Skip to main navigation Skip to search Skip to main content

A Comparison of Relativistic Coupled Cluster and Equation of Motion Coupled Cluster Quadratic Response Theory

  • Xiang Yuan
  • , Loïc Halbert
  • , Lucas Visscher
  • , André Severo Pereira Gomes

Research output: Contribution to JournalArticleAcademicpeer-review

1 Downloads (Pure)

Abstract

We present the implementation of relativistic coupled cluster quadratic response theory (QR-CC), following our development of relativistic equation of motion coupled cluster quadratic response theory (QR-EOMCC) [X. Yuan et al., J. Chem. Theory Comput.2023, 19, 9248-9259]. These codes, which can be used in combination with relativistic (2- and 4-component based) as well as nonrelativistic Hamiltonians, are capable of treating both static and dynamic perturbations for electric and magnetic operators. We have employed this new implementation to revisit the calculation of static and frequency-dependent first hyperpolarizabilities of hydrogen halides (HX, X = F-Ts) and the Verdet constant of heavy noble gas atoms (Xe, Rn, Og) and of selected hydrogen halides (HF to HI), in order to investigate the differences and similarities of QR-CC and the more approximate QR-EOMCC. Furthermore, we have determined the relative importance of scalar relativistic effects and spin-orbit coupling to these properties, through a comparison of different Hamiltonians, and extended our calculations to superheavy element species (HTs for hyperpolarizabilities, Og for the Verdet constant). Our results show that as one moves toward the bottom of the periodic table, QR-EOMCC can yield rather different results (hyperpolarizabilities) or perform rather similarly (Verdet constant) to QR-CC. These results underscore the importance of further characterizing the performance of QR-EOMCC for heavy element systems.

Original languageEnglish
Pages (from-to)11695-11712
Number of pages18
JournalThe journal of physical chemistry. A
Volume129
Issue number50
Early online date4 Dec 2025
DOIs
Publication statusPublished - 18 Dec 2025

Funding

This research used resources of the Oak Ridge Leadership Computing Facility, which is a DOE Office of Science User Facility supported under Contract DE-AC05-00OR22725 (allocations CHM160, CHM191 and CHP109). XY, LH, and ASPG acknowledge funding from projects CPER WaveTech, Labex CaPPA (grant no. ANR-11-LABX-0005-01), ANR CompRIXS (grant nos. ANR-19-CE29-0019 and DFG JA 2329/6-1), ANR SCREECHES (grant nos. ANR-24-CE29-0904) the I-SITE ULNE project OVERSEE and MESONM International Associated Laboratory (LAI) (grant no. ANR-16-IDEX-0004), as well support from the French national supercomputing facilities (grant nos. DARI A0150801859, A0170801859) and the HPC center at the University of Lille.

FundersFunder number
I-SITE ULNE project OVERSEE
CPER WaveTech
MESONM International Associated Laboratory (LAI)ANR-16-IDEX-0004
French National Supercomputing FacilitiesDARI A0150801859, A0170801859
ANR CompRIXSANR-19-CE29-0019, DFG JA 2329/6-1
Office of ScienceDE-AC05-00OR22725
ANR SCREECHESANR-24-CE29-0904
Labex CaPPAANR-11-LABX-0005-01

    Fingerprint

    Dive into the research topics of 'A Comparison of Relativistic Coupled Cluster and Equation of Motion Coupled Cluster Quadratic Response Theory'. Together they form a unique fingerprint.

    Cite this