English

A Cholesky decomposition-based implementation of relativistic two-component coupled-cluster methods for medium-sized molecules

Chemical Physics 2023-09-19 v1

Abstract

A Cholesky decomposition (CD)-based implementation of relativistic two-component coupled-cluster (CC) and equation-of-motion CC (EOM-CC) methods using an exact two-component Hamiltonian augmented with atomic-mean-field spin-orbit integrals (the X2CAMF scheme) is reported. The present CD-based implementation of X2CAMF-CC and EOM-CC methods employs atomic-orbital-based algorithms to avoid the construction of two-electron integrals and intermediates involving three and four virtual indices. Our CD-based implementation extends the applicability of X2CAMF-CC and EOM-CC methods to medium-sized molecules with the possibility to correlate around 1000 spinors. Benchmark calculations for uranium-containing small molecules have been performed to assess the dependence of the CC results on the Cholesky threshold. A Cholesky threshold of 10410^{-4} is shown to be sufficient to maintain chemical accuracy. Example calculations to illustrate the capability of the CD-based relativistic CC methods are reported for the bond-dissociation energy of the uranium hexafluoride molecule, UF6_6, with up to quadruple-zeta basis sets, and the lowest excitation energy in solvated uranyl ion [UO22+_2^{2+}(H2_2O)12_{12}].

Keywords

Cite

@article{arxiv.2309.08934,
  title  = {A Cholesky decomposition-based implementation of relativistic two-component coupled-cluster methods for medium-sized molecules},
  author = {Chaoqun Zhang and Filippo Lipparini and Stella Stopkowicz and Jürgen Gauss and Lan Cheng},
  journal= {arXiv preprint arXiv:2309.08934},
  year   = {2023}
}
R2 v1 2026-06-28T12:23:28.842Z