| Literature DB >> 32486677 |
Trond Saue1, Radovan Bast2, André Severo Pereira Gomes3, Hans Jørgen Aa Jensen4, Lucas Visscher5, Ignacio Agustín Aucar6, Roberto Di Remigio7, Kenneth G Dyall8, Ephraim Eliav9, Elke Fasshauer10, Timo Fleig1, Loïc Halbert3, Erik Donovan Hedegård11, Benjamin Helmich-Paris12, Miroslav Iliaš13, Christoph R Jacob14, Stefan Knecht15, Jon K Laerdahl16, Marta L Vidal17, Malaya K Nayak18, Małgorzata Olejniczak19, Jógvan Magnus Haugaard Olsen7, Markus Pernpointner20, Bruno Senjean5, Avijit Shee21, Ayaki Sunaga22, Joost N P van Stralen5.
Abstract
DIRAC is a freely distributed general-purpose program system for one-, two-, and four-component relativistic molecular calculations at the level of Hartree-Fock, Kohn-Sham (including range-separated theory), multiconfigurational self-consistent-field, multireference configuration interaction, electron propagator, and various flavors of coupled cluster theory. At the self-consistent-field level, a highly original scheme, based on quaternion algebra, is implemented for the treatment of both spatial and time reversal symmetry. DIRAC features a very general module for the calculation of molecular properties that to a large extent may be defined by the user and further analyzed through a powerful visualization module. It allows for the inclusion of environmental effects through three different classes of increasingly sophisticated embedding approaches: the implicit solvation polarizable continuum model, the explicit polarizable embedding model, and the frozen density embedding model.Entities:
Year: 2020 PMID: 32486677 DOI: 10.1063/5.0004844
Source DB: PubMed Journal: J Chem Phys ISSN: 0021-9606 Impact factor: 3.488