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

  • Syddansk Universitet
  • Heinrich Heine University Düsseldorf

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningpeer 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.

OriginalsprogEngelsk
Artikelnummer034109
TidsskriftThe Journal of Chemical Physics
Vol/bind129
Udgave nummer3
Antal sider14
ISSN0021-9606
DOI
StatusUdgivet - 2008

Finansiering

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.

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