99].

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PhysRevLett.131.186402.pdf

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Additional details

Identifiers

ISSN
1079-7114

Funding

National Science Foundation
CHE-1848369
National Institutes of Health
1G20RR030893-01
Empire State Development
C090171