Skip to main navigation Skip to search Skip to main content

A direct relativistic four-component multiconfiguration self-consistent-field method for molecules

  • University of Southern Denmark
  • Heinrich Heine University Düsseldorf

Research output: Contribution to journalJournal articleResearchpeer-review

Abstract

A new direct relativistic four-component Kramers-restricted multiconfiguration self-consistent-field (KR-MCSCF) code for molecules has been implemented. The program is based upon Kramers-paired spinors and a full implementation of the binary double groups (D2h* and subgroups). The underlying quaternion algebra for one-electron operators was extended to treat two-electron integrals and density matrices in an efficient and nonredundant way. The iterative procedure is direct with respect to both configurational and spinor variational parameters; this permits the use of large configuration expansions and many basis functions. The relativistic minimum-maximum principle is implemented in a second-order restricted-step optimization algorithm, which provides sharp and well-controlled convergence. This paper focuses on the necessary modifications of nonrelativistic MCSCF methodology to obtain a fully variational KR-MCSCF implementation. The general implementation also allows for the use of molecular integrals from a two-component relativistic Hamiltonian as, for example, the Douglas-Kroll-Hess variants. Several sample applications concern the determination of spectroscopic properties of heavy-element atoms and molecules, demonstrating the influence of spin-orbit coupling in MCSCF approaches to such systems and showing the potential of the new method.

Original languageEnglish
Article number034109
JournalThe Journal of Chemical Physics
Volume129
Issue number3
Number of pages14
ISSN0021-9606
DOIs
Publication statusPublished - 2008

Funding

This work has received support from the Danish Natural Science Research Council (Grant No. 272-05-0435) and computer time from the Danish Center for Scientific Computing. One of the authors (T.F.) would like to acknowledge a research scholarship from DFG (German Research Council) (Grant No. FL 356/1-1) and thank the University of Southern Denmark for hospitality. We thank an unknown referee for helpful comments on the AuO molecule.

Fingerprint

Dive into the research topics of 'A direct relativistic four-component multiconfiguration self-consistent-field method for molecules'. Together they form a unique fingerprint.

Cite this