Literature DB >> 26277122

Spin-orbit couplings within the equation-of-motion coupled-cluster framework: Theory, implementation, and benchmark calculations.

Evgeny Epifanovsky1, Kerstin Klein2, Stella Stopkowicz3, Jürgen Gauss2, Anna I Krylov1.   

Abstract

We present a formalism and an implementation for calculating spin-orbit couplings (SOCs) within the EOM-CCSD (equation-of-motion coupled-cluster with single and double substitutions) approach. The following variants of EOM-CCSD are considered: EOM-CCSD for excitation energies (EOM-EE-CCSD), EOM-CCSD with spin-flip (EOM-SF-CCSD), EOM-CCSD for ionization potentials (EOM-IP-CCSD) and electron attachment (EOM-EA-CCSD). We employ a perturbative approach in which the SOCs are computed as matrix elements of the respective part of the Breit-Pauli Hamiltonian using zeroth-order non-relativistic wave functions. We follow the expectation-value approach rather than the response-theory formulation for property calculations. Both the full two-electron treatment and the mean-field approximation (a partial account of the two-electron contributions) have been implemented and benchmarked using several small molecules containing elements up to the fourth row of the periodic table. The benchmark results show the excellent performance of the perturbative treatment and the mean-field approximation. When used with an appropriate basis set, the errors with respect to experiment are below 5% for the considered examples. The findings regarding basis-set requirements are in agreement with previous studies. The impact of different correlation treatment in zeroth-order wave functions is analyzed. Overall, the EOM-IP-CCSD, EOM-EA-CCSD, EOM-EE-CCSD, and EOM-SF-CCSD wave functions yield SOCs that agree well with each other (and with the experimental values when available). Using an EOM-CCSD approach that provides a more balanced description of the target states yields more accurate results.

Entities:  

Year:  2015        PMID: 26277122     DOI: 10.1063/1.4927785

Source DB:  PubMed          Journal:  J Chem Phys        ISSN: 0021-9606            Impact factor:   3.488


  2 in total

1.  Spin-Forbidden Carbon-Carbon Bond Formation in Vibrationally Excited α-CO.

Authors:  Jessalyn A DeVine; Arnab Choudhury; Jascha A Lau; Dirk Schwarzer; Alec M Wodtke
Journal:  J Phys Chem A       Date:  2022-04-05       Impact factor: 2.944

2.  Zeeman effect in sulfur monoxide: A tool to probe magnetic fields in star forming regions.

Authors:  Gabriele Cazzoli; Valerio Lattanzi; Sonia Coriani; Jürgen Gauss; Claudio Codella; Andrés Asensio Ramos; José Cernicharo; Cristina Puzzarini
Journal:  Astron Astrophys       Date:  2017-09-01       Impact factor: 5.802

  2 in total

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